System for inducing desirable temperature effects on body tissue

Information

  • Patent Grant
  • 10413356
  • Patent Number
    10,413,356
  • Date Filed
    Friday, February 24, 2012
    12 years ago
  • Date Issued
    Tuesday, September 17, 2019
    4 years ago
Abstract
A catheter and catheter system may be used to treat disease tissue by gentle heating in combination with gentle or standard dilation. An elongate flexible catheter body with a radially expandable balloon having a plurality of electrodes engage tissue including diseased tissue when the structure expands.
Description
BACKGROUND OF THE INVENTION

1. Field of the Invention


The present invention is generally related to medical devices, systems, and methods. In exemplary embodiments, the invention provides catheter-based treatment for luminal diseases, particularly for atherosclerotic plaque, vulnerable or “hot” plaque, and the like. The structures of the invention allow remodeling body tissue using heat.


Physicians use catheters to gain access to and repair interior tissues of the body, particularly within the lumens of the body such as blood vessels. For example, balloon angioplasty and other catheters often are used to open arteries that have been narrowed due to atherosclerotic disease.


Balloon angioplasty is often effective at opening an occluded blood vessel, but the trauma associated with balloon dilation can impose significant injury, so that the benefits of balloon dilation may be limited in time. Stents are commonly used to extend the beneficial opening of the blood vessel.


Stenting, in conjunction with balloon dilation, is often the preferred treatment for atherosclerosis. In stenting, a collapsed metal framework is mounted on a balloon catheter which is introduced into the body. The stent is manipulated into the site of occlusion and expanded in place by the dilation of the underlying balloon. Stenting has gained widespread acceptance, and produces generally acceptable results in many cases. Along with treatment of blood vessels (particularly the coronary arteries), stents can also be used in treating many other tubular obstructions within the body, such as for treatment of reproductive, gastrointestinal, and pulmonary obstructions.


Restenosis or a subsequent narrowing of the body lumen after stenting has occurred in a significant number of cases. More recently, drug coated stents (such as Johnson and Johnson's Cypher™ stent, the associated drug comprising Sirolimus™) have demonstrated a markedly reduced restenosis rate, and others are developing and commercializing alternative drug eluting stents. In addition, work has also been initiated with systemic drug delivery (intravenous or oral) which may also improve the procedural angioplasty success rates.


While drug eluting stents appear to offer significant promise for treatment of atherosclerosis in many patients, there remain many cases where stents either cannot be used or present significant disadvantages. Generally, stenting leaves an implant in the body. Such implants can present risks, including mechanical fatigue, corrosion, and the like, particularly when removal of the implant is difficult and involves invasive surgery. Stenting may have additional disadvantages for treating diffuse artery disease, for treating bifurcations, for treating areas of the body susceptible to crush, and for treating arteries subject to torsion, elongation, and shortening.


A variety of modified restenosis treatments or restenosis-inhibiting occlusion treatment modalities have also been proposed, including intravascular radiation, cryogenic treatments, ultrasound energy, and the like, often in combination with balloon angioplasty and/or stenting. While these and different approaches show varying degrees of promise for decreasing the subsequent degradation in blood flow following angioplasty and stenting, the trauma initially imposed on the tissues by angioplasty remains problematic.


A number of alternatives to stenting and balloon angioplasty so as to open stenosed arteries have also been proposed. For example, a wide variety of atherectomy devices and techniques have been disclosed and attempted. Despite the disadvantages and limitations of angioplasty and stenting, atherectomy has not gained the widespread use and success rates of dilation-based approaches. More recently, still further disadvantages of dilation have come to light. These include the existence of vulnerable plaque, which can rupture and release materials that may cause myocardial infarction or heart attack.


In light of the above, it would be advantageous to provide new devices, systems, and methods for remodeling of the lumens of the body, and particularly of the blood vessels. It would further be desirable to avoid significant cost or complexity while providing structures which could remodel body lumens without having to resort to the trauma of extreme dilation, and to allow the opening of blood vessels and other body lumens which are not suitable for stenting.


BRIEF SUMMARY OF THE INVENTION

The present invention generally provides improved devices, systems, and methods for treating diseased and other target tissues, optionally for treatment of diseases of body lumens. Embodiments of the invention allow heating the body lumens. By radially expanding a balloon with electrodes, plaque, fibrous vulnerable or “hot” plaques, along with healthy tissues are heated by the energized electrodes using RF energy, microwave energy, ultrasound energy, and/or the like.


In one embodiment, a system is disclosed for inducing desirable temperature effects on body tissue disposed about a lumen. The system includes a catheter body having a proximal end and a distal end, with a radially expandable member on the distal end. The expandable member has a low profile insertion configuration and a larger profile configuration. A plurality of electrodes are disposed about the expandable member so as to define a plurality of tissue volumes (“remodeling zones”) when the expandable member is in the large profile configuration within the lumen. The electrodes are radially coupled with the tissue, and energy intended to remodel the tissue (“tissue remodeling energy”) is transmitted between the electrodes and the tissue, the electrodes configured to inhibit vaporization along the lumen while the remodeling energy inhibits both acute and long-term occlusion of the lumen.


In another embodiment, a method for using a catheter system is disclosed for inducing desirable temperature effects on desired body tissue disposed about a lumen of a patient. The method includes positioning a radially expandable member supported by a distal end of a catheter body within the lumen adjacent the desired tissue to be heated, the expandable member having a low profile insertion configuration and a larger profile configuration. Expanding the expandable member to the larger profile configuration within the lumen so as to engage a plurality of electrodes against the desired tissue, the plurality of electrodes defining a plurality of remodeling zones in the tissue. Energizing the plurality of electrodes with a controller having a power source electrically coupled to the plurality of electrodes and heating the remodeling zones in the tissue with the energized electrodes.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1A illustrates diffuse atherosclerotic disease in which a substantial length of multiple blood vessels has limited effective diameters.



FIG. 1B illustrates vulnerable plaque within a blood vessel.



FIG. 1C illustrates the sharp bends or tortuosity of some blood vessels.



FIG. 1D illustrates atherosclerotic disease at a bifurcation.



FIG. 1E illustrates a lesion associated with atherosclerotic disease of the extremities.



FIG. 1F is an illustration of a stent fracture or corrosion.



FIG. 1G illustrates a dissection within a blood vessel.



FIG. 1H illustrates an artery wall around a healthy artery.



FIG. 1I illustrates a restenosed artery.



FIG. 2 schematically illustrates a balloon catheter system according to the present invention.



FIG. 3 schematically illustrates one embodiment of an inflatable balloon for use in the catheter system of FIG. 2.



FIGS. 4A and 4 show an exemplary balloon catheter supporting electrodes and an exemplary RF generator structure, respectively, for use in the systems and methods described herein.



FIG. 5A schematically illustrates one embodiment of electrodes in a circumferential array mounting to a balloon.



FIGS. 5B and 5C schematically illustrates electrodes in flexible circuit/circuitry.



FIGS. 6A and 6B schematically illustrate one embodiment of electrodes having an electroplated balloon portion with an internal electrode base.



FIGS. 7A and 7B schematically illustrate one embodiment of balloon catheter system for use for monopolar energy treatment.



FIGS. 8A-8D schematically illustrate placement of electrode pairs for use in bipolar energy treatment.



FIGS. 9A-9C illustrate a method of using a balloon catheter system treating artery tissue.



FIG. 10 illustrates frequency targeting of tissues.



FIG. 11 illustrates various electrode energy settings to achieve temperatures between 50° C. and 65° C.



FIG. 12A schematically illustrates a mono-polar configuration.



FIG. 12B schematically illustrates a bipolar configuration.



FIG. 13 schematically illustrates electrodes arranged on a balloon in a radial topology.



FIG. 14 schematically illustrates electrodes arranged on a balloon in a longitudinal topology.



FIG. 15A schematically illustrates diseased tissue that is concentric about the entire circumference of an artery.



FIG. 15B schematically illustrates diseased tissue that is eccentric about a portion of an artery along with healthy tissue.



FIG. 16 graphically illustrates advantageous treatment power and time ranges for different electrode geometries, for use in embodiments of the invention.





DETAILED DESCRIPTION OF THE INVENTION

The present invention provides devices, systems, and methods to treat luminal tissue. The invention will be particularly useful for remodeling materials along a partially occluded artery in order to open the artery lumen and increase blood flow. The devices, systems, and methods disclosed herein may be used in any artery, for example, the femoral, popliteal, coronary and/or carotid arteries.


While the disclosure focuses on the use of the technology in the vasculature, the technology would also be useful for any luminal obstruction. Other anatomical structures in which the present invention may be used are the esophagus, the oral cavity, the nasopharyngeal cavity, the auditory tube and tympanic cavity, the sinus of the brain, the arterial system, the venous system, the heart, the larynx, the trachea, the bronchus, the stomach, the duodenum, the ileum, the colon, the rectum, the bladder, the ureter, the ejaculatory duct, the vas deferens, the urethra, the uterine cavity, the vaginal canal, and the cervical canal.


Some embodiments of the vascular treatment devices, systems, and methods described herein may be used to treat atherosclerotic disease by gentle heating in combination with gentle or standard dilation. For example, an angioplasty balloon catheter structure having electrodes disposed thereon might apply electrical potentials to the vessel wall before, during, and/or after dilation, optionally in combination with dilation pressures which are at or significantly lower than standard, unheated angioplasty dilation pressures. Where balloon inflation pressures of 10-16 atmospheres may, for example, be appropriate for standard angioplasty dilation of a particular lesion, modified dilation treatments combined with appropriate electrical potentials (through flexible circuit electrodes on the balloon, electrodes deposited directly on the balloon structure, or the like) described herein may employ from 10-16 atmospheres or may be effected with pressures of 6 atmospheres or less, and possibly as low as 1 to 2 atmospheres. Such moderate dilations pressures may (or may not) be combined with one or more aspects of the tissue characterization, tuned energy, eccentric treatments, and other treatment aspects described herein for treatment of diseases of the peripheral vasculature.


In many embodiments, gentle heating energy added before, during, and or after dilation of a blood vessel may increase dilation effectiveness while lowering complications. In some embodiments, such controlled heating with balloon may exhibit a reduction in recoil, providing at least some of the benefits of a stent-like expansion without the disadvantages of an implant. Benefits of the heating may be enhanced (and/or complications inhibited) by limiting heating of the adventitial layer below a deleterious response threshold. In many cases, such heating of the intima and/or media may be provided using heating times of less than about 10 seconds, often being less than 3 (or even 2) seconds. In other cases, very low power may be used for longer durations. Efficient coupling of the energy to the target tissue by matching the driving potential of the circuit to the target tissue phase angle may enhance desirable heating efficiency, effectively maximizing the area under the electrical power curve. The matching of the phase angle need not be absolute, and while complete phase matching to a characterized target tissue may have benefits, alternative systems may pre-set appropriate potentials to substantially match typical target tissues; though the actual phase angles may not be matched precisely, heating localization within the target tissues may be significantly better than using a standard power form.


Remodeling may involve the application of energy, typically in the form of RF, microwave and/or ultrasound energy to electrodes, and the like. This energy will be controlled so as to limit a temperature of target and/or collateral tissues, for example, limiting the heating of a fibrous cap of a vulnerable plaque or the intimal layer of an artery structure. In some embodiments, the surface temperature range is from about 50° C. to about 90° C. For gentle heating, the surface temperature may range from about 50° C. to about 65° C., while for more aggressive heating, the surface temperature may range from about 65° C. to about 90° C. Limiting heating of a lipid-rich pool of a vulnerable plaque sufficiently to induce melting of the lipid pool while inhibiting heating of other tissues (such as an intimal layer or fibrous cap) to less than a surface temperature in a range from about 50° C. to about 65° C., such that the bulk tissue temperature remains mostly below 50° C.-55° C. may inhibit an immune response that might otherwise lead to restenosis, or the like. Relatively mild surface temperatures between 50° C. and 65° C. may be sufficient to denature and break protein bonds during treatment, immediately after treatment, and/or more than one hour, more than one day, more than one week, or even more than one month after the treatment through a healing response of the tissue to the treatment so as to provide a bigger vessel lumen and improved blood flow.


While the methods and devices described herein are not selective in tissue treatment of the blood vessel, the devices can be used for treatment of both concentric and eccentric atherosclerosis. This non selective treatment is a particular advantage because atherosclerosis may be eccentric relative to an axis of the blood vessel over 50% of the time, possibly in as much as (or even more than) 75% of cases.


Hence, remodeling of atherosclerotic materials may comprise shrinkage, melting, and the like of atherosclerotic and other plaques. Atherosclerotic material within the layers of an artery may be denatured, melted and/or the treatment may involve a shrinking of atherosclerotic materials within the artery layers so as to improve blood flow. The invention may also provide particular advantages for treatment of vulnerable plaques or blood vessels in which vulnerable plaque is a concern, which may comprise eccentric lesions. The invention will also find applications for mild heating of the cap structure (to induce thickening of the cap and make the plaque less vulnerable to rupture) and/or heating of the lipid-rich pool of the vulnerable plaque (so as to remodel, denature, melt, shrink, and/or redistribute the lipid-rich pool).


While the present invention may be used in combination with stenting, the present invention is particularly well suited for increasing the open diameter of blood vessels in which stenting is not a viable option. Potential applications include treatment of diffuse disease, in which atherosclerosis is spread along a significant length of an artery rather than being localized in one area. The invention may also find advantageous use for treatment of tortuous, sharply-curved vessels, as no stent need be advanced into or expanded within the sharp bends of many blood vessel. Still further advantageous applications include treatment along bifurcations (where side branch blockage may be an issue) and in the peripheral extremities such as the legs, feet, and arms (where crushing and/or stent fracture failure may be problematic).


In some instances, it may be desirable to obtain baseline measurements of the tissues to be treated (which may be characterized via intravascular ultrasound, optical coherence tomography, or the like) may be taken to help differentiate adjacent tissues, as the tissue signatures and/or signature profiles may differ from person to person. Additionally, the tissue signatures and/or signature profile curves may be normalized to facilitate identification of the relevant slopes, offsets, and the like between different tissues. Any of the techniques disclosed in U.S. Patent Application No. 60/852,787, entitled “Tuned RF Energy And Electrical Tissue Characterization For Selective Treatment Of Target Tissues”; and U.S. Provisional Application No. 60/921,973, filed on Apr. 4, 2007, entitled “Tuned RF Energy And Electrical Tissue Characterization For Selective Treatment Of Target Tissues”, the full disclosures of which are incorporated herein by reference, may be combined with the present invention.


Diffuse disease and vulnerable plaque are illustrated in FIGS. 1A and 1B, respectively. FIG. 1C illustrates vascular tortuosity. FIG. 1D illustrates atherosclerotic material at a bifurcation, while FIG. 1E illustrates a lesion which can result from atherosclerotic disease of the extremities.



FIG. 1F illustrates a stent structural member fracture which may result from corrosion and/or fatigue. Stents may, for example, be designed for a ten-year implant life. As the population of stent recipients lives longer, it becomes increasingly likely that at least some of these stents will remain implanted for times longer than their designed life. As with any metal in a corrosive body environment, material degradation may occur. As the metal weakens from corrosion, the stent may fracture. As metal stents corrode, they may also generate foreign body reaction and byproducts which may irritate adjoining body tissue. Such scar tissue may, for example, result in eventual reclosure or restenosis of the artery.


Arterial dissection and restenosis may be understood with reference to FIGS. 1G through 1I. The artery comprises three layers, an endothelial layer, a medial layer, and an adventitial layer. During traditional angioplasty, the inside layer may delaminate or detach partially from the wall so as to form a dissection as illustrated in FIG. 1G. Such dissections divert and may obstruct blood flow. FIG. 1H illustrates an artery wall around a healthy artery and FIG. 1I illustrates a restenosed artery. As can be understood by comparing FIGS. 1H and 1I, traditional angioplasty is a relatively aggressive procedure which may injure the tissue of the blood vessel. In response to this injury, in response to the presence of a stent, and/or in the continuing progression of the original atherosclerotic disease, the opened artery may restenose or subsequently decrease in diameter as illustrated in FIG. 1I. While drug eluting stents have been shown to reduce restenosis, the efficacy of these new structures several years after implantation has not be fully studied, and such drug eluting stents are not applicable in many blood vessels.


In general, the present invention provides a catheter system which is relatively quick and easy to use by the physician. The catheter system of the present invention uses mild heat to provide tissue surface temperatures in a range between about 50° C. and 65° C. to gently remodel the tissue, that may allow arteries to be opened.



FIG. 2 shows one embodiment of a catheter system 10 for inducing desirable temperature effects on artery tissue. The catheter system 10 includes a balloon catheter 12 having a catheter body 14 with a proximal end 16 and a distal end 18. Catheter body 14 is flexible and defines a catheter axis 15, and may include one or more lumens, such as a guidewire lumen 22 and an inflation lumen 24 (see FIG. 3). Still further lumens may be provided if desired for other treatments or applications, such as perfusion, fluid delivery, imaging, or the like. Catheter 12 includes an inflatable balloon 20 adjacent distal end 18 and a housing 29 adjacent proximal end 16. Housing 29 includes a first connector 26 in communication with guidewire lumen 22 and a second connector 28 in fluid communication with inflation lumen 24. Inflation lumen 24 extends between balloon 20 and second connector 28. Both first and second connectors 26, 28 may optionally comprise a standard connector, such as a Luer-Loc™ connector. A distal tip may include an integral tip valve to allow passage of guidewires, and the like.


Housing 29 also accommodates an electrical connector 38. Connector 38 includes a plurality of electrical connections, each electrically coupled to electrodes 34 via conductors 36. This allows electrodes 34 to be easily energized, the electrodes often being energized by a controller 40 and power source 42, such as bipolar or monopolar RF energy, microwave energy, ultrasound energy, or other suitable energy sources. In one embodiment, electrical connector 38 is coupled to an RF generator via a controller 40, with controller 40 allowing energy to be selectively directed to electrodes 38. When monopolar RF energy is employed, patient ground may (for example) be provided by an external electrode or an electrode on catheter body 14.


In some embodiments, controller 40 may include a processor or be coupled to a processor to control or record treatment. The processor will typically comprise computer hardware and/or software, often including one or more programmable processor unit running machine readable program instructions or code for implementing some or all of one or more of the methods described herein. The code will often be embodied in a tangible media such as a memory (optionally a read only memory, a random access memory, a non-volatile memory, or the like) and/or a recording media (such as a floppy disk, a hard drive, a CD, a DVD, a non-volatile solid-state memory card, or the like). The code and/or associated data and signals may also be transmitted to or from the processor via a network connection (such as a wireless network, an Ethernet, an interne, an intranet, or the like), and some or all of the code may also be transmitted between components of catheter system 10 and within processor via one or more bus, and appropriate standard or proprietary communications cards, connectors, cables, and the like will often be included in the processor. Processor will often be configured to perform the calculations and signal transmission steps described herein at least in part by programming the processor with the software code, which may be written as a single program, a series of separate subroutines or related programs, or the like. The processor may comprise standard or proprietary digital and/or analog signal processing hardware, software, and/or firmware, and will typically have sufficient processing power to perform the calculations described herein during treatment of the patient, the processor optionally comprising a personal computer, a notebook computer, a tablet computer, a proprietary processing unit, or a combination thereof. Standard or proprietary input devices (such as a mouse, keyboard, touchscreen, joystick, etc.) and output devices (such as a printer, speakers, display, etc.) associated with modern computer systems may also be included, and processors having a plurality of processing units (or even separate computers) may be employed in a wide range of centralized or distributed data processing architectures.


Balloon 20 is illustrated in more detail in FIG. 3. Balloon 20 generally includes a proximal portion 30 coupled to inflation lumen 24 and a distal portion 32 coupled to guidewire lumen 22. Balloon 20 expands radially when inflated with a fluid or a gas. In some embodiments, the fluid or gas may be non-conductive and/cooled. In some embodiments, balloon 20 may be a low pressure balloon pressurized to contact the artery tissue. In other embodiments, balloon 20 is an angioplasty balloon capable of higher pressure to both heat the artery tissue and expand the artery lumen. Balloon 20 may comprise a compliant or non-compliant balloon having helical folds to facilitate reconfiguring the balloon from a radially expanded, inflated configuration to a low profile configuration, particularly for removal after use.


Electrodes 34 are mounted on a surface of balloon 20, with associated conductors 36 extending proximally from the electrodes. Electrodes 34 may be arranged in many different patterns or arrays on balloon 20. The system may be used for monopolar or bipolar application of energy. For delivery of monopolar energy, a ground electrode is used, either on the catheter shaft, or on the patients skin, such as a ground electrode pad. For delivery of bipolar energy, adjacent electrodes are axially offset to allow bipolar energy to be directed between adjacent circumferential (axially offset) electrodes. In other embodiments, electrodes may be arranged in bands around the balloon to allow bipolar energy to be directed between adjacent distal and proximal electrodes.


Referring now to FIG. 4A, an exemplary balloon catheter structure having an array of electrodes thereon can be seen. FIG. 4B illustrates an exemplary RF generator for energizing the electrodes of the balloon catheter of FIG. 4A. The balloon catheter and RF generator of FIGS. 4A and 4B were used in a series of experiments on animal models, with the balloons having diameter sizes ranging from about 3 mm to about 8 mm. The test subjects comprised Healthy domestic swine and Yucatan Mini-Swine. Atherosclerotic disease was induced (Injury & HFHC diet), to demonstrate the ability of a system including the balloon catheter and RF generator of FIGS. 4A and 4B to deliver controlled therapy to artery walls. Histology was obtained at post-treatment endpoints to determine the extent of tissue damage and the appropriate treatment dose ranges.


Electrodes 34 may be mounted on balloon 20 using any suitable attachment. In the embodiment shown in FIG. 5A, electrodes 34 are mounted or made on a flexible substrate or “flexible circuit” 35 that is attached to the balloon 20 with a suitable adhesive. The associated conductors 36 are attached to the catheter body 14. The flexible circuit 35 should be flexible to allow folding and inflation of the balloon. Each flexible circuit 35 includes multiple pads 34, for example, a preferred embodiment includes sixteen pads arranged in a linear array electrode.


Referring now to FIG. 5B, a flexible circuit panel 110 having flexible circuits 112, 114, and 116 is shown. Each of the flexible circuits include electrically conductive leads 118 that extend between proximal electrical contacts 120 and distal electrodes 122. Leads 118 are supported by a flexible polymer substrate 124, and the flexible circuits may be used in catheter 12 (see FIG. 1), for example, by cutting the substrate around and/or between the electrical components of the circuit, mounting the electrodes to balloon 20, and extending leads 118 toward and/or along catheter body 14 for electrical coupling to controller or processor 40 and energy source 42. One or more flexible circuits may be mounted to balloon 20, with the electrodes of each flexible circuit optionally providing a grouping or sub-array of electrodes for treating a plurality of remodeling zones in the target tissue. Alternative sub-arrays may be provided among electrodes of different flexible circuits, may be defined by programmable logic of the processor, and/or may comprise any of a wide variety of alternative electrode circuit structures, with the sub-arrays often being employed for multiplexing or treating the region of target tissue with a plurality of differing electrical energy paths through the tissue.


Still referring to FIG. 5B, multiplexing between selected electrodes of an array or sub-array can be effected by selectively energizing electrode pairs, with the remodeling zones for the sub-array being disposed between the electrodes of the pairs so that the energy passes therethrough. For example, a pair of electrodes selected from electrodes 1, 2, 3, 4, 5, and 6 of flexible circuit 112 (with the selected electrodes optionally being positioned opposite each other) may be energized and then turned off, with another pair then being energized, and so forth. The firing order might be 1 and 4, then 2 and 5, then 3 and 6. Bipolar potentials between the electrodes of the pair can induce current paths in the same general tissue region, with the power dissipated into the tissue optionally remaining substantially constant. This provides a duty cycle of about ⅓ with respect to heat and/or losses at each electrode surface. The four electrode configurations of flexible circuits 114 and 116 could be used in a similar manner. Monopolar energy might also be applied using a larger ground pad on the skin of the patient or the like.



FIG. 5C shows flexible circuit panels 128 having flexible circuits 35 for use in FIG. 5A. Each of the flexible circuits 35 include electrically conductive leads 36 that extend between proximal electrical contacts 132 and distal electrodes 34. In the embodiment shown, each leg of flexible circuit 35 contains 16 electrodes 34 connected with one contact 132. This minimized the number of wires needed for conductive leads 36. The electrode pad may be 0.5 mm wide with 0.2 mm spacing between electrodes 34. The length and width of the electrode pad and number of electrodes may be changed for a desired impedance, for example, to match the impedance of the controller or generator. Leads 36 are supported by a flexible polymer substrate 134, and the flexible circuits may be used in catheter 12 (see FIG. 1), for example, by cutting the substrate around and/or between the electrical components of the circuit, mounting the electrodes to balloon 20, and extending leads 36 toward and/or along catheter body 14 for electrical coupling to controller or processor 40 and energy source 42. One or more flexible circuits may be mounted to balloon 20, with the electrodes of each flexible circuit optionally providing a grouping or sub-array of electrodes for treating a plurality of remodeling zones in the target tissue (See FIGS. 8A-8D). Alternative sub-arrays may be provided among electrodes of different flexible circuits, may be defined by programmable logic of the processor, and/or may comprise any of a wide variety of alternative electrode circuit structures, with the sub-arrays often being employed for multiplexing or treating the region of target tissue with a plurality of differing electrical energy paths through the tissue.


In one embodiment, a solid insulated wire of suitable size is flattened on a distal end, for example being coined or rolled, squashing the wire to create a shape appropriate for an electrode 34. The insulation along the coined surface is removed. In some embodiments, the wire is made of platinum, while in other embodiments, the coined surface is electroplated with gold. The wire and electrode are then placed in the correct position and adhered to the balloon 20.



FIG. 6A shows one embodiment in which electroplated portions 50 of a balloon 20 act as the electrodes 34 with an electrode base 52 placed on the inside of the balloon 20. In this embodiment, a portion of a balloon is electroplated so it may conduct electricity through its wall. Electroless plating or metal deposition may also be used. The wire-electrode 52 is adhered to the inside of the balloon with conductive epoxy 54, the balloon becomes the surface of the electrode 34. To minimize the current density within the wall of the balloon, the wire electrode may be in the same pattern as that electroplated on the balloon. The wire-electrodes may be manufactured from a wire 56 in a forging process similar to that used in the making of nails, shown in FIG. 6B. An end of a magnetic wire 56 is placed into a forging mold 58 so that a length of wire, whose volume is equal to that of the desired electrode is extended into the mold and forged into the electrode base 52. The wire-electrode, with the exception of the electrode base, may be insulated, so that the electrodes are isolated from one another and from the fluid used for balloon inflation. This method will encapsulate the assembly, minimize the risk of electrode delamination, increase the manufacturing yield, and is adaptable to any desirable electrode shape and patterning.


In another embodiment, electrodes 34 contain materials of differing specific resistivity cured on the balloon 20. One example is using an excimer laser to selectively cure photocurable ink on the balloon. Thus, electrode pads and traces may bye directly mounted on the balloon. This process starts by covering the balloon with photocurable or photoimageable conductive ink. A laser is then used to direct write the traces and electrode pads (UV cure) The uncured conductive ink is then removed or rinsed off. A cover layer is placed over the entire balloon and circuits, such as a parylene coating. The parylene coating is then removed to expose the electrode pads, for example, using an excimer laser. The electrode pads are then coated with a conductive material, such as Ni/Au. In another embodiment, a direct drive laser printer is used to lay down a conductive ink circuit with electrode pads and traces on the balloon surface.


In some embodiments, small holes may be used to perfuse a fluid on or near the electrodes to eliminate sticking of the electrodes to the artery tissue. The holes may be less than 1 μm in diameter and may be made with a laser or ion beam. The holes may be made in the electrodes, flexible circuit, and/or balloon. In one example, electrode pads on a flexible circuit are designed with vias that are plated. The flexible circuit is mounted on a balloon and a laser or ion beam is used to create the holes in the flexible substrate and balloon. There may be several holes in the flexible/balloon for every electrode pad. The balloon may then be perfused with standard perfusion balloon equipment or specialized equipment. The perfusion approach may also provide additional advantages beyond eliminating sticking, such as carrying away heat or regulating impedance of the load.


In some embodiments if may be advantageous to embed electrodes 34 into the artery tissue. The electrodes may have features to assist in imbedding, such as sharpened edges, needle protrusions, or the like, capable of piercing the artery tissue. For example, in a diseased tissue there will be some fibrous surface tissue surrounding the lumen that may tend to conduct energy, thereby avoiding the diseased tissue. This fibrous surface may tend to dominate any impedance measurement if they are probed superficially. By digging the electrodes into the wall of the fibrous cap, it may be possible to direct energy through the fibrous tissue directly into the diseased tissue, or closer to the diseased tissue. The energy may be Joule heating or a current source that puts more heating into the diseased tissue with higher resistively. The healthy tissue can dissipate the energy without significant damage. This technique may also assist in detecting diseased tissue electrically.


Monitoring the space between electrodes or electrode flexible circuits during inflation may assist in determining the direction of diseased tissue within an artery. The space between pairs of electrodes increases with pressure in an elastic balloon when it is unconstrained during inflation. When a balloon is placed within an eccentrically effected diseased tissue, the diseased portion stretches less than the healthy tissue. So the change in the distance between the pairs changes more in the healthy tissue and less in the diseased tissue, indicating the direction, and maybe the amount, of diseased tissue in the artery.


Monopolar Treatment



FIG. 7A shows one embodiment of balloon catheter system for use for monopolar treatment of diseased tissue in a leg. A balloon catheter 20 having electrodes 34 are positioned within an artery lumen 60 having diseased tissue 62. An electrical ground 64 is positioned on the patients skin, or may be many ground electrode pads 68 positioned around a patients leg 66, such a in a band or sock. When power is applied to the multiple monopolar electrodes 34 arranged around the circumference of the artery lumen, energy 70 is directed radially outward through the artery wall.


By driving energy 70 radially outward, it is possible to force energy through the disease tissue 62, which has a higher electrical resistivity than healthy tissue. By applying low power for a long time duration, the disease tissue may be treated. Low power is defined as the level of power which healthy tissue can dissipate the heat in a steady state without the healthy tissue temperature rising above a given threshold. The temperature may be between 45° C. and 50° C., which will denature the actin and myosin proteins that enable elastic recoil, without causing excessive necrosis. The energy may be applied for a long time, where long is defined by the desired duration of the procedure, bounded on the high side by the amount of time healthy tissue can withstand the elevated temperature being caused, and bounded on the low side by the amount of time the diseased tissue needs for treatment to be complete. By treating for a long time, it is possible to accumulate heat in the diseased tissue, which has a lower heat capacity per mass and a lower thermal conductivity. Variability in impedance can be compensated by the controller, in order to apply either constant power, constant current, or constant voltage, whichever has the most advantage.


The energy in the monopolar treatment shown if FIG. 7A travels outwardly from the electrodes 34 and treats both diseased 62 and healthy artery tissue. Looking at the current path in tissue, diseased artery tissue, such as fat or lipidic material, has a low electrical conductivity compared to other artery constituents. If this is true, the current 70 may go around the diseased tissue 62 if possible, and find a less restrictive path, such as shown in FIG. 7B.


In some embodiments, internal 34 and external electrodes 68 may be used to map artery plaque. By assembling a matrix of impedance readings, both bipolar and monopolar, it may be possible to map the constituent composition and location of the disease in the artery. Once this information in known, it may be possible to treat using the same known electrode positions. The treatment can either by monopolar or bipolar. Analysis is done weighting the contributions of the distance between the internal and external electrodes with the contribution differences in cellular composition in each path. Design of the external electrodes 68 may be guided by computational capacity, maximizing the number of electrode points both around the circumference and along the patients leg (lengthwise). In one embodiment, the external electrodes 68 are embedded in a sock or sleeve forming a matrix of electrodes on the outside of the patients skin. This may device gives improved resolution in measuring current paths from multiple directions and provides a way to identify what the internal electrodes are opposed to in the artery.


Bipolar Treatment



FIGS. 8A-8D show different embodiments of electrodes 34 mounted circumferentially on balloon 20 to provide treatment to artery tissue using bipolar energy between electrode pairs 34A and 34B. The electrode pairs may be any electrode pairs on the balloon, for example, in some embodiments, the electrode pairs may be 34A and 34C, or 34A and 34D, or 34A and 34E, or any combination of 34A-34E. This arrangement creates an energy path through the tissue that delivers heat or energy in particular treatment zones or segments 72 to the artery tissue between the electrode pairs (“remodeling zones”). Using different combinations of electrode pairs may reduce or eliminate gaps between the remodeling zones by using overlapping pairs. Using electrode pairs with bipolar energy may avoid some potential issues of the monopolar approach. Diseased artery tissue has a higher electrical resistively than healthy artery tissue. If all the electrodes are energized, such as in a monopolar system, the heat or energy may flow through the healthy artery tissue and not into the diseased artery tissue (see FIG. 7B). By using pairs of electrodes in a bipolar system, the heat or energy will go through the healthy tissue, diseased tissue, or a combination of both healthy and diseased tissues between the electrode pairs in the remodeling zones. Any number of electrode pairs may be used in different patterns or arrays. In the embodiments shown, the pitch between electrode pairs remains the same, for example 3.14 mm, so that the treatment volume is the same regardless of balloon size and each of the electrode pairs use the same energy. As the balloons become larger, more electrode pairs are placed on the balloon, such as shown in FIGS. 8A-8D. The spacing between electrode pairs may range from about 0.25 to 2.5 mm, depending on balloon size. The maximum distance (angle) between electrode pairs is 180 degrees on the balloon. FIG. 8A shows a balloon having a 3.0 mm diameter with three electrode pair in three segments 72A. FIG. 8B shows a balloon having a 4.0 mm diameter with four electrode pair in four segments 72B. FIG. 8C shows a balloon having a 5.0 mm diameter with five electrode pair in five segments 72C. FIG. 8D shows a balloon having a 6.0 mm diameter with six electrode pair in six segments 72D.


The use of catheter system 10 for remodeling artery tissue by heating can be understood with reference to FIGS. 9A-9C. As seen in FIG. 9A, accessing of a treatment site will often involve advancing a guidewire 74 within a blood vessel 76 at a target region of diseased tissue, such as atherosclerotic material 78. Location of balloon 20 may be facilitated by radiopaque markers or by radiopaque structure (or corresponding radiopaque markers placed on or near) balloon 20, and/or by the use of radiopaque electrodes 34. A wide variety of guidewires may be used. For accessing a vessel having a total occlusion, guidewire 74 may comprise any commercially available guidewire suitable for crossing such a total occlusion, including the Safe-Cross™ RF system guidewire having forward-looking optical coherence reflectometry and RF ablation. Where atherosclerotic material does not result in total occlusion of the lumen, such capabilities need not be provided in guidewire 74, although other advantageous features may be provided. Guidewire 74 may be positioned under fluoroscopic (or other) imaging.


Catheter 12 is advanced distally over guidewire 74 and positioned adjacent to atherosclerotic material 62. Balloon 20 expands radially within the lumen of the blood vessel so that electrodes 34 radially engage atherosclerotic material 78. As atherosclerotic material 78 may be distributed eccentrically about catheter 12, some of electrodes 34 may engage both atherosclerotic material 78 and healthy tissue 80, as can be understood with reference to FIGS. 9B and 9C.


In some cases, an imaging may be used for identification and/or characterization of atherosclerotic materials, plaques, tissues, lesions, and the like from within a blood vessel. Suitable imaging catheters for use in the present catheter system are commercially available from a wide variety of manufacturers. Suitable technology and/or catheters may, for example, be commercially available from SciMed Life Systems and Jomed-Volcano Therapeutics (providers of intravascular ultrasound catheters), Light Lab™ Imaging (developing and commercializing optical coherence tomography catheters for intravascular imaging), Medtronic CardioRhythm, and the like. Still further alternative technologies may be used, including ultra fast magnetic resonance imaging (MRI), electrical impedance atheroma depth measurements, optical coherence reflectometry, and the like. Non-invasive imaging modalities which may be employed include X-ray or fluoroscopy systems, MRI systems, external ultrasound transducers, and the like. Optionally, external and/or intravascular atherosclerotic material detectors may also be used to provide temperature information. For example, a system having an MRI antenna may detect tissue temperatures such that a graphical indication of treatment penetration may be presented on the system display. Tissue temperature information may also be available from ultrasound and/or optical coherence tomography systems, and the temperature information may be used as feedback for directing ongoing treatments, for selecting tissues for treatment (for example, by identifying a hot or vulnerable plaque), and the like.


As discussed above, electrodes 34 are positioned circumferentially around the balloon 20. RF energy is directed to electrodes adjacent pairs of electrodes 34A and 34B, treating both atherosclerotic material 78 and the healthy tissue 80. The controller 40 may energize the electrodes with about 0.25 to 5 Watts average power for 1 to 180 seconds, or with about 4 to 45 Joules. Higher energy treatments are done at lower powers and longer durations, such as 0.5 Watts for 90 seconds or 0.25 Watts for 180 seconds. Most treatments in the 2 to 4 Watt range are performed in 1 to 4 seconds. Using a wider electrode spacing, it would be appropriate to scale up the power and duration of the treatment, in which case the average power could be higher than 5 Watts, and the total energy could exceed 45 Joules. Likewise, using a shorter or smaller electrode pair would require scaling the average power down, and the total energy could be less than 4 Joules. The power and duration are calibrated to be less than enough to cause severe damage, and particularly less than enough to ablate diseased tissue 48 within a blood vessel. The mechanisms of ablating atherosclerotic material within a blood vessel have been well described, including by Slager et al. in an article entitled, “Vaporization of Atherosclerotic Plaque by Spark Erosion” in J. of Amer. Cardiol. (June, 1985), on pp. 1382-6; and by Stephen M. Fry in “Thermal and Disruptive Angioplasty: a Physician's Guide;” Strategic Business Development, Inc., (1990) the full disclosures of which are incorporated herein by reference.


Referring now to FIG. 7C, as described above, balloon 20 may be an angioplasty balloon that combines heating with opening the artery lumen. In some embodiments, injury caused to the atherosclerotic material with the energized electrodes or other energy directing surfaces may result in subsequent resorption of the injured tissue lesions so as to provide further opening of the vessel after termination of treatment as part of the healing process.


In some embodiments, balloon 20 may be repeatedly contracted, axial movement of the catheter 12 employed to reposition balloon 20, with subsequent expansion of balloon 20 at each of a plurality of treatment locations along atherosclerotic material 78.


The exemplary catheter devices and methods for their use described herein are intended for application in the lumen of vessels of the human anatomy. The anatomical structure into which the catheter is placed may be, for example, the esophagus, the oral cavity, the nasopharyngeal cavity, the auditory tube and tympanic cavity, the sinus of the brain, the arterial system, the venous system, the heart, the larynx, the trachea, the bronchus, the stomach, the duodenum, the ileum, the colon, the rectum, the bladder, the ureter, the ejaculatory duct, the vas deferens, the urethra, the uterine cavity, the vaginal canal, and the cervical canal.


Frequency targeting of tissues is illustrated in FIG. 10. Different tissue types have different characteristic electrical impedances that cause the tissue to absorb energy of certain frequencies or frequency ranges more readily than others. By applying energy at the specific frequency or range of frequencies that the tissue is more conductive, energy penetrates the tissue more readily. In general, it has been shown that samples of diseased tissue exhibit higher impedance characteristics than samples of healthy tissue. In the case where a diseased area of tissue 78 is surrounded by relatively healthy tissue 80, the healthy tissue is likely to shield the diseased tissue from electrical current flow due to the lower impedance of the healthy tissue. Hence, minimal (or less than the desired) current flow 82 may pass through diseased tissue 78, and heavier current flow 84 may be seen in low impedance healthy tissue 80 when bipolar current is transmitted between electrodes 34A and 34B. Typically, the frequency ranges in which tissue impedance varies to a useful degree occur between 30 kilohertz and 30 Megahertz.


Frequency targeting seeks to deliver more energy to the diseased tissue by determining the frequency or range of frequencies at which the impedance of the diseased tissue is equal to or less than that of the healthy tissue, such as by operation at or above a threshold frequency. Energy delivered at the specified frequency or range of frequencies will cause more heat to be dissipated in the diseased tissue than energy delivered outside of those specific frequencies.



FIG. 11 shows some results of testing done on a cadaver aorta. By using an average power between 1 and 5 Watts for between 0.5 and 10 seconds the surface temperature reached was between 50 and 65° C. Sample doses are shown below in Table 1











TABLE 1





Power
Time
Temp


















1
Watt
8 sec
50° C.


2
Watts
2 sec
50° C.


3
Watts
1.3 sec  
50° C.


4
Watts
1 sec
50° C.


5
Watts
.5 sec 
50° C.


2
Watts
4 sec
60° C.


3
Watts
2 sec
60° C.


4
Watts
1.5 sec  
60° C.


5
Watts
1 sec
60° C.


3
Watts
3 sec
65° C.


4
Watts
2 sec
65° C.









As the energies and powers for characterizing and/or treating tissues are relatively low, the power source may optionally make use of energy stored in a battery, with the power source and/or associated controller optionally being contained within a hand-held housing. Use of such battery-powered systems may have benefits within crowded operating rooms, and may also help avoid inadvertent over treatment. The batteries may be disposable structures suitable to be included in a kit with a single-use catheter, while the processor circuitry may be re-useable. In other embodiments, the batteries may be rechargeable.


Electrode Design Considerations


Delivering RF energy directly to a specimen requires a conductive path to be formed between two terminals or poles of an energy source. Currently there are two polar configurations that exist which satisfy this condition: a mono-polar configuration (FIG. 12A) and a bipolar configuration (FIG. 12B). In a mono-polar configuration there is a single pole or electrode from which the energy emanates and a grounding plate or pad to absorb the energy and complete the circuit. This configuration creates higher energy densities at the electrode than at the grounding pad which results in a single effected area or treatment zone at the electrode which is directly related to the geometry of the electrode and the power applied to the electrode. As the surface area of the mono-polar electrode increases, so does the size of the treatment zone. The bi-polar configuration, on the other hand uses two poles or electrodes to set up an electric field between the electrodes thus creating a conduction path for the current to flow. Unlike the mono-polar electrode configuration where only one geometric entity, surface area is deterministic to the treatment zone, the bi-polar electrode configuration has three, electrode separation, parallel length and width, each of which have a separate and distinct effect on the treatment zone.


If we take into consideration the effect each geometric entity has on the effected treatment zone and the overall impedance as seen by the generator, we find that the separation or distance between electrodes has the greatest effect, followed by parallel length and lastly electrode width. Electrode separation is governed by Coulombs law which states that the force between two charged objects is inversely proportional to the square of the distance between them. In other words at very close distances the impedance as seen by a generator is very small and as we separate the electrodes the impedance increases at a rate that is proportional to the square of their separation. As this separation increases, a higher potential energy is generated due to the increase in impedance creating a greater flux density which results in a greater treatment depth. The effect of increasing the parallel length shared by the two electrodes causes the treatment zone to increase only as much as the parallel electrode length is increased. There are no additional depth effects only an increase due to added length. This additional length causes the impedance as seen by the generator to decrease due to the increase in potential parallel paths for the current to flow through. Electrode width has the least effect on the treatment zone and is governed by the same laws as electrode separation. As the width of the electrode is increased incrementally, the added effect is small due to the inverse square law for each incremental element placed on the outer edges of the existing electrode elements. Although this effect may be small it aides in reducing the surface heat generated by reducing the current density at the inside edge of the electrode pairs. This effect is amplified as the conductance of the electrode material approaches the conductance of the tissue being treated due to the path of least resistance becoming the tissue rather than the electrode itself.


In order to better control the flow of electrical current to the inside of the arterial wall and to have a therapy which has the capability to selectively treat a desired area of an artery, the bipolar configuration is clearly the most desirable method of implementation.


Implementation requires that the electrodes be in contact with the inner surface of the arterial wall so the conductive path is the artery itself and not the more conductive blood flowing within the artery. Many mechanism may be used to contact the electrodes to the inner surface of the arterial wall. In the present case, a balloon is used as the deployment mechanism. The bipolar electrodes may be arranged on the balloon either a radial topology (FIG. 13) or a longitudinal topology (FIG. 14).


Each topology, radial and longitudinal, provides for a bi-polar configuration as well as offer a selective therapy, however the method of selectivity of each topology differ. The radial topology offers longitudinal selectivity along the length of an artery while the longitudinal topology offers circumferential selectivity. When we then take into consideration how atherosclerosis forms within an artery, we find that it starts out at a localized area on the arterial wall and spreads along the wall sometimes completely occluding the flow of blood. In the case of complete occlusion or stenosis where the diseased tissue is concentric about the entire circumference of the artery (FIG. 15A), each topology will suffice. However, in the case where the diseased tissue is eccentric and a portion of the artery is still healthy tissue (FIG. 15B), the longitudinal topology is preferred due to the difference in thermal and electrical conductivity between the healthy tissue and diseased tissue. This difference, in the case of the radial topology will cause the healthy portion to be treated more than the disease which is not a desirable outcome. When we also take into consideration that the balloon must first be folded to reduce the cross sectional area for deployment, it becomes clear that the longitudinal topology appears to be the better choice.


The next was how to arrange the electrode on the balloon. How long should the electrodes be? How wide should the electrodes be? And how far apart should the electrodes be separated? An initial starting point was to use four balloon diameters, 3 mm, 4 mm, 5 mm and 6 mm. An electrode geometry configuration was designed so that each balloon diameter would be capable of accepting the same electrode geometry configurations, so no matter what size balloon was being used, the treatment could be the same. With this configuration, the basic relationship of the circumference of the balloon is related to the diameter by the factor of π (pi). The circumference of the balloon is equal to its diameter multiplied by π (pi). Using the balloon diameters to dictate the number of electrode pairs placed on a balloon, the center to center electrode spacing would be π (pi) divided by 2. This configuration allows for the even distribution of electrodes about the circumference of the balloon for each whole number balloon diameter. With the electrodes center to center spacing decided, next is to figure out the ratio of the electrodes width to their separation. This ratio would have to take in to consideration the desired depth of treatment, as well as the effects of surface heating. Taking these factors into consideration, a ratio of approximately 1:2 was selected. The actual numbers used were an electrode width of 0.5 mm with a spacing of 1.07 mm, which fits nicely with the π/2 center to center separation. This selected configuration also allowed twice the number of possible treatment zones for each balloon diameter (2n) as compared to one electrode pair for each millimeter of balloon diameter. Having twice the number of available treatment zones also meant that there was a greater potential for selectivity.


The last geometric entity yet to be decided was the length of the electrodes. When trying to measure the impedance of the tissue the electrodes are in contact with, it is more desirable to implement shorter electrodes so there is more sensitivity in the measurement and also more immunity to noise. Shorter electrodes on the other hand also mean that to treat an adequate area there needs to be many more electrode pairs and as a result more wires connecting those electrodes to the generator which will ultimately decrease the flexibility and complexity of the catheter. If long electrodes are used to reduce the wire count and to increase the potential treatment area, a different set of problems arise. Although long electrodes allow for a potentially larger treatment zone, they also allow for the possibility of overlapping into a healthy area which would result in an uneven treatment which could preferentially treat the healthy area rather than the diseased. The other disadvantage is the reduced sensitivity when measuring impedance due to the increase in available current paths which also results in the need for larger diameter wires to accommodate the increased current requirements. In solving this problem available balloon lengths were looked at and 16 mm electrodes were chosen to use on a 20 mm balloon. This selection allowed for reasonable sensitivity while keeping the wire size to a minimum.


There are many available methods for placing electrodes onto a balloon, ranging from vapor deposition to flexible circuitry to individual machined electrode and flattened wire. The main consideration was a proven manufacturing method, materials that could be placed in the body and parts that could be handled fairly easily without damage. Taking these factors into consideration, the use of flexible circuitry was chosen as the method to manufacture the electrodes. Flexible circuitry met all of the above criteria while still being flexible after being mounted to the balloon. When designing the flexible electrodes, the design should ensure that the electrodes are in firm contact with the arterial wall, evacuating as much of the blood as possible. To achieve this, individual rounded pads were selected that were 0.5 mm wide by 0.8 mm long separated by a distance of 0.2 mm. Pads were connected together in “string” using 0.5 oz Cu traces with 0.5 mil polyimide on the front and back and between electrode pads providing insulation and isolation. The pads were then plated up so the finished pad height was above polyimide cover-lay. The 0.2 mm separation between connected pads was implemented to retain flexibility and to ensure the connection was maintained during flexing. An electroless nickel-immersion gold coating was used to cover all exposed copper for safety. These electrodes were then adhered to the balloon using a flexible UV cured adhesive.


Referring now to FIG. 16, suitable power ranges for providing the desired heating of the target tissue, and/or for limiting of heating to collateral tissues, may depend at least in part on the time for which energy is applied, on the electrode (or other energy transmitting surface) geometry, and the like. First, when applying the treatments described herein to tissues with electrodes, there may be preferred a load impedance range of the tissues within the circuit so as to avoid having to apply voltages and/or currents that are outside desirable ranges, particularly when applying powers within ranges described herein. Suitable load impedance ranges would generally be within a range from about 20 Ohms to about 4500 Ohms, more typically being in a range from about 40 Ohms to about 2250 Ohms, and preferably being in a range from about 50 to about 1000 Ohms.


The load impedance of the tissue within the circuit may depend on the characteristics of the tissue, and also (for example) on the geometry of a bipolar pair of electrodes that engage the tissue, as the electrodes geometries influence the geometry of the tissue effectively included within the circuit. The tissue to which energy is directed may have a specific conductivity in a range from about 0.2 Siemens per meter to about 0.5 Siemens per meter. Different types of diseased tissues may have specific conductivities in different ranges, with some types of diseased tissues having specific conductivities in a range from about 0.2 Siemens per meter to about 0.35 Siemens per meter, while others fall within a range from about 0.35 Siemens per to about 0.5 Siemens per meter. The spacing between the pair of electrodes and the length of electrodes (transverse to their spacing) will both have effects on the load impedance, with most embodiments having electrode pair spacings (adjacent edge-to-edge) of between 0.25 mm and 2.50 mm, exemplary embodiments having electrode pair spacing of between 0.50 and 2.00 mm, and preferred embodiments having electrode pair spacing of between 0.75 and 1.50 mm.


Regarding the length and spacing of the electrodes within a particular pair, these factors are inter-related with the power and impedance. As the length of the electrodes decreases, the impedance seen by the generator will go up, but the volume of tissue will go down, so that the power setting on the generator may be decreased. As the gap between the electrodes widens, the impedance seen by the generator will also go up, but the volume of tissue will go up as well, so that the power setting on the generator should be increased. Hence, there are roughly opposed effects on load impedance when you decrease electrode length and electrode spacing.


Desired power, energy, and time of the treatment are likewise inter-related, and may also be at least related with electrode geometry. Speaking very generally, lower power treatments applied for long times tends to result in treatments with relatively higher total energies, while higher power treatments for shorter times tends to result in lower energy treatments. More specifically, at relatively low average power (1 W or less) the total energy delivery per treatment may range from 8 to 45 Joules. At higher power (more than 1 W), the total energy delivery per treatment may range from 4 to 15 Joules. If the electrode spacing were doubled, power may increase by four times. The power transmitted into the tissue can be calibrated and scaled to the particular electrode configuration, often in order to keep the power and energy density in a desirable range. Exemplary power ranges may be, for example from about 1 to 5 Watts. The duration is longer for the lower power settings, and typically varies from about 1 to 8 seconds. Very low power settings less than 1 Watt are also possible, using durations much longer than 10 seconds.


It is also possible to scale the power settings significantly by varying the electrode configuration. If, for instance, the inner edge-to-edge spacing of the electrodes are increased, roughly 4 times the power may be applied because the volume of tissue becomes roughly 4 times larger. As such, an electrode configuration that is somewhat different from the exemplary embodiments described herein could be used within a power range of roughly 4 to 20 Watts. Shortening the electrodes, and thus shortening and reducing the volume of the remodeling zones, would also affect the magnitude of the power that is appropriate to apply to the tissue volume.


Referring still to FIG. 16, in order to quantify this complex set of relationships, and bound the space within which the exemplary treatment device can operate, an empirical relationship between safe values of several of these parameters may be generated and provided graphically, in table form, or by a mathematical relationships. An exemplary equation describing a particularly advantageous relationship is:

power=b*x{circumflex over ( )}2*L*(t{circumflex over ( )}(−0.59))

where b is a parameter in the range of 0.2 to 0.6, x is the inner edge-to-edge spacing of the electrodes in millimeters, L is the length of the electrodes in millimeters (and also the approximate length of the remodeling zone), the power is in Watts, and t is time in seconds. b has units of Watts/(mm{circumflex over ( )}3)*(seconds{circumflex over ( )}0.59). Exemplary treatments in the range described by this equation includes treatments such as 4 Watts for 2 seconds, 3 Watts for 3 seconds, 2 Watts for 4 seconds, and 1 Watt for 12 seconds with the exemplary electrode geometries described herein. Additionally, very low power long duration treatments such as 0.25 Watts for 180 seconds are covered as well. Alternative suitable treatment range falls within or near the set of curves shown in FIG. 16, which shows approximate numbers for maximum power and time by electrode dimensions. Still further alternative treatment parameter values can be understood with reference to Table 2, which shows total energies for different combinations of power and time for a few different electrode pair geometries.












TABLE 2








Alternative I
Alternative II



Exemplary Peripheral
Peripheral Treatment
Peripheral Treatment
Exemplary Coronary


Treatment Catheter
Catheter
Catheter
Treatment Catheter














X = 1 mm,

X = 2 mm,

X = 2 mm,

X = 0.5 mm,



L = 16 mm
Total
L = 16 mm
Total
L = 8 mm
Total
L = 8 mm
Total


















Time
Power
Energy
Time
Power
Energy
Time
Power
Energy
Time
Power
Energy


(s)
(W)
(J)
(s)
(W)
(J)
(s)
(W)
(J)
(s)
(W)
(J)





















1
5
5
1
20
20
1
10
10
1
0.625
0.625


2
4
8
2
16
32
2
8
16
2
0.5
1


3
3
9
3
12
36
3
6
18
3
0.375
1.125


4
2
8
4
8
32
4
4
16
4
0.25
1


12
1
12
12
4
48
12
2
24
12
0.125
1.5


30
0.5
15
30
2
60
30
1
30
30
0.0625
1.875


180
0.25
45
180
1
180
180
0.5
90
180
0.03125
5.625









While the exemplary embodiments have been described in some detail, by way of example and for clarity of understanding, those of skill in the art will recognize that a variety of modification, adaptations, and changes may be employed. Hence, the scope of the present invention should be limited solely by the appending claims.

Claims
  • 1. A system for inducing desirable temperature effects on a target body tissue disposed about a blood vessel, the system comprising: a catheter body having a proximal end and a distal end with an axis therebetween;a radially expandable member comprising a balloon supported by the distal end of the catheter body,the expandable member having a low profile insertion configuration and a larger profile configuration; anda plurality of electrodes included on a plurality of separate flexible circuits each adhesively bonded to an outer surface of the balloon so as to radially couple with a wall of the blood vessel and define a plurality of remodeling zones in a tissue treatment area when the expandable member is in the large profile configuration within the blood vessel, wherein the plurality of electrodes are distributed circumferentially about the balloon such that the plurality of remodeling zones extend about the circumference of the blood vessel, and wherein the flexible circuits are sufficiently flexible to allow folding and inflation of the balloon,wherein the plurality of electrodes includes a plurality of pairs of electrodes,wherein each pair of electrodes out of the plurality of pairs of electrodes are disposed on one of the plurality of separate flexible circuits, each one of the plurality of separate flexible circuits including a polymeric substrate;wherein the plurality of electrodes are configured to transmit a tissue remodeling energy to each of the plurality of remodeling zones such that when at least some remodeling zones of the plurality include collateral tissue without the target body tissue, the tissue remodeling energy is transmitted to the at least some remodeling zones heating the collateral tissue without causing thermal damage, while the tissue remodeling energy transmitted to remodeling zones including both the target tissue and collateral tissue heats the target tissue sufficiently to efficaciously alter the target tissue without causing thermal damage to the collateral healthy tissue.
  • 2. The system of claim 1, wherein the electrodes are arranged in an array.
  • 3. The system of claim 2, wherein the electrodes are circumferentially and axially offset.
  • 4. The system of claim 3 wherein the electrodes comprise a plurality of bipolar electrode pairs configured to be energized with RF energy, wherein the electrodes of the electrode pairs are circumferentially separated.
  • 5. The system of claim 4, wherein a circumferential distance between the electrodes of the electrode pairs is within a range from about 0.25 to 2.5 mm.
  • 6. The system of claim 4, wherein a spacing between the electrodes of the bipolar electrode pairs is such that the remodeling zones between electrodes of each pair, in combination, substantially circumscribe the circumference of the balloon.
  • 7. The system of claim 4, wherein the electrodes are configured so that the remodeling energy is applied at a frequency at which the body tissue is more conductive than collateral tissues.
  • 8. The system of claim 2, wherein each of the flexible circuits includes an associated bipolar electrode pair.
  • 9. The system of claim 8, wherein the electrodes of each bipolar electrode pair are disposed on the polymeric substrate of its associated flexible circuit so as to have a predetermined bipolar pair separation distance therebetween when the balloon is in the large profile configuration.
  • 10. The system of claim 9, wherein each electrode comprises a plurality of electrode pads, the electrode pads electrically coupled together by a conductive trace, an insulation layer being disposed over the trace, and an electrode surface of the electrode pads extending from the insulation layer so as to allow flexing along a length of the electrode.
  • 11. The system of claim 10, wherein the plurality of electrode pads comprise electrode pads that are circumferentially and axially offset from one another.
  • 12. The system of claim 2 wherein an electrode length of each electrode is between 8 mm and 16 mm.
  • 13. The system of claim 1 further comprising: a controller electrically coupling a power source to the plurality of electrodes for heating each of the remodeling zones with the remodeling energy by the energized electrodes so that a temperature of the target tissue ranges from about 50° C. to about 90° C. while heating of the collateral healthy tissue is limited to less than about 50° C.-65° C.
  • 14. The system of claim 13, wherein the power source comprises an RF generator and the controller is configured to selectively direct RF energy to electrode pairs of the plurality of electrodes.
  • 15. The system of claim 13, wherein the controller is configured to use temperature information of the tissue as feedback for delivering controlled treatment energy to the electrodes.
  • 16. The system of claim 13, wherein the controller is configured to energize the electrode pairs according to a duty cycle.
  • 17. The system of claim 13, wherein the controller is configured to energize the electrode pairs with about 0.25 to 20 Watts average power for a duration between 1 to 180 seconds.
  • 18. The system of claim 13, wherein the controller is configured to energize the electrode pairs so as to deliver 8 to 45 Joules of energy in a treatment.
  • 19. The system of claim 1, wherein the system is configured to effect controlled delivery of remodeling energy using a characteristic of the tissue measured with one or more electrode pairs.
  • 20. The system of claim 19, wherein the characteristic comprises a load impedance.
  • 21. A system for inducing desirable temperature effects on a target body tissue disposed about a blood vessel, the system comprising: an intravascular catheter body having a proximal end and a distal end with an axis therebetween;an intravascular balloon supported by the distal end of the catheter body, the balloon having a low profile insertion configuration and a larger profile configuration; anda plurality of flex circuits distributed about the balloon, each flex circuit including a polymeric substrate and a pair of electrodes mounted thereto, the flexible circuits being sufficiently flexible to allow folding and inflation of the balloon, the electrodes having a predetermined bipolar pair separation distance therebetween, the polymeric substrate being adhesively bonded to an outer surface of the balloon, wherein the plurality of flex circuits define a plurality of remodeling zones in a tissue treatment area that extend about a circumference of the blood vessel when the balloon is in the larger profile configuration within the blood vessel;a power source configured to electrically couple with the electrodes of the flex circuits, and to transmit a tissue remodeling energy between the electrodes of the pairs on the flex circuits so as to provide an associated remodeling zone of the plurality of remodeling zones in the tissue treatment area for each pair of electrodes of the plurality when the balloon is inflated to the large profile configuration within the blood vessel,wherein the power source is further configured to transmit the tissue remodeling energy to each of the plurality of remodeling zones such that when at least some remodeling zones of the plurality include collateral healthy tissue without the target body tissue, the tissue remodeling energy is transmitted to the at least some remodeling zones heating the collateral healthy tissue without causing thermal damage, while the tissue remodeling energy transmitted to remodeling zones including both the target tissue and collateral tissue heats the target tissue sufficiently to efficaciously alter the target tissue without causing thermal damage to the collateral healthy tissue.
  • 22. A method for inducing desirable temperature effects on a target body tissue disposed about a body lumen of a patient, the method comprising: positioning a radially expandable member supported by a distal end of a catheter body within the lumen adjacent the target body tissue to be heated, the expandable member having a low profile insertion configuration and a larger profile configuration;wherein the expandable member comprises a balloon having a plurality of flexible circuits adhesively bonded to an outer surface thereof, each flexible circuit including a polymeric substrate bearing a pair of electrodes, each pair of electrodes collectively defining a plurality of electrodes, the flexible circuits being sufficiently flexible to allow folding and inflation of the balloon;expanding the expandable member to the larger profile configuration within the lumen so as to engage the plurality of electrodes mounted on the plurality of flexible circuits against a wall of the lumen, the plurality of electrodes defining a plurality of remodeling zones in a tissue treatment area that extend about a circumference of the body lumen;energizing the plurality of electrodes to transmit a remodeling energy to each of the plurality of remodeling zones, with a controller having a power source electrically coupled to the plurality of electrodes; andheating collateral healthy tissue in at least some remodeling zones in the tissue treatment area with the remodeling energy without causing thermal damage, and heating both the target body tissue and collateral healthy tissue in remodeling zones including the target tissue so as to efficaciously alter the target tissue while inhibiting damage to collateral healthy tissue of the wall of the lumen.
  • 23. The method of claim 22, wherein expanding the expandable member comprises inflating the balloon.
  • 24. The method of claim 22, wherein the body lumen comprises a blood vessel, and the plurality of electrodes comprise a plurality of bipolar electrode pairs such that expanding the expandable member urges one or more of the plurality of bipolar electrode pairs against the vessel wall, and energizing the plurality of electrodes comprises delivering energy to the one or more bipolar electrode when engaged against the vessel with an RF power source.
  • 25. The method of claim 22, wherein the body lumen is an artery, and wherein heating with the energized electrodes is controlled so as to limit heating of an adventitial layer to below a deleterious response threshold.
  • 26. The method of claim 25, wherein heating is controlled by selectively firing bipolar electrode pairs of the plurality.
  • 27. The method of claim 26, wherein the bipolar electrode pairs are selectively fired according to a duty cycle.
  • 28. The method of claim 22, wherein the remodeling zones are circumferentially and axially offset.
CROSS-REFERENCES TO RELATED APPLICATIONS

This application is a continuation of and claims the benefit of U.S. patent application Ser. No. 11/975,383 filed Oct. 18, 2007, which claims the benefit under 35 USC 119(e) of U.S. Provisional Application No. 60/852,787, filed on Oct. 18, 2006, and entitled “Tuned RF Energy And Electrical Tissue Characterization For Selective Treatment Of Target Tissues”; U.S. Provisional Application No. 60/921,973, filed on Apr. 4, 2007, and entitled “Tuned RF Energy And Electrical Tissue Characterization For Selective Treatment Of Target Tissues”, and U.S. Provisional Application No. 60/976,733, filed on Oct. 1, 2007, entitled “System for Inducing Desirable Temperature Effects On Body Tissue”, the full disclosures of which are incorporated herein by reference. This application is related to U.S. patent application Ser. No. 11/392,231, filed on Mar. 28, 2006, entitled “Tuned RF Energy for Selective Treatment of Atheroma and Other Target Tissues and/or Structures”; U.S. patent application Ser. No. 10/938,138, filed on Sep. 10, 2004, and entitled “Selectable Eccentric Remodeling and/or Ablation of Atherosclerotic Material”; U.S. Patent Application No. 60/852,787, filed on Oct. 18, 2006, entitled “Tuned RF Energy And Electrical Tissue Characterization For Selective Treatment Of Target Tissues”; U.S. Provisional Application No. 60/921,973, filed on Apr. 4, 2007, entitled “Tuned RF Energy And Electrical Tissue Characterization For Selective Treatment Of Target Tissues”, and U.S. Provisional Application No. 60/976,752, filed on Oct. 1, 2007, entitled “Inducing Desirable Temperature Effects on Body Tissue” the full disclosures of which are incorporated herein by reference.

US Referenced Citations (1549)
Number Name Date Kind
164184 Kiddee Jun 1875 A
1167014 O'Brien Jan 1916 A
2505358 Gusberg et al. Apr 1950 A
2701559 Cooper Feb 1955 A
3108593 Glassman Oct 1963 A
3108594 Glassman Oct 1963 A
3540431 Mobin Nov 1970 A
3952747 Kimmell Apr 1976 A
3996938 Clark, III Dec 1976 A
4046150 Schwartz et al. Sep 1977 A
4290427 Chin Sep 1981 A
4402686 Medel Sep 1983 A
4483341 Witteles et al. Nov 1984 A
4574804 Kurwa Mar 1986 A
4587975 Salo et al. May 1986 A
4649936 Ungar et al. Mar 1987 A
4682596 Bales et al. Jul 1987 A
4709698 Johnston et al. Dec 1987 A
4765331 Petruzzi et al. Aug 1988 A
4770653 Shturman Sep 1988 A
4784132 Fox et al. Nov 1988 A
4784162 Ricks et al. Nov 1988 A
4785806 Deckelbaum et al. Nov 1988 A
4788975 Shturman et al. Dec 1988 A
4790310 Ginsburg et al. Dec 1988 A
4799479 Spears Jan 1989 A
4823791 D'Amelio et al. Apr 1989 A
4830003 Wolff et al. May 1989 A
4849484 Heard Jul 1989 A
4862886 Clarke et al. Sep 1989 A
4887605 Angelsen et al. Dec 1989 A
4784132 Fox et al. Mar 1990 B1
4920979 Bullara et al. May 1990 A
4938766 Jarvik Jul 1990 A
4955377 Lennox et al. Sep 1990 A
4976711 Parins et al. Dec 1990 A
5034010 Kittrell et al. Jul 1991 A
5052402 Bencini et al. Oct 1991 A
5053033 Clarke et al. Oct 1991 A
5071424 Reger et al. Dec 1991 A
5074871 Groshong et al. Dec 1991 A
5098429 Sterzer et al. Mar 1992 A
5098431 Rydell Mar 1992 A
5102402 Dror et al. Apr 1992 A
RE33925 Bales et al. May 1992 E
5109859 Jenkins May 1992 A
5125928 Parins et al. Jun 1992 A
5129396 Rosen et al. Jul 1992 A
5139496 Hed Aug 1992 A
5143836 Hartman et al. Sep 1992 A
5156151 Imran Oct 1992 A
5156610 Reger et al. Oct 1992 A
5158564 Schnepp-Pesch Oct 1992 A
5170802 Mehra Dec 1992 A
5178620 Eggers et al. Jan 1993 A
5178625 Groshong et al. Jan 1993 A
5190540 Lee Mar 1993 A
5191883 Lennox et al. Mar 1993 A
5211651 Reger et al. May 1993 A
5234407 Teirstein et al. Aug 1993 A
5242441 Avitall Sep 1993 A
5251634 Weinberg et al. Oct 1993 A
5254098 Ulrich et al. Oct 1993 A
5255679 Imran Oct 1993 A
5263493 Avitall Nov 1993 A
5267954 Nita et al. Dec 1993 A
5277201 Stern et al. Jan 1994 A
5282484 Reger et al. Feb 1994 A
5286254 Shapland et al. Feb 1994 A
5295484 Marcus Mar 1994 A
5297564 Love et al. Mar 1994 A
5300068 Rosar et al. Apr 1994 A
5301683 Durkan Apr 1994 A
5304115 Pflueger et al. Apr 1994 A
5304121 Sahatjian Apr 1994 A
5304171 Gregory et al. Apr 1994 A
5304173 Kittrell et al. Apr 1994 A
5306250 March et al. Apr 1994 A
5312328 Nita et al. May 1994 A
5314466 Stern et al. May 1994 A
5322064 Lundquist Jun 1994 A
5324255 Passafaro et al. Jun 1994 A
5326341 Lew et al. Jul 1994 A
5326342 Pflueger et al. Jul 1994 A
5330518 Neilson et al. Jul 1994 A
5333614 Feiring Aug 1994 A
5342292 Nita et al. Aug 1994 A
5344395 Whalen et al. Sep 1994 A
5345936 Pomeranz et al. Sep 1994 A
5364392 Warner et al. Nov 1994 A
5365172 Hrovat et al. Nov 1994 A
5368557 Nita et al. Nov 1994 A
5368558 Nita et al. Nov 1994 A
5380274 Nita et al. Jan 1995 A
5380319 Saito et al. Jan 1995 A
5382228 Nita et al. Jan 1995 A
5383874 Jackson et al. Jan 1995 A
5383917 Desai et al. Jan 1995 A
5397301 Pflueger et al. Mar 1995 A
5397339 Desai Mar 1995 A
5401272 Perkins et al. Mar 1995 A
5403311 Abele et al. Apr 1995 A
5405318 Nita et al. Apr 1995 A
5405346 Grundy et al. Apr 1995 A
5409000 Imran Apr 1995 A
5417672 Nita et al. May 1995 A
5419767 Eggers et al. May 1995 A
5427118 Nita et al. Jun 1995 A
5432876 Appeldorn et al. Jul 1995 A
5441498 Perkins et al. Aug 1995 A
5447509 Mills et al. Sep 1995 A
5451207 Yock et al. Sep 1995 A
5453091 Taylor et al. Sep 1995 A
5454788 Walker et al. Oct 1995 A
5454809 Janssen Oct 1995 A
5455029 Hartman et al. Oct 1995 A
5456682 Edwards et al. Oct 1995 A
5457042 Hartman et al. Oct 1995 A
5471982 Edwards et al. Dec 1995 A
5474530 Passafaro et al. Dec 1995 A
5478351 Meade et al. Dec 1995 A
5496311 Abele et al. Mar 1996 A
5496312 Klicek et al. Mar 1996 A
5498261 Strul Mar 1996 A
5499981 Kordis Mar 1996 A
5505201 Grill et al. Apr 1996 A
5505730 Edwards Apr 1996 A
5507744 Tay et al. Apr 1996 A
5522873 Jackman et al. Jun 1996 A
5531520 Grimson et al. Jul 1996 A
5540656 Pflueger et al. Jul 1996 A
5540679 Fram et al. Jul 1996 A
5540681 Strul et al. Jul 1996 A
5542917 Nita et al. Aug 1996 A
5545132 Fagan et al. Aug 1996 A
5545161 Imran Aug 1996 A
5562100 Kittrell et al. Oct 1996 A
5571122 Kelly et al. Nov 1996 A
5571151 Gregory Nov 1996 A
5573531 Gregory et al. Nov 1996 A
5573533 Strul Nov 1996 A
5584831 McKay Dec 1996 A
5584872 Lafontaine et al. Dec 1996 A
5588962 Nicholas et al. Dec 1996 A
5599346 Edwards et al. Feb 1997 A
5601526 Chapelon et al. Feb 1997 A
5609606 O'Boyle et al. Mar 1997 A
5626576 Janssen May 1997 A
5630837 Crowley May 1997 A
5637090 McGee et al. Jun 1997 A
5643255 Organ Jul 1997 A
5643297 Nordgren et al. Jul 1997 A
5647847 Lafontaine et al. Jul 1997 A
5649923 Gregory et al. Jul 1997 A
5651780 Jackson et al. Jul 1997 A
5653684 Laptewicz et al. Aug 1997 A
5662671 Barbut et al. Sep 1997 A
5665062 Houser Sep 1997 A
5665098 Kelly et al. Sep 1997 A
5666964 Meilus Sep 1997 A
5667490 Keith et al. Sep 1997 A
5672174 Gough et al. Sep 1997 A
5676693 Lafontaine Oct 1997 A
5678296 Fleischhacker et al. Oct 1997 A
5681282 Eggers et al. Oct 1997 A
RE35656 Feinberg Nov 1997 E
5688266 Edwards et al. Nov 1997 A
5693015 Walker et al. Dec 1997 A
5693029 Leonhardt et al. Dec 1997 A
5693043 Kittrell et al. Dec 1997 A
5693082 Warner et al. Dec 1997 A
5695504 Gifford et al. Dec 1997 A
5697369 Long, Jr. et al. Dec 1997 A
5697909 Eggers et al. Dec 1997 A
5702386 Stern et al. Dec 1997 A
5702433 Taylor et al. Dec 1997 A
5706809 Littmann et al. Jan 1998 A
5713942 Stern et al. Feb 1998 A
5715819 Svenson et al. Feb 1998 A
5735846 Panescu et al. Apr 1998 A
5741214 Ouchi et al. Apr 1998 A
5741248 Stern et al. Apr 1998 A
5741249 Moss et al. Apr 1998 A
5743903 Stern et al. Apr 1998 A
5748347 Erickson May 1998 A
5749914 Janssen May 1998 A
5755682 Knudson et al. May 1998 A
5755715 Stern et al. May 1998 A
5755753 Knowlton et al. May 1998 A
5769847 Panescu et al. Jun 1998 A
5769880 Truckai et al. Jun 1998 A
5775338 Hastings Jul 1998 A
5776174 Van Tassel Jul 1998 A
5779698 Clayman et al. Jul 1998 A
5782760 Schaer Jul 1998 A
5785702 Murphy et al. Jul 1998 A
5792105 Lin et al. Aug 1998 A
5797849 Vesely et al. Aug 1998 A
5797903 Swanson et al. Aug 1998 A
5800484 Gough et al. Sep 1998 A
5800494 Campbell et al. Sep 1998 A
5807306 Shapland et al. Sep 1998 A
5810802 Panescu et al. Sep 1998 A
5810803 Moss et al. Sep 1998 A
5810810 Tay et al. Sep 1998 A
5817092 Behl Oct 1998 A
5817113 Gifford et al. Oct 1998 A
5817144 Gregory et al. Oct 1998 A
5823956 Roth et al. Oct 1998 A
5827203 Nita et al. Oct 1998 A
5827268 Laufer Oct 1998 A
5829447 Stevens et al. Nov 1998 A
5830213 Panescu et al. Nov 1998 A
5830222 Makower Nov 1998 A
5832228 Holden et al. Nov 1998 A
5833593 Liprie Nov 1998 A
5836874 Swanson et al. Nov 1998 A
5840076 Swanson et al. Nov 1998 A
5843016 Lugnani et al. Dec 1998 A
5846238 Jackson et al. Dec 1998 A
5846239 Swanson et al. Dec 1998 A
5846245 McCarthy et al. Dec 1998 A
5848969 Panescu et al. Dec 1998 A
5853411 Whayne et al. Dec 1998 A
5855614 Stevens et al. Jan 1999 A
5860974 Abele Jan 1999 A
5865801 Houser Feb 1999 A
5868735 Lafontaine et al. Feb 1999 A
5868736 Swanson et al. Feb 1999 A
5869127 Zhong Feb 1999 A
5871483 Jackson et al. Feb 1999 A
5871524 Knowlton et al. Feb 1999 A
5875782 Ferrari et al. Mar 1999 A
5876369 Houser Mar 1999 A
5876374 Alba et al. Mar 1999 A
5876397 Edelman et al. Mar 1999 A
5879348 Owens et al. Mar 1999 A
5891114 Chien et al. Apr 1999 A
5891135 Jackson et al. Apr 1999 A
5891136 McGee et al. Apr 1999 A
5891138 Tu et al. Apr 1999 A
5895378 Nita Apr 1999 A
5897552 Edwards et al. Apr 1999 A
5902328 Lafontaine et al. May 1999 A
5904651 Swanson et al. May 1999 A
5904667 Falwell et al. May 1999 A
5904697 Gifford et al. May 1999 A
5904709 Arndt et al. May 1999 A
5906614 Stern et al. May 1999 A
5906623 Peterson May 1999 A
5906636 Casscells et al. May 1999 A
5916192 Nita et al. Jun 1999 A
5916227 Keith et al. Jun 1999 A
5916239 Geddes et al. Jun 1999 A
5919219 Knowlton et al. Jul 1999 A
5924424 Stevens et al. Jul 1999 A
5925038 Panescu et al. Jul 1999 A
5934284 Plaia et al. Aug 1999 A
5935063 Nguyen Aug 1999 A
5938670 Keith et al. Aug 1999 A
5947977 Slepian et al. Sep 1999 A
5948011 Knowlton et al. Sep 1999 A
5951494 Wang et al. Sep 1999 A
5951539 Nita et al. Sep 1999 A
5954717 Behl et al. Sep 1999 A
5957882 Nita et al. Sep 1999 A
5957941 Ream et al. Sep 1999 A
5957969 Warner et al. Sep 1999 A
5961513 Swanson et al. Oct 1999 A
5964757 Ponzi et al. Oct 1999 A
5967976 Larsen et al. Oct 1999 A
5967978 Littmann et al. Oct 1999 A
5967984 Chu et al. Oct 1999 A
5971975 Mills et al. Oct 1999 A
5972026 Laufer et al. Oct 1999 A
5980563 Tu et al. Nov 1999 A
5989208 Nita et al. Nov 1999 A
5989284 Laufer Nov 1999 A
5993462 Pomeranz et al. Nov 1999 A
5997497 Nita et al. Dec 1999 A
5999678 Murphy et al. Dec 1999 A
6004269 Crowley et al. Dec 1999 A
6004316 Laufer et al. Dec 1999 A
6007514 Nita Dec 1999 A
6010522 Barbut et al. Jan 2000 A
6013033 Berger et al. Jan 2000 A
6014590 Whayne et al. Jan 2000 A
6019757 Scheldrup Feb 2000 A
6022309 Celliers et al. Feb 2000 A
6024740 Lesh Feb 2000 A
6030611 Gorecki et al. Feb 2000 A
6032675 Rubinsky et al. Mar 2000 A
6033357 Ciezki et al. Mar 2000 A
6033397 Laufer et al. Mar 2000 A
6033398 Farley et al. Mar 2000 A
6036687 Laufer et al. Mar 2000 A
6036689 Tu et al. Mar 2000 A
6041260 Stern et al. Mar 2000 A
6050994 Sherman et al. Apr 2000 A
6056744 Edwards May 2000 A
6056746 Goble et al. May 2000 A
6063085 Tay et al. May 2000 A
6066096 Smith et al. May 2000 A
6066139 Ryan et al. May 2000 A
6068638 Makower May 2000 A
6068653 Lafontaine May 2000 A
6071277 Farley et al. Jun 2000 A
6071278 Panescu et al. Jun 2000 A
6078839 Carson Jun 2000 A
6079414 Roth Jun 2000 A
6080171 Keith et al. Jun 2000 A
6081749 Ingle et al. Jun 2000 A
6083159 Driscoll et al. Jul 2000 A
6086581 Reynolds et al. Jul 2000 A
6091995 Ingle et al. Jul 2000 A
6093166 Knudson et al. Jul 2000 A
6096021 Helm et al. Aug 2000 A
6099526 Whayne et al. Aug 2000 A
6102908 Tu et al. Aug 2000 A
6106477 Miesel et al. Aug 2000 A
6110187 Donlon et al. Aug 2000 A
6114311 Parmacek et al. Sep 2000 A
6117101 Diederich et al. Sep 2000 A
6117128 Gregory Sep 2000 A
6120476 Fung et al. Sep 2000 A
6120516 Selmon et al. Sep 2000 A
6121775 Pearlman Sep 2000 A
6123679 Lafaut et al. Sep 2000 A
6123682 Knudson et al. Sep 2000 A
6123702 Swanson et al. Sep 2000 A
6123703 Tu et al. Sep 2000 A
6123718 Tu et al. Sep 2000 A
6129725 Tu et al. Oct 2000 A
6135997 Laufer et al. Oct 2000 A
6142991 Schatzberger et al. Nov 2000 A
6142993 Whayne et al. Nov 2000 A
6149647 Tu et al. Nov 2000 A
6152899 Farley et al. Nov 2000 A
6152912 Jansen et al. Nov 2000 A
6156046 Passafaro et al. Dec 2000 A
6158250 Tibbals et al. Dec 2000 A
6159187 Park et al. Dec 2000 A
6159225 Makower Dec 2000 A
6161048 Sluijter et al. Dec 2000 A
6162184 Swanson et al. Dec 2000 A
6165163 Chien et al. Dec 2000 A
6165172 Farley et al. Dec 2000 A
6165187 Reger et al. Dec 2000 A
6168594 Lafontaine et al. Jan 2001 B1
6171321 Gifford, III et al. Jan 2001 B1
6179832 Jones et al. Jan 2001 B1
6179835 Panescu et al. Jan 2001 B1
6179859 Bates et al. Jan 2001 B1
6183468 Swanson et al. Feb 2001 B1
6183486 Snow et al. Feb 2001 B1
6190379 Heuser et al. Feb 2001 B1
6191862 Swanson et al. Feb 2001 B1
6197021 Panescu et al. Mar 2001 B1
6200266 Shokrollahi et al. Mar 2001 B1
6203537 Adrian Mar 2001 B1
6203561 Ramee et al. Mar 2001 B1
6210406 Webster Apr 2001 B1
6211247 Goodman Apr 2001 B1
6216704 Ingle et al. Apr 2001 B1
6217576 Tu et al. Apr 2001 B1
6219577 Brown, III et al. Apr 2001 B1
6228076 Winston et al. May 2001 B1
6228109 Tu et al. May 2001 B1
6231516 Keilman et al. May 2001 B1
6231587 Makower May 2001 B1
6235044 Root et al. May 2001 B1
6236883 Ciaccio et al. May 2001 B1
6237605 Vaska et al. May 2001 B1
6238389 Paddock et al. May 2001 B1
6238392 Long May 2001 B1
6241666 Pomeranz et al. Jun 2001 B1
6241753 Knowlton Jun 2001 B1
6245020 Moore et al. Jun 2001 B1
6245045 Stratienko Jun 2001 B1
6248126 Lesser et al. Jun 2001 B1
6251128 Knopp et al. Jun 2001 B1
6258087 Edwards et al. Jul 2001 B1
6273886 Edwards et al. Aug 2001 B1
6280466 Kugler et al. Aug 2001 B1
6283935 Laufer et al. Sep 2001 B1
6283959 Lalonde et al. Sep 2001 B1
6284743 Parmacek et al. Sep 2001 B1
6287323 Hammerslag Sep 2001 B1
6290696 Lafontaine Sep 2001 B1
6292695 Webster, Jr. et al. Sep 2001 B1
6293942 Goble et al. Sep 2001 B1
6293943 Panescu et al. Sep 2001 B1
6296619 Brisken et al. Oct 2001 B1
6298256 Meyer Oct 2001 B1
6299379 Lewis Oct 2001 B1
6299623 Wulfman Oct 2001 B1
6309379 Willard et al. Oct 2001 B1
6309399 Barbut et al. Oct 2001 B1
6311090 Knowlton Oct 2001 B1
6317615 KenKnight et al. Nov 2001 B1
6319242 Patterson et al. Nov 2001 B1
6319251 Tu et al. Nov 2001 B1
6322559 Daulton et al. Nov 2001 B1
6325797 Stewart et al. Dec 2001 B1
6325799 Goble Dec 2001 B1
6328699 Eigler et al. Dec 2001 B1
6346074 Roth Feb 2002 B1
6346104 Daly et al. Feb 2002 B2
6350248 Knudson et al. Feb 2002 B1
6350276 Knowlton Feb 2002 B1
6353751 Swanson et al. Mar 2002 B1
6355029 Joye et al. Mar 2002 B1
6357447 Swanson et al. Mar 2002 B1
6361519 Knudson et al. Mar 2002 B1
6364840 Crowley Apr 2002 B1
6371965 Gifford, III et al. Apr 2002 B2
6375668 Gifford et al. Apr 2002 B1
6377854 Knowlton Apr 2002 B1
6377855 Knowlton Apr 2002 B1
6379352 Reynolds et al. Apr 2002 B1
6379373 Sawhney et al. Apr 2002 B1
6381497 Knowlton Apr 2002 B1
6381498 Knowlton Apr 2002 B1
6383151 Diederich et al. May 2002 B1
6387105 Gifford, III et al. May 2002 B1
6387380 Knowlton May 2002 B1
6389311 Whayne et al. May 2002 B1
6389314 Feiring May 2002 B2
6391024 Sun et al. May 2002 B1
6394096 Constantz May 2002 B1
6394956 Chandrasekaran et al. May 2002 B1
6398780 Farley et al. Jun 2002 B1
6398782 Pecor et al. Jun 2002 B1
6398792 O'Connor Jun 2002 B1
6401720 Stevens et al. Jun 2002 B1
6402719 Ponzi et al. Jun 2002 B1
6405090 Knowlton Jun 2002 B1
6409723 Edwards Jun 2002 B1
6413255 Stern Jul 2002 B1
6421559 Pearlman Jul 2002 B1
6423057 He et al. Jul 2002 B1
6425867 Vaezy et al. Jul 2002 B1
6425912 Knowlton Jul 2002 B1
6427089 Knowlton Jul 2002 B1
6427118 Suzuki Jul 2002 B1
6428534 Joye et al. Aug 2002 B1
6428536 Panescu et al. Aug 2002 B2
6430446 Knowlton Aug 2002 B1
6432102 Joye et al. Aug 2002 B2
6436056 Wang et al. Aug 2002 B1
6438424 Knowlton Aug 2002 B1
6440125 Rentrop Aug 2002 B1
6442413 Silver Aug 2002 B1
6443965 Gifford, III et al. Sep 2002 B1
6445939 Swanson et al. Sep 2002 B1
6447505 McGovern et al. Sep 2002 B2
6447509 Bonnet et al. Sep 2002 B1
6451034 Gifford, III et al. Sep 2002 B1
6451044 Naghavi et al. Sep 2002 B1
6453202 Knowlton Sep 2002 B1
6454737 Nita et al. Sep 2002 B1
6454757 Nita et al. Sep 2002 B1
6454775 Demarais et al. Sep 2002 B1
6458098 Kanesaka Oct 2002 B1
6461378 Knowlton Oct 2002 B1
6468276 McKay Oct 2002 B1
6468297 Williams et al. Oct 2002 B1
6470216 Knowlton Oct 2002 B1
6470219 Edwards et al. Oct 2002 B1
6471696 Berube et al. Oct 2002 B1
6475213 Whayne et al. Nov 2002 B1
6475215 Tanrisever Nov 2002 B1
6475238 Fedida et al. Nov 2002 B1
6477426 Fenn et al. Nov 2002 B1
6480745 Nelson et al. Nov 2002 B2
6481704 Koster et al. Nov 2002 B1
6482202 Goble et al. Nov 2002 B1
6484052 Visuri et al. Nov 2002 B1
6485489 Teirstein et al. Nov 2002 B2
6488679 Swanson et al. Dec 2002 B1
6489307 Phillips et al. Dec 2002 B1
6491705 Gifford, III et al. Dec 2002 B2
6494891 Cornish et al. Dec 2002 B1
6497711 Plaia et al. Dec 2002 B1
6500172 Panescu et al. Dec 2002 B1
6500174 Maguire et al. Dec 2002 B1
6508765 Suorsa et al. Jan 2003 B2
6508804 Sarge et al. Jan 2003 B2
6508815 Strul et al. Jan 2003 B1
6511478 Burnside et al. Jan 2003 B1
6511496 Huter et al. Jan 2003 B1
6511500 Rahme Jan 2003 B1
6514236 Stratienko Feb 2003 B1
6514245 Williams et al. Feb 2003 B1
6514248 Eggers et al. Feb 2003 B1
6517534 McGovern et al. Feb 2003 B1
6517572 Kugler et al. Feb 2003 B2
6522913 Swanson et al. Feb 2003 B2
6522926 Kieval et al. Feb 2003 B1
6524274 Rosenthal et al. Feb 2003 B1
6524299 Tran et al. Feb 2003 B1
6527765 Kelman et al. Mar 2003 B2
6527769 Langberg et al. Mar 2003 B2
6540761 Houser Apr 2003 B2
6542781 Koblish et al. Apr 2003 B1
6544780 Wang Apr 2003 B1
6546272 MacKinnon et al. Apr 2003 B1
6547788 Maguire et al. Apr 2003 B1
6549800 Atalar et al. Apr 2003 B1
6552796 Magnin et al. Apr 2003 B2
6554780 Sampson et al. Apr 2003 B1
6558381 Ingle et al. May 2003 B2
6558382 Jahns et al. May 2003 B2
6564096 Mest May 2003 B2
6565582 Gifford, III et al. May 2003 B2
6569109 Sakurai et al. May 2003 B2
6569177 Dillard et al. May 2003 B1
6570659 Schmitt May 2003 B2
6572551 Smith et al. Jun 2003 B1
6572612 Stewart et al. Jun 2003 B2
6577902 Laufer et al. Jun 2003 B1
6579308 Jansen et al. Jun 2003 B1
6579311 Makower Jun 2003 B1
6582423 Thapliyal et al. Jun 2003 B1
6589238 Edwards et al. Jul 2003 B2
6592526 Lenker Jul 2003 B1
6592567 Levin et al. Jul 2003 B1
6595959 Stratienko Jul 2003 B1
6600956 Maschino et al. Jul 2003 B2
6602242 Fung Aug 2003 B1
6602246 Joye et al. Aug 2003 B1
6605061 Vantassel et al. Aug 2003 B2
6605084 Acker et al. Aug 2003 B2
6623452 Chien et al. Sep 2003 B2
6623453 Guibert et al. Sep 2003 B1
6632193 Davison et al. Oct 2003 B1
6632196 Houser Oct 2003 B1
6645223 Boyle et al. Nov 2003 B2
6648854 Patterson et al. Nov 2003 B1
6648878 Lafontaine Nov 2003 B2
6648879 Joye et al. Nov 2003 B2
6651672 Roth Nov 2003 B2
6652513 Panescu et al. Nov 2003 B2
6652515 Maguire et al. Nov 2003 B1
6656136 Weng et al. Dec 2003 B1
6658279 Swanson et al. Dec 2003 B2
6659981 Stewart et al. Dec 2003 B2
6666858 Lafontaine Dec 2003 B2
6666863 Wentzel et al. Dec 2003 B2
6669655 Acker et al. Dec 2003 B1
6669692 Nelson et al. Dec 2003 B1
6673040 Samson et al. Jan 2004 B1
6673064 Rentrop Jan 2004 B1
6673066 Werneth Jan 2004 B2
6673090 Root et al. Jan 2004 B2
6673101 Fitzgerald et al. Jan 2004 B1
6673290 Whayne et al. Jan 2004 B1
6676678 Gifford, III et al. Jan 2004 B2
6679268 Stevens et al. Jan 2004 B2
6681773 Murphy et al. Jan 2004 B2
6682541 Gifford, III et al. Jan 2004 B1
6684098 Oshio et al. Jan 2004 B2
6685732 Kramer Feb 2004 B2
6685733 Dae et al. Feb 2004 B1
6689086 Nita et al. Feb 2004 B1
6689148 Sawhney et al. Feb 2004 B2
6690181 Dowdeswell et al. Feb 2004 B1
6692490 Edwards Feb 2004 B1
6695830 Vigil et al. Feb 2004 B2
6695857 Gifford, III et al. Feb 2004 B2
6699241 Rappaport et al. Mar 2004 B2
6699257 Gifford, III et al. Mar 2004 B2
6702748 Nita et al. Mar 2004 B1
6702811 Stewart et al. Mar 2004 B2
6706010 Miki et al. Mar 2004 B1
6706011 Murphy-Chutorian et al. Mar 2004 B1
6706037 Zvuloni et al. Mar 2004 B2
6709431 Lafontaine Mar 2004 B2
6711429 Gilboa et al. Mar 2004 B1
6712815 Sampson et al. Mar 2004 B2
6714822 King et al. Mar 2004 B2
6716184 Vaezy et al. Apr 2004 B2
6720350 Kunz et al. Apr 2004 B2
6723043 Kleeman et al. Apr 2004 B2
6723064 Babaev Apr 2004 B2
6736811 Panescu et al. May 2004 B2
6743184 Sampson et al. Jun 2004 B2
6746401 Panescu Jun 2004 B2
6746464 Makower Jun 2004 B1
6746474 Saadat Jun 2004 B2
6748953 Sherry et al. Jun 2004 B2
6749607 Edwards et al. Jun 2004 B2
6752805 Maguire et al. Jun 2004 B2
6760616 Hoey et al. Jul 2004 B2
6763261 Casscells, III et al. Jul 2004 B2
6764501 Ganz Jul 2004 B2
6769433 Zikorus et al. Aug 2004 B2
6770070 Balbierz Aug 2004 B1
6771996 Bowe et al. Aug 2004 B2
6773433 Stewart et al. Aug 2004 B2
6786900 Joye et al. Sep 2004 B2
6786901 Joye et al. Sep 2004 B2
6786904 Döscher et al. Sep 2004 B2
6788977 Fenn et al. Sep 2004 B2
6790206 Panescu Sep 2004 B2
6790222 Kugler et al. Sep 2004 B2
6796981 Wham et al. Sep 2004 B2
6797933 Mendis et al. Sep 2004 B1
6797960 Spartiotis et al. Sep 2004 B1
6800075 Mische et al. Oct 2004 B2
6802857 Walsh et al. Oct 2004 B1
6807444 Tu et al. Oct 2004 B2
6811550 Holland et al. Nov 2004 B2
6813520 Truckai et al. Nov 2004 B2
6814730 Li Nov 2004 B2
6814733 Schwartz et al. Nov 2004 B2
6823205 Jara Nov 2004 B1
6824516 Batten et al. Nov 2004 B2
6827726 Parodi Dec 2004 B2
6827926 Robinson et al. Dec 2004 B2
6829497 Mogul Dec 2004 B2
6830568 Kesten et al. Dec 2004 B1
6837886 Collins et al. Jan 2005 B2
6837888 Ciarrocca et al. Jan 2005 B2
6845267 Harrison Jan 2005 B2
6847848 Sterzer Jan 2005 B2
6849073 Hoey et al. Feb 2005 B2
6849075 Bertolero et al. Feb 2005 B2
6853425 Kim et al. Feb 2005 B2
6855123 Nita Feb 2005 B2
6855143 Davison Feb 2005 B2
6869431 Maguire et al. Mar 2005 B2
6872183 Sampson et al. Mar 2005 B2
6884260 Kugler et al. Apr 2005 B2
6889694 Hooven May 2005 B2
6893436 Woodard et al. May 2005 B2
6895077 Karellas et al. May 2005 B2
6895265 Silver May 2005 B2
6898454 Atalar et al. May 2005 B2
6899711 Stewart et al. May 2005 B2
6899718 Gifford, III et al. May 2005 B2
6905494 Yon et al. Jun 2005 B2
6908462 Joye et al. Jun 2005 B2
6909009 Koridze Jun 2005 B2
6911026 Hall et al. Jun 2005 B1
6915806 Pacek et al. Jul 2005 B2
6923805 LaFontaine et al. Aug 2005 B1
6926246 Ginggen Aug 2005 B2
6926713 Rioux et al. Aug 2005 B2
6926716 Baker et al. Aug 2005 B2
6929009 Makower et al. Aug 2005 B2
6929632 Nita et al. Aug 2005 B2
6929639 Lafontaine Aug 2005 B2
6932776 Carr Aug 2005 B2
6936047 Nasab et al. Aug 2005 B2
6942620 Nita et al. Sep 2005 B2
6942657 Sinofsky et al. Sep 2005 B2
6942677 Nita et al. Sep 2005 B2
6942692 Landau et al. Sep 2005 B2
6949097 Stewart et al. Sep 2005 B2
6949121 Laguna Sep 2005 B1
6952615 Satake Oct 2005 B2
6953425 Brister Oct 2005 B2
6955174 Joye et al. Oct 2005 B2
6955175 Stevens et al. Oct 2005 B2
6958075 Mon et al. Oct 2005 B2
6959711 Murphy et al. Nov 2005 B2
6960207 Vanney et al. Nov 2005 B2
6962584 Stone et al. Nov 2005 B1
6964660 Maguire et al. Nov 2005 B2
6966908 Maguire et al. Nov 2005 B2
6972015 Joye et al. Dec 2005 B2
6972024 Kilpatrick et al. Dec 2005 B1
6974456 Edwards et al. Dec 2005 B2
6978174 Gelfand et al. Dec 2005 B2
6979329 Burnside et al. Dec 2005 B2
6979420 Weber Dec 2005 B2
6984238 Gifford, III et al. Jan 2006 B2
6985774 Kieval et al. Jan 2006 B2
6986739 Warren et al. Jan 2006 B2
6989009 Lafontaine Jan 2006 B2
6989010 Francischelli et al. Jan 2006 B2
6991617 Hektner et al. Jan 2006 B2
7001378 Yon et al. Feb 2006 B2
7006858 Silver et al. Feb 2006 B2
7008667 Chudzik et al. Mar 2006 B2
7011508 Lum Mar 2006 B2
7022105 Edwards Apr 2006 B1
7022120 Lafontaine Apr 2006 B2
7025767 Schaefer et al. Apr 2006 B2
7033322 Silver Apr 2006 B2
7033372 Cahalan Apr 2006 B1
7041098 Farley et al. May 2006 B2
7050848 Hoey et al. May 2006 B2
7063670 Sampson et al. Jun 2006 B2
7063679 Maguire et al. Jun 2006 B2
7063719 Jansen et al. Jun 2006 B2
7066895 Podany Jun 2006 B2
7066900 Botto et al. Jun 2006 B2
7066904 Rosenthal et al. Jun 2006 B2
7072720 Puskas Jul 2006 B2
7074217 Strul et al. Jul 2006 B2
7081112 Joye et al. Jul 2006 B2
7081114 Rashidi Jul 2006 B2
7083614 Fjield et al. Aug 2006 B2
7084276 Vu et al. Aug 2006 B2
7087026 Callister et al. Aug 2006 B2
7087051 Bourne et al. Aug 2006 B2
7087052 Sampson et al. Aug 2006 B2
7087053 Vanney Aug 2006 B2
7089065 Westlund et al. Aug 2006 B2
7097641 Arless et al. Aug 2006 B1
7100614 Stevens et al. Sep 2006 B2
7101368 Lafontaine Sep 2006 B2
7104983 Grasso, III et al. Sep 2006 B2
7104987 Biggs et al. Sep 2006 B2
7108715 Lawrence-Brown et al. Sep 2006 B2
7112196 Brosch et al. Sep 2006 B2
7112198 Satake Sep 2006 B2
7112211 Gifford, III et al. Sep 2006 B2
7122019 Kesten et al. Oct 2006 B1
7122033 Wood Oct 2006 B2
7134438 Makower et al. Nov 2006 B2
7137963 Nita et al. Nov 2006 B2
7137980 Buysse et al. Nov 2006 B2
7153315 Miller Dec 2006 B2
7155271 Halperin et al. Dec 2006 B2
7157491 Mewshaw et al. Jan 2007 B2
7157492 Mewshaw et al. Jan 2007 B2
7158832 Kieval et al. Jan 2007 B2
7160296 Pearson et al. Jan 2007 B2
7162303 Levin et al. Jan 2007 B2
7165551 Edwards et al. Jan 2007 B2
7169144 Hoey et al. Jan 2007 B2
7172589 Lafontaine Feb 2007 B2
7172610 Heitzmann et al. Feb 2007 B2
7181261 Silver et al. Feb 2007 B2
7184811 Phan et al. Feb 2007 B2
7184827 Edwards Feb 2007 B1
7189227 Lafontaine Mar 2007 B2
7192427 Chapelon et al. Mar 2007 B2
7192586 Bander Mar 2007 B2
7197354 Sobe Mar 2007 B2
7198632 Lim et al. Apr 2007 B2
7200445 Dalbec et al. Apr 2007 B1
7201749 Govari et al. Apr 2007 B2
7203537 Mower Apr 2007 B2
7214234 Rapacki et al. May 2007 B2
7220233 Nita et al. May 2007 B2
7220239 Wilson et al. May 2007 B2
7220257 Lafontaine May 2007 B1
7220270 Sawhney et al. May 2007 B2
7232458 Saadat Jun 2007 B2
7232459 Greenberg et al. Jun 2007 B2
7238184 Megerman et al. Jul 2007 B2
7241273 Maguire et al. Jul 2007 B2
7241736 Hunter et al. Jul 2007 B2
7247141 Makin et al. Jul 2007 B2
7250041 Chiu et al. Jul 2007 B2
7250440 Mewshaw et al. Jul 2007 B2
7252664 Nasab et al. Aug 2007 B2
7252679 Fischell et al. Aug 2007 B2
7264619 Venturelli Sep 2007 B2
7279600 Mewshaw et al. Oct 2007 B2
7280863 Shachar Oct 2007 B2
7282213 Schroeder et al. Oct 2007 B2
7285119 Stewart et al. Oct 2007 B2
7285120 Im et al. Oct 2007 B2
7288089 Yon et al. Oct 2007 B2
7288096 Chin Oct 2007 B2
7291146 Steinke et al. Nov 2007 B2
7293562 Malecki et al. Nov 2007 B2
7294125 Phalen et al. Nov 2007 B2
7294126 Sampson et al. Nov 2007 B2
7294127 Leung et al. Nov 2007 B2
7297131 Nita Nov 2007 B2
7297475 Koiwai et al. Nov 2007 B2
7300433 Lane et al. Nov 2007 B2
7301108 Egitto et al. Nov 2007 B2
7310150 Guillermo et al. Dec 2007 B2
7313430 Urquhart et al. Dec 2007 B2
7314483 Landau et al. Jan 2008 B2
7317077 Averback et al. Jan 2008 B2
7323006 Andreas et al. Jan 2008 B2
7326206 Paul et al. Feb 2008 B2
7326226 Root et al. Feb 2008 B2
7326235 Edwards Feb 2008 B2
7326237 DePalma et al. Feb 2008 B2
7329236 Kesten et al. Feb 2008 B2
7335180 Nita et al. Feb 2008 B2
7335192 Keren et al. Feb 2008 B2
7338467 Lutter Mar 2008 B2
7341570 Keren et al. Mar 2008 B2
7343195 Strommer et al. Mar 2008 B2
7347857 Anderson et al. Mar 2008 B2
7348003 Salcedo et al. Mar 2008 B2
7352593 Zeng et al. Apr 2008 B2
7354927 Vu Apr 2008 B2
7359732 Kim et al. Apr 2008 B2
7361341 Salcedo et al. Apr 2008 B2
7364566 Elkins et al. Apr 2008 B2
7367970 Govari et al. May 2008 B2
7367975 Malecki et al. May 2008 B2
7371231 Rioux et al. May 2008 B2
7387126 Cox et al. Jun 2008 B2
7393338 Nita Jul 2008 B2
7396355 Goldman et al. Jul 2008 B2
7402151 Rosenman et al. Jul 2008 B2
7402312 Rosen et al. Jul 2008 B2
7404824 Webler et al. Jul 2008 B1
7406970 Zikorus et al. Aug 2008 B2
7407502 Strul et al. Aug 2008 B2
7407506 Makower Aug 2008 B2
7407671 McBride et al. Aug 2008 B2
7408021 Averback et al. Aug 2008 B2
7410486 Fuimaono et al. Aug 2008 B2
7413556 Zhang et al. Aug 2008 B2
7425212 Danek et al. Sep 2008 B1
7426409 Casscells, III et al. Sep 2008 B2
7435248 Taimisto et al. Oct 2008 B2
7447453 Kim et al. Nov 2008 B2
7449018 Kramer Nov 2008 B2
7452538 Ni et al. Nov 2008 B2
7473890 Grier et al. Jan 2009 B2
7476384 Ni et al. Jan 2009 B2
7479157 Weber et al. Jan 2009 B2
7481803 Kesten et al. Jan 2009 B2
7485104 Kieval Feb 2009 B2
7486805 Krattiger Feb 2009 B2
7487780 Hooven Feb 2009 B2
7493154 Bonner et al. Feb 2009 B2
7494485 Beck et al. Feb 2009 B2
7494486 Mische et al. Feb 2009 B2
7494488 Weber Feb 2009 B2
7494661 Sanders Feb 2009 B2
7495439 Wiggins Feb 2009 B2
7497858 Chapelon et al. Mar 2009 B2
7499745 Littrup et al. Mar 2009 B2
7500985 Saadat Mar 2009 B2
7505812 Eggers et al. Mar 2009 B1
7505816 Schmeling et al. Mar 2009 B2
7507233 Littrup et al. Mar 2009 B2
7507235 Keogh et al. Mar 2009 B2
7511494 Wedeen Mar 2009 B2
7512445 Truckai et al. Mar 2009 B2
7527643 Case et al. May 2009 B2
7529589 Williams et al. May 2009 B2
7540852 Nita et al. Jun 2009 B2
7540870 Babaev Jun 2009 B2
RE40863 Tay et al. Jul 2009 E
7556624 Laufer et al. Jul 2009 B2
7558625 Levin et al. Jul 2009 B2
7563247 Maguire et al. Jul 2009 B2
7566319 McAuley et al. Jul 2009 B2
7569052 Phan et al. Aug 2009 B2
7582111 Krolik et al. Sep 2009 B2
7584004 Caparso et al. Sep 2009 B2
7585835 Hill et al. Sep 2009 B2
7591996 Hwang et al. Sep 2009 B2
7597704 Frazier et al. Oct 2009 B2
7598228 Hattori et al. Oct 2009 B2
7599730 Hunter et al. Oct 2009 B2
7603166 Casscells, III et al. Oct 2009 B2
7604608 Nita et al. Oct 2009 B2
7604633 Truckai et al. Oct 2009 B2
7615015 Coleman Nov 2009 B2
7615072 Rust et al. Nov 2009 B2
7617005 Demarais et al. Nov 2009 B2
7620451 Demarais et al. Nov 2009 B2
7621902 Nita et al. Nov 2009 B2
7621929 Nita et al. Nov 2009 B2
7626015 Feinstein et al. Dec 2009 B2
7626235 Kinoshita Dec 2009 B2
7632268 Edwards et al. Dec 2009 B2
7632845 Vu et al. Dec 2009 B2
7635383 Gumm Dec 2009 B2
7640046 Pastore et al. Dec 2009 B2
7641633 Laufer et al. Jan 2010 B2
7641679 Joye et al. Jan 2010 B2
7646544 Batchko et al. Jan 2010 B2
7647115 Levin et al. Jan 2010 B2
7653438 Deem et al. Jan 2010 B2
7655006 Sauvageau et al. Feb 2010 B2
7662114 Seip et al. Feb 2010 B2
7664548 Amurthur et al. Feb 2010 B2
7670279 Gertner Mar 2010 B2
7670335 Keidar Mar 2010 B2
7671084 Mewshaw et al. Mar 2010 B2
7678104 Keidar Mar 2010 B2
7678106 Lee Mar 2010 B2
7678108 Chrisitian et al. Mar 2010 B2
7691080 Seward et al. Apr 2010 B2
7699809 Urmey Apr 2010 B2
7706882 Francischelli et al. Apr 2010 B2
7715912 Rezai et al. May 2010 B2
7717853 Nita May 2010 B2
7717909 Strul et al. May 2010 B2
7717948 Demarais et al. May 2010 B2
7722539 Carter et al. May 2010 B2
7725157 Dumoulin et al. May 2010 B2
7727178 Wilson et al. Jun 2010 B2
7736317 Stephens et al. Jun 2010 B2
7736360 Mody et al. Jun 2010 B2
7736362 Eberl et al. Jun 2010 B2
7738952 Yun et al. Jun 2010 B2
7740629 Anderson et al. Jun 2010 B2
7741299 Feinstein et al. Jun 2010 B2
7742795 Stone et al. Jun 2010 B2
7744594 Yamazaki et al. Jun 2010 B2
7753907 DiMatteo et al. Jul 2010 B2
7756583 Demarais et al. Jul 2010 B2
7758510 Nita et al. Jul 2010 B2
7758520 Griffin et al. Jul 2010 B2
7759315 Cuzzocrea et al. Jul 2010 B2
7766833 Lee et al. Aug 2010 B2
7766878 Tremaglio, Jr. et al. Aug 2010 B2
7766892 Keren et al. Aug 2010 B2
7767844 Lee et al. Aug 2010 B2
7769427 Shachar Aug 2010 B2
7771372 Wilson Aug 2010 B2
7771421 Stewart et al. Aug 2010 B2
7776967 Perry et al. Aug 2010 B2
7777486 Hargreaves et al. Aug 2010 B2
7780660 Bourne et al. Aug 2010 B2
7789876 Zikorus et al. Sep 2010 B2
7792568 Zhong et al. Sep 2010 B2
7799021 Leung et al. Sep 2010 B2
7803168 Gifford et al. Sep 2010 B2
7806871 Li et al. Oct 2010 B2
7811265 Hering et al. Oct 2010 B2
7811281 Rentrop Oct 2010 B1
7811313 Mon et al. Oct 2010 B2
7816511 Kawashima et al. Oct 2010 B2
7818053 Kassab Oct 2010 B2
7819866 Bednarek Oct 2010 B2
7822460 Halperin et al. Oct 2010 B2
7828837 Khoury Nov 2010 B2
7832407 Gertner Nov 2010 B2
7833220 Mon et al. Nov 2010 B2
7837676 Sinelnikov et al. Nov 2010 B2
7837720 Mon Nov 2010 B2
7841978 Gertner Nov 2010 B2
7846157 Kozel Dec 2010 B2
7846160 Payne et al. Dec 2010 B2
7846172 Makower Dec 2010 B2
7849860 Makower et al. Dec 2010 B2
7850685 Kunis et al. Dec 2010 B2
7853333 Demarais Dec 2010 B2
7854734 Biggs et al. Dec 2010 B2
7857756 Warren et al. Dec 2010 B2
7862565 Eder et al. Jan 2011 B2
7863897 Slocum, Jr. et al. Jan 2011 B2
7869854 Shachar et al. Jan 2011 B2
7873417 Demarais et al. Jan 2011 B2
7887538 Bleich et al. Feb 2011 B2
7894905 Pless et al. Feb 2011 B2
7896873 Hiller et al. Mar 2011 B2
7901400 Wham et al. Mar 2011 B2
7901402 Jones et al. Mar 2011 B2
7901420 Dunn Mar 2011 B2
7905862 Sampson Mar 2011 B2
7918850 Govari et al. Apr 2011 B2
7927370 Webler et al. Apr 2011 B2
7937143 Demarais et al. May 2011 B2
7938830 Saadat et al. May 2011 B2
7942874 Eder et al. May 2011 B2
7942928 Webler et al. May 2011 B2
7946976 Gertner May 2011 B2
7950397 Thapliyal et al. May 2011 B2
7955293 Nita et al. Jun 2011 B2
7956613 Wald Jun 2011 B2
7959627 Utley et al. Jun 2011 B2
7962854 Vance et al. Jun 2011 B2
7967782 Laufer et al. Jun 2011 B2
7967808 Fitzgerald et al. Jun 2011 B2
7972327 Eberl et al. Jul 2011 B2
7972330 Alejandro et al. Jul 2011 B2
7983751 Zdeblick et al. Jul 2011 B2
8001976 Gertner Aug 2011 B2
8007440 Magnin et al. Aug 2011 B2
8012147 Lafontaine Sep 2011 B2
8019435 Hastings et al. Sep 2011 B2
8021362 Deem et al. Sep 2011 B2
8021413 Dierking et al. Sep 2011 B2
8025661 Arnold et al. Sep 2011 B2
8027718 Spinner et al. Sep 2011 B2
8031927 Karl et al. Oct 2011 B2
8033284 Porter et al. Oct 2011 B2
8048144 Thistle et al. Nov 2011 B2
8052636 Moll et al. Nov 2011 B2
8052700 Dunn Nov 2011 B2
8062289 Babaev Nov 2011 B2
8075580 Makower Dec 2011 B2
8080006 Lafontaine et al. Dec 2011 B2
8088127 Mayse et al. Jan 2012 B2
8116883 Williams et al. Feb 2012 B2
8119183 O'Donoghue et al. Feb 2012 B2
8120518 Jang et al. Feb 2012 B2
8123741 Marrouche et al. Feb 2012 B2
8128617 Bencini et al. Mar 2012 B2
8131371 Demarals et al. Mar 2012 B2
8131372 Levin et al. Mar 2012 B2
8131382 Asada Mar 2012 B2
8137274 Weng et al. Mar 2012 B2
8140170 Rezai et al. Mar 2012 B2
8143316 Ueno Mar 2012 B2
8145316 Deem et al. Mar 2012 B2
8145317 Demarais et al. Mar 2012 B2
8150518 Levin et al. Apr 2012 B2
8150519 Demarais et al. Apr 2012 B2
8150520 Demarais et al. Apr 2012 B2
8152830 Gumm Apr 2012 B2
8162933 Francischelli et al. Apr 2012 B2
8175711 Demarais et al. May 2012 B2
8187261 Watson May 2012 B2
8190238 Moll et al. May 2012 B2
8192053 Owen et al. Jun 2012 B2
8198611 LaFontaine et al. Jun 2012 B2
8214056 Hoffer et al. Jul 2012 B2
8221407 Phan et al. Jul 2012 B2
8226637 Satake Jul 2012 B2
8231617 Satake Jul 2012 B2
8241217 Chiang et al. Aug 2012 B2
8257724 Cromack et al. Sep 2012 B2
8257725 Cromack et al. Sep 2012 B2
8260397 Ruff et al. Sep 2012 B2
8263104 Ho et al. Sep 2012 B2
8273023 Razavi Sep 2012 B2
8277379 Lau et al. Oct 2012 B2
8287524 Siegel Oct 2012 B2
8287532 Carroll et al. Oct 2012 B2
8292881 Brannan et al. Oct 2012 B2
8293703 Averback et al. Oct 2012 B2
8295902 Salahieh et al. Oct 2012 B2
8295912 Gertner Oct 2012 B2
8308722 Ormsby et al. Nov 2012 B2
8317776 Ferren et al. Nov 2012 B2
8317810 Stangenes et al. Nov 2012 B2
8329179 Ni et al. Dec 2012 B2
8336705 Okahisa Dec 2012 B2
8343031 Gertner Jan 2013 B2
8343145 Brannan Jan 2013 B2
8347891 Demarais et al. Jan 2013 B2
8353945 Andreas et al. Jan 2013 B2
8364237 Stone et al. Jan 2013 B2
8366615 Razavi Feb 2013 B2
8382697 Brenneman et al. Feb 2013 B2
8388680 Starksen et al. Mar 2013 B2
8396548 Perry et al. Mar 2013 B2
8398629 Thistle Mar 2013 B2
8401667 Gustus et al. Mar 2013 B2
8403881 Ferren et al. Mar 2013 B2
8406877 Smith et al. Mar 2013 B2
8409172 Moll et al. Apr 2013 B2
8409193 Young et al. Apr 2013 B2
8409195 Young Apr 2013 B2
8418362 Zerfas et al. Apr 2013 B2
8452988 Wang May 2013 B2
8454594 Demarais et al. Jun 2013 B2
8460358 Andreas et al. Jun 2013 B2
8465452 Kassab Jun 2013 B2
8469919 Ingle et al. Jun 2013 B2
8473067 Hastings et al. Jun 2013 B2
8480663 Ingle et al. Jul 2013 B2
8485992 Griffin et al. Jul 2013 B2
8486060 Kotmel et al. Jul 2013 B2
8486063 Werneth et al. Jul 2013 B2
8488591 Miali et al. Jul 2013 B2
20010007070 Stewart et al. Jul 2001 A1
20010039419 Francischelli et al. Nov 2001 A1
20010051774 Littrup et al. Dec 2001 A1
20020022864 Mahvi et al. Feb 2002 A1
20020042639 Murphy-Chutorian et al. Apr 2002 A1
20020045811 Kittrell et al. Apr 2002 A1
20020045890 Celliers et al. Apr 2002 A1
20020062123 McClurken et al. May 2002 A1
20020062146 Makower et al. May 2002 A1
20020065542 Lax et al. May 2002 A1
20020072686 Hoey et al. Jun 2002 A1
20020077592 Barry Jun 2002 A1
20020082552 Ding et al. Jun 2002 A1
20020087151 Mody et al. Jul 2002 A1
20020087156 Maguire et al. Jul 2002 A1
20020091381 Edwards Jul 2002 A1
20020095197 Lardo et al. Jul 2002 A1
20020107511 Collins et al. Aug 2002 A1
20020107536 Hussein Aug 2002 A1
20020143324 Edwards Oct 2002 A1
20020147480 Mamayek Oct 2002 A1
20020169444 Mest et al. Nov 2002 A1
20020198520 Coen et al. Dec 2002 A1
20030004510 Wham et al. Jan 2003 A1
20030028114 Casscells, III et al. Feb 2003 A1
20030050635 Truckai et al. Mar 2003 A1
20030060857 Perrson et al. Mar 2003 A1
20030060858 Kieval et al. Mar 2003 A1
20030065317 Rudie et al. Apr 2003 A1
20030069619 Fenn et al. Apr 2003 A1
20030088189 Tu et al. May 2003 A1
20030092995 Thompson May 2003 A1
20030114791 Rosenthal et al. Jun 2003 A1
20030139689 Shturman et al. Jul 2003 A1
20030195501 Sherman et al. Oct 2003 A1
20030199747 Michlitsch et al. Oct 2003 A1
20030212394 Pearson et al. Nov 2003 A1
20030220639 Chapelson et al. Nov 2003 A1
20030229340 Sherry et al. Dec 2003 A1
20030229384 Mon Dec 2003 A1
20030233099 Danaek et al. Dec 2003 A1
20040000633 Arnold et al. Jan 2004 A1
20040006359 Laguna Jan 2004 A1
20040010118 Zerhusen et al. Jan 2004 A1
20040019348 Stevens et al. Jan 2004 A1
20040024371 Plicchi et al. Feb 2004 A1
20040043030 Griffiths et al. Mar 2004 A1
20040062852 Schroeder et al. Apr 2004 A1
20040064090 Keren et al. Apr 2004 A1
20040064093 Hektner et al. Apr 2004 A1
20040073206 Foley et al. Apr 2004 A1
20040088002 Boyle et al. May 2004 A1
20040093055 Bartorelli et al. May 2004 A1
20040106871 Hunyor et al. Jun 2004 A1
20040111016 Casscells, III et al. Jun 2004 A1
20040117032 Roth Jun 2004 A1
20040122421 Wood Jun 2004 A1
20040147915 Hasebe Jul 2004 A1
20040162555 Farley et al. Aug 2004 A1
20040167506 Chen Aug 2004 A1
20040181165 Hoey et al. Sep 2004 A1
20040186356 O'Malley et al. Sep 2004 A1
20040186468 Edwards Sep 2004 A1
20040187875 He et al. Sep 2004 A1
20040193211 Voegele et al. Sep 2004 A1
20040220556 Cooper et al. Nov 2004 A1
20040243022 Carney et al. Dec 2004 A1
20040243199 Mon et al. Dec 2004 A1
20040253304 Gross et al. Dec 2004 A1
20040267250 Yon et al. Dec 2004 A1
20050010095 Stewart et al. Jan 2005 A1
20050010208 Winston et al. Jan 2005 A1
20050015125 Mioduski et al. Jan 2005 A1
20050033136 Govari et al. Feb 2005 A1
20050080374 Esch et al. Apr 2005 A1
20050090820 Cornelius et al. Apr 2005 A1
20050096647 Steinke et al. May 2005 A1
20050129616 Salcedo et al. Jun 2005 A1
20050137180 Robinson et al. Jun 2005 A1
20050143817 Hunter et al. Jun 2005 A1
20050148842 Wang et al. Jul 2005 A1
20050149069 Bertolero et al. Jul 2005 A1
20050149080 Hunter et al. Jul 2005 A1
20050149158 Hunter et al. Jul 2005 A1
20050149173 Hunter et al. Jul 2005 A1
20050149175 Hunter et al. Jul 2005 A1
20050154277 Tang et al. Jul 2005 A1
20050154445 Hunter et al. Jul 2005 A1
20050154453 Hunter et al. Jul 2005 A1
20050154454 Hunter et al. Jul 2005 A1
20050165389 Swain et al. Jul 2005 A1
20050165391 Maguire et al. Jul 2005 A1
20050165467 Hunter et al. Jul 2005 A1
20050165488 Hunter et al. Jul 2005 A1
20050175661 Hunter et al. Aug 2005 A1
20050175662 Hunter et al. Aug 2005 A1
20050175663 Hunter et al. Aug 2005 A1
20050177103 Hunter et al. Aug 2005 A1
20050177225 Hunter et al. Aug 2005 A1
20050181004 Hunter et al. Aug 2005 A1
20050181008 Hunter et al. Aug 2005 A1
20050181011 Hunter et al. Aug 2005 A1
20050181977 Hunter et al. Aug 2005 A1
20050182479 Bonsignore et al. Aug 2005 A1
20050183728 Hunter et al. Aug 2005 A1
20050186242 Hunter et al. Aug 2005 A1
20050186243 Hunter et al. Aug 2005 A1
20050191331 Hunter et al. Sep 2005 A1
20050203410 Jenkins Sep 2005 A1
20050203434 Kassab Sep 2005 A1
20050203498 Mon et al. Sep 2005 A1
20050209587 Joye et al. Sep 2005 A1
20050214205 Salcedo et al. Sep 2005 A1
20050214207 Salcedo et al. Sep 2005 A1
20050214208 Salcedo et al. Sep 2005 A1
20050214209 Salcedo et al. Sep 2005 A1
20050214210 Salcedo et al. Sep 2005 A1
20050214268 Cavanagh et al. Sep 2005 A1
20050228286 Messerly et al. Oct 2005 A1
20050228415 Gertner Oct 2005 A1
20050228460 Levin et al. Oct 2005 A1
20050232921 Rosen et al. Oct 2005 A1
20050234312 Suzuki et al. Oct 2005 A1
20050245862 Seward Nov 2005 A1
20050251116 Steinke et al. Nov 2005 A1
20050252553 Ginggen Nov 2005 A1
20050256398 Hastings et al. Nov 2005 A1
20050267556 Shuros et al. Dec 2005 A1
20050283195 Pastore et al. Dec 2005 A1
20060004323 Chang et al. Jan 2006 A1
20060018949 Ammon et al. Jan 2006 A1
20060024564 Manclaw Feb 2006 A1
20060025765 Landman et al. Feb 2006 A1
20060062786 Salcedo et al. Mar 2006 A1
20060083194 Dhrimaj et al. Apr 2006 A1
20060085054 Zikorus et al. Apr 2006 A1
20060089637 Werneth et al. Apr 2006 A1
20060089638 Carmel et al. Apr 2006 A1
20060095096 DeBenedictis et al. May 2006 A1
20060106375 Werneth et al. May 2006 A1
20060142790 Gertner Jun 2006 A1
20060147492 Hunter et al. Jul 2006 A1
20060149166 Zvuloni Jul 2006 A1
20060167106 Zhang et al. Jul 2006 A1
20060167498 DiLorenzo Jul 2006 A1
20060171895 Bucay-Couto Aug 2006 A1
20060184060 Belacazar et al. Aug 2006 A1
20060184221 Stewart et al. Aug 2006 A1
20060195139 Gertner Aug 2006 A1
20060206150 Demarais et al. Sep 2006 A1
20060224153 Fischell et al. Oct 2006 A1
20060235286 Stone et al. Oct 2006 A1
20060239921 Mangat et al. Oct 2006 A1
20060240070 Cromack et al. Oct 2006 A1
20060246143 Ege Nov 2006 A1
20060247266 Yamada et al. Nov 2006 A1
20060247760 Ganesan et al. Nov 2006 A1
20060263393 Demopulos et al. Nov 2006 A1
20060269555 Salcedo et al. Nov 2006 A1
20060271111 Demarais et al. Nov 2006 A1
20060280858 Kokish Dec 2006 A1
20060287644 Inganas et al. Dec 2006 A1
20070016184 Cropper et al. Jan 2007 A1
20070016274 Boveja et al. Jan 2007 A1
20070027390 Maschke et al. Feb 2007 A1
20070043077 Mewshaw et al. Feb 2007 A1
20070043409 Brian et al. Feb 2007 A1
20070049924 Rahn Mar 2007 A1
20070066972 Ormsby et al. Mar 2007 A1
20070073151 Lee Mar 2007 A1
20070078498 Stone et al. Apr 2007 A1
20070093710 Maschke Apr 2007 A1
20070100405 Thompson et al. May 2007 A1
20070106247 Burnett et al. May 2007 A1
20070112327 Yun et al. May 2007 A1
20070118107 Francischelli et al. May 2007 A1
20070129760 Demarais et al. Jun 2007 A1
20070129761 Demarais et al. Jun 2007 A1
20070135875 Demarais et al. Jun 2007 A1
20070149963 Matsukuma et al. Jun 2007 A1
20070162109 Davila et al. Jul 2007 A1
20070173805 Weinberg et al. Jul 2007 A1
20070173899 Levin et al. Jul 2007 A1
20070179496 Swoyer et al. Aug 2007 A1
20070197891 Shachar et al. Aug 2007 A1
20070203480 Mody et al. Aug 2007 A1
20070207186 Scanlon et al. Sep 2007 A1
20070208134 Hunter et al. Sep 2007 A1
20070208210 Gelfand et al. Sep 2007 A1
20070208256 Marilla Sep 2007 A1
20070208301 Evard et al. Sep 2007 A1
20070219576 Cangialosi Sep 2007 A1
20070225781 Saadat et al. Sep 2007 A1
20070233170 Gertner Oct 2007 A1
20070239062 Chopra et al. Oct 2007 A1
20070248639 Demopulos et al. Oct 2007 A1
20070249703 Mewshaw et al. Oct 2007 A1
20070254833 Hunter et al. Nov 2007 A1
20070265687 Deem et al. Nov 2007 A1
20070278103 Hoerr et al. Dec 2007 A1
20070282302 Wachsman et al. Dec 2007 A1
20070292411 Salcedo et al. Dec 2007 A1
20070293782 Marino Dec 2007 A1
20070299043 Hunter et al. Dec 2007 A1
20080004673 Rossing et al. Jan 2008 A1
20080009927 Vilims Jan 2008 A1
20080015501 Gertner Jan 2008 A1
20080021408 Jacobsen et al. Jan 2008 A1
20080033049 Mewshaw Feb 2008 A1
20080039746 Hissong et al. Feb 2008 A1
20080039830 Munger et al. Feb 2008 A1
20080051454 Wang Feb 2008 A1
20080064957 Spence Mar 2008 A1
20080071269 Hilario et al. Mar 2008 A1
20080071306 Gertner Mar 2008 A1
20080082109 Moll et al. Apr 2008 A1
20080086072 Bonutti et al. Apr 2008 A1
20080091193 Kauphusman et al. Apr 2008 A1
20080097251 Babaev Apr 2008 A1
20080097426 Root et al. Apr 2008 A1
20080108867 Zhou May 2008 A1
20080119879 Brenneman et al. May 2008 A1
20080125772 Stone et al. May 2008 A1
20080132450 Lee et al. Jun 2008 A1
20080140002 Ramzipoor et al. Jun 2008 A1
20080147002 Gertner Jun 2008 A1
20080161662 Golijanin et al. Jul 2008 A1
20080161717 Gertner Jul 2008 A1
20080161801 Steinke et al. Jul 2008 A1
20080171974 Lafontaine et al. Jul 2008 A1
20080172035 Starksen et al. Jul 2008 A1
20080172104 Kieval et al. Jul 2008 A1
20080188912 Stone et al. Aug 2008 A1
20080188913 Stone et al. Aug 2008 A1
20080208162 Joshi Aug 2008 A1
20080208169 Boyle et al. Aug 2008 A1
20080213331 Gelfand et al. Sep 2008 A1
20080215117 Gross Sep 2008 A1
20080221448 Khuri-Yakub et al. Sep 2008 A1
20080234790 Bayer et al. Sep 2008 A1
20080243091 Humphreys et al. Oct 2008 A1
20080245371 Gruber Oct 2008 A1
20080249525 Lee et al. Oct 2008 A1
20080249547 Dunn Oct 2008 A1
20080255550 Bell Oct 2008 A1
20080255642 Zarins et al. Oct 2008 A1
20080262489 Steinke Oct 2008 A1
20080275484 Gertner Nov 2008 A1
20080281312 Werneth et al. Nov 2008 A1
20080281347 Gertner Nov 2008 A1
20080287918 Rosenman et al. Nov 2008 A1
20080294037 Richter Nov 2008 A1
20080300618 Gertner Dec 2008 A1
20080312644 Fourkas et al. Dec 2008 A1
20080312673 Viswanathan et al. Dec 2008 A1
20080317818 Griffith et al. Dec 2008 A1
20090018486 Goren et al. Jan 2009 A1
20090018609 DiLorenzo Jan 2009 A1
20090024194 Arcot-Krishnamurthy et al. Jan 2009 A1
20090030312 Hadjicostis Jan 2009 A1
20090036948 Levin et al. Feb 2009 A1
20090043372 Northrop et al. Feb 2009 A1
20090054082 Kim et al. Feb 2009 A1
20090062873 Wu et al. Mar 2009 A1
20090069671 Anderson Mar 2009 A1
20090074828 Alexis et al. Mar 2009 A1
20090076409 Wu et al. Mar 2009 A1
20090088735 Abboud et al. Apr 2009 A1
20090105631 Kieval Apr 2009 A1
20090112202 Young Apr 2009 A1
20090118620 Tgavalekos et al. May 2009 A1
20090118726 Auth et al. May 2009 A1
20090125099 Weber et al. May 2009 A1
20090131798 Minar et al. May 2009 A1
20090143640 Saadat et al. Jun 2009 A1
20090156988 Ferren et al. Jun 2009 A1
20090157057 Ferren et al. Jun 2009 A1
20090157161 Desai et al. Jun 2009 A1
20090171333 Hon Jul 2009 A1
20090192558 Whitehurst et al. Jul 2009 A1
20090198223 Thilwind et al. Aug 2009 A1
20090203962 Miller et al. Aug 2009 A1
20090203993 Mangat et al. Aug 2009 A1
20090204170 Hastings et al. Aug 2009 A1
20090210953 Moyer et al. Aug 2009 A1
20090216317 Cromack et al. Aug 2009 A1
20090221955 Babaev Sep 2009 A1
20090226429 Salcedo et al. Sep 2009 A1
20090240249 Chan et al. Sep 2009 A1
20090247933 Maor et al. Oct 2009 A1
20090247966 Gunn et al. Oct 2009 A1
20090248012 Maor et al. Oct 2009 A1
20090253974 Rahme Oct 2009 A1
20090264755 Chen et al. Oct 2009 A1
20090270850 Zhou et al. Oct 2009 A1
20090281533 Ingle et al. Nov 2009 A1
20090287137 Crowley Nov 2009 A1
20090318749 Stolen et al. Dec 2009 A1
20100009267 Chase et al. Jan 2010 A1
20100030061 Canfield et al. Feb 2010 A1
20100048983 Ball et al. Feb 2010 A1
20100049099 Thapliyal et al. Feb 2010 A1
20100049186 Ingle et al. Feb 2010 A1
20100049188 Nelson et al. Feb 2010 A1
20100049191 Habib et al. Feb 2010 A1
20100049283 Johnson Feb 2010 A1
20100069837 Rassat et al. Mar 2010 A1
20100076299 Gustus et al. Mar 2010 A1
20100076425 Carroux Mar 2010 A1
20100087782 Ghaffari et al. Apr 2010 A1
20100106005 Karczmar et al. Apr 2010 A1
20100114244 Manda et al. May 2010 A1
20100125239 Perry et al. May 2010 A1
20100125268 Gustus et al. May 2010 A1
20100130836 Malchano et al. May 2010 A1
20100137860 Demarais et al. Jun 2010 A1
20100137952 Demarais et al. Jun 2010 A1
20100160903 Krespi Jun 2010 A1
20100160906 Jarrard Jun 2010 A1
20100168624 Sliwa Jul 2010 A1
20100168731 Wu et al. Jul 2010 A1
20100168739 Wu et al. Jul 2010 A1
20100174282 Demarais et al. Jul 2010 A1
20100191112 Demarais et al. Jul 2010 A1
20100191232 Boveda Jul 2010 A1
20100204560 Salahieh et al. Aug 2010 A1
20100217162 Hissong et al. Aug 2010 A1
20100222786 Kassab Sep 2010 A1
20100222851 Deem et al. Sep 2010 A1
20100222854 Demarais et al. Sep 2010 A1
20100228122 Keenan et al. Sep 2010 A1
20100249604 Hastings et al. Sep 2010 A1
20100249702 Magana et al. Sep 2010 A1
20100249773 Clark et al. Sep 2010 A1
20100256616 Katoh et al. Oct 2010 A1
20100268217 Habib Oct 2010 A1
20100268307 Demarais et al. Oct 2010 A1
20100284927 Lu et al. Nov 2010 A1
20100286684 Hata et al. Nov 2010 A1
20100298821 Garbagnati Nov 2010 A1
20100305036 Barnes et al. Dec 2010 A1
20100312141 Keast et al. Dec 2010 A1
20100324472 Wulfman Dec 2010 A1
20110009750 Taylor et al. Jan 2011 A1
20110021976 Li et al. Jan 2011 A1
20110034832 Cioanta et al. Feb 2011 A1
20110040324 McCarthy et al. Feb 2011 A1
20110044942 Puri et al. Feb 2011 A1
20110060324 Wu et al. Mar 2011 A1
20110071400 Hastings et al. Mar 2011 A1
20110071401 Hastings et al. Mar 2011 A1
20110077498 McDaniel Mar 2011 A1
20110092781 Gertner Apr 2011 A1
20110092880 Gertner Apr 2011 A1
20110104061 Seward May 2011 A1
20110112400 Emery et al. May 2011 A1
20110118598 Gertner May 2011 A1
20110118600 Gertner May 2011 A1
20110118726 De La Rama et al. May 2011 A1
20110130708 Perry et al. Jun 2011 A1
20110137155 Weber et al. Jun 2011 A1
20110144479 Hastings et al. Jun 2011 A1
20110146673 Keast et al. Jun 2011 A1
20110166499 Demarais et al. Jul 2011 A1
20110178403 Weng et al. Jul 2011 A1
20110178570 Demarais Jul 2011 A1
20110200171 Beetel et al. Aug 2011 A1
20110202098 Demarais et al. Aug 2011 A1
20110207758 Sobotka et al. Aug 2011 A1
20110208096 Demarais et al. Aug 2011 A1
20110257523 Hastings et al. Oct 2011 A1
20110257564 Demarais et al. Oct 2011 A1
20110257622 Salahieh et al. Oct 2011 A1
20110257641 Hastings et al. Oct 2011 A1
20110257642 Griggs, III Oct 2011 A1
20110263921 Vrba et al. Oct 2011 A1
20110264011 Wu et al. Oct 2011 A1
20110264075 Leung et al. Oct 2011 A1
20110264086 Ingle Oct 2011 A1
20110264116 Kocur et al. Oct 2011 A1
20110270238 Rizq et al. Nov 2011 A1
20110306851 Wang Dec 2011 A1
20110307034 Hastings et al. Dec 2011 A1
20110319809 Smith Dec 2011 A1
20120029496 Smith Feb 2012 A1
20120029500 Jenson Feb 2012 A1
20120029505 Jenson Feb 2012 A1
20120029509 Smith Feb 2012 A1
20120029510 Haverkost Feb 2012 A1
20120029511 Smith et al. Feb 2012 A1
20120029512 Willard et al. Feb 2012 A1
20120029513 Smith et al. Feb 2012 A1
20120059241 Hastings et al. Mar 2012 A1
20120059286 Hastings et al. Mar 2012 A1
20120065506 Smith Mar 2012 A1
20120065554 Pikus Mar 2012 A1
20120095461 Herscher et al. Apr 2012 A1
20120101413 Beetel et al. Apr 2012 A1
20120101490 Smith Apr 2012 A1
20120101538 Ballakur et al. Apr 2012 A1
20120109021 Hastings et al. May 2012 A1
20120116382 Ku et al. May 2012 A1
20120116383 Mauch et al. May 2012 A1
20120116392 Willard May 2012 A1
20120116438 Salahieh et al. May 2012 A1
20120116486 Naga et al. May 2012 A1
20120123243 Hastings May 2012 A1
20120123258 Willard May 2012 A1
20120123261 Jenson et al. May 2012 A1
20120123303 Sogard et al. May 2012 A1
20120123406 Edmunds et al. May 2012 A1
20120130289 Demarais et al. May 2012 A1
20120130345 Levin et al. May 2012 A1
20120130359 Turovskiy May 2012 A1
20120130360 Buckley et al. May 2012 A1
20120130362 Hastings et al. May 2012 A1
20120130368 Jenson May 2012 A1
20120130458 Ryba et al. May 2012 A1
20120136344 Buckley et al. May 2012 A1
20120136349 Hastings May 2012 A1
20120136350 Goshgarian et al. May 2012 A1
20120136417 Buckley et al. May 2012 A1
20120136418 Buckley et al. May 2012 A1
20120143181 Demarais et al. Jun 2012 A1
20120143293 Mauch et al. Jun 2012 A1
20120143294 Clark et al. Jun 2012 A1
20120150267 Buckley et al. Jun 2012 A1
20120157986 Stone et al. Jun 2012 A1
20120157987 Steinke et al. Jun 2012 A1
20120157988 Stone et al. Jun 2012 A1
20120157989 Stone et al. Jun 2012 A1
20120157992 Smith et al. Jun 2012 A1
20120157993 Jenson et al. Jun 2012 A1
20120158101 Stone et al. Jun 2012 A1
20120158104 Huynh et al. Jun 2012 A1
20120172837 Demarais et al. Jul 2012 A1
20120172870 Jenson et al. Jul 2012 A1
20120184952 Jenson et al. Jul 2012 A1
20120197198 Demarais et al. Aug 2012 A1
20120197252 Deem et al. Aug 2012 A1
20120232409 Stahmann et al. Sep 2012 A1
20120265066 Crow et al. Oct 2012 A1
20120265198 Crow et al. Oct 2012 A1
20130012844 Demarais et al. Jan 2013 A1
20130012866 Deem et al. Jan 2013 A1
20130012867 Demarais et al. Jan 2013 A1
20130013024 Levin et al. Jan 2013 A1
20130023865 Steinke et al. Jan 2013 A1
20130035681 Subramanaim et al. Feb 2013 A1
20130066316 Steinke et al. Mar 2013 A1
20130085489 Fain et al. Apr 2013 A1
20130090563 Weber Apr 2013 A1
20130090578 Smith et al. Apr 2013 A1
20130090647 Smith Apr 2013 A1
20130090649 Smith et al. Apr 2013 A1
20130090650 Jenson et al. Apr 2013 A1
20130090651 Smith Apr 2013 A1
20130090652 Jenson Apr 2013 A1
20130096550 Hill Apr 2013 A1
20130096553 Hill et al. Apr 2013 A1
20130096554 Groff et al. Apr 2013 A1
20130096604 Hanson et al. Apr 2013 A1
20130110106 Richardson May 2013 A1
20130116687 Willard May 2013 A1
20130165764 Scheuermann et al. Jun 2013 A1
20130165844 Shuros et al. Jun 2013 A1
20130165916 Mathur et al. Jun 2013 A1
20130165917 Mathur et al. Jun 2013 A1
20130165920 Weber et al. Jun 2013 A1
20130165923 Mathur et al. Jun 2013 A1
20130165924 Mathur et al. Jun 2013 A1
20130165925 Mathur et al. Jun 2013 A1
20130165926 Mathur et al. Jun 2013 A1
20130165990 Mathur et al. Jun 2013 A1
20130172815 Perry et al. Jul 2013 A1
20130172872 Subramaniam et al. Jul 2013 A1
20130172877 Subramaniam et al. Jul 2013 A1
20130172878 Smith Jul 2013 A1
20130172879 Sutermeister Jul 2013 A1
20130172880 Willard Jul 2013 A1
20130172881 Hill et al. Jul 2013 A1
Foreign Referenced Citations (165)
Number Date Country
2384866 May 2001 CA
101583323 Nov 2009 CN
102271607 Dec 2011 CN
10038737 Feb 2002 DE
102005041601 Apr 2007 DE
102008048616 Apr 2010 DE
558297 Sep 1993 EP
647435 Apr 1995 EP
634910 Aug 1997 EP
868884 Oct 1998 EP
1005838 Jun 2000 EP
1053720 Nov 2000 EP
1064886 Jan 2001 EP
1180004 Feb 2002 EP
1181895 Feb 2002 EP
1297795 Jun 2002 EP
1264613 Dec 2002 EP
1286625 Mar 2003 EP
1332724 Aug 2003 EP
1335677 Aug 2003 EP
866675 Oct 2003 EP
1433448 Jun 2004 EP
1442719 Aug 2004 EP
1547537 Jun 2005 EP
1634542 Mar 2006 EP
1698296 Jun 2006 EP
1709922 Oct 2006 EP
1874211 Jan 2008 EP
1906853 Apr 2008 EP
1946712 Jul 2008 EP
1961394 Aug 2008 EP
1715798 Apr 2009 EP
1620156 Jul 2009 EP
2076193 Jul 2009 EP
2091455 Aug 2009 EP
2092957 Aug 2009 EP
2197533 Jun 2010 EP
2208506 Jul 2010 EP
1579889 Aug 2010 EP
2241279 Oct 2010 EP
2092957 Jan 2011 EP
2329859 Jun 2011 EP
2349044 Aug 2011 EP
2027882 Oct 2011 EP
2378956 Oct 2011 EP
2037840 Dec 2011 EP
2204134 Apr 2012 EP
2320821 Oct 2012 EP
2313062 Nov 1997 GB
2453601 Apr 2009 GB
2456301 Jul 2009 GB
1995-213621 Aug 1995 JP
1995-313603 Dec 1995 JP
2003-510126 Mar 2003 JP
WO 199103207 Mar 1991 WO
WO 199117731 Nov 1991 WO
WO 1992022239 Dec 1992 WO
WO 199320747 Oct 1993 WO
WO 199320770 Oct 1993 WO
WO 199418896 Sep 1994 WO
WO 199428809 Dec 1994 WO
WO 1995001751 Jan 1995 WO
WO 199501751 Jan 1995 WO
WO 199531142 Nov 1995 WO
WO 199634559 Nov 1996 WO
WO 199703604 Feb 1997 WO
WO 1997017104 May 1997 WO
WO 199720510 Jun 1997 WO
WO 199732532 Sep 1997 WO
WO 199740760 Nov 1997 WO
WO 199745156 Dec 1997 WO
WO 199818393 May 1998 WO
WO 1998029030 Jul 1998 WO
WO 199834565 Aug 1998 WO
WO 199835638 Aug 1998 WO
WO 199840023 Sep 1998 WO
9858588 Dec 1998 WO
9900060 Jan 1999 WO
WO 1999000060 Jan 1999 WO
WO 199916370 Apr 1999 WO
WO 199921608 May 1999 WO
WO 199934741 Jul 1999 WO
WO 199944522 Sep 1999 WO
WO 2000001313 Jan 2000 WO
WO 200010475 Mar 2000 WO
0047118 Aug 2000 WO
WO 200051513 Sep 2000 WO
WO 200059394 Oct 2000 WO
WO 200062727 Oct 2000 WO
WO 200064387 Nov 2000 WO
WO 200069376 Nov 2000 WO
WO 200072909 Dec 2000 WO
WO 200122897 Apr 2001 WO
WO 200137746 May 2001 WO
WO 200187172 May 2001 WO
WO 2001074255 Oct 2001 WO
WO 200187154 Nov 2001 WO
WO 200195820 Dec 2001 WO
WO 2002015807 Feb 2002 WO
WO 2002028475 Apr 2002 WO
WO 2002039915 May 2002 WO
WO 2002058549 Aug 2002 WO
WO 2002080766 Oct 2002 WO
WO 2002087679 Nov 2002 WO
WO 2002089686 Nov 2002 WO
03026525 Apr 2003 WO
WO 2003077781 Sep 2003 WO
WO 2004047659 Jun 2004 WO
WO 2004049976 Jun 2004 WO
WO 2004064606 Aug 2004 WO
WO 2004069300 Aug 2004 WO
WO 2004076146 Sep 2004 WO
2004100813 Nov 2004 WO
WO 2004098694 Nov 2004 WO
2004110258 Dec 2004 WO
WO 2004105807 Dec 2004 WO
WO 2005007000 Jan 2005 WO
WO 2005037070 Apr 2005 WO
WO 2005041748 May 2005 WO
WO 2005074829 Aug 2005 WO
WO 2006041881 Apr 2006 WO
2006105121 Oct 2006 WO
WO 2006105121 Oct 2006 WO
WO 2006116198 Nov 2006 WO
WO 2007011634 Jan 2007 WO
WO 2007014063 Feb 2007 WO
WO 2007047870 Apr 2007 WO
WO 2007113865 Oct 2007 WO
WO 2007135431 Nov 2007 WO
WO 2007146215 Dec 2007 WO
2008014465 Jan 2008 WO
WO 2008003058 Jan 2008 WO
WO 2008009972 Jan 2008 WO
WO 2008010150 Jan 2008 WO
WO 2008036281 Mar 2008 WO
WO 2008049084 Apr 2008 WO
WO 2008061152 May 2008 WO
WO 2008102363 Aug 2008 WO
WO 2009036471 Mar 2009 WO
WO 2009082635 Jul 2009 WO
WO 2009088678 Jul 2009 WO
WO 2009113064 Sep 2009 WO
2009121017 Oct 2009 WO
WO 2009121017 Oct 2009 WO
WO 2009137819 Nov 2009 WO
WO 2010042653 Apr 2010 WO
WO 2010048007 Apr 2010 WO
WO 2010056771 May 2010 WO
WO 2010057043 May 2010 WO
2010067360 Jun 2010 WO
WO 2010070766 Jun 2010 WO
2010102310 Sep 2010 WO
WO 2010099207 Sep 2010 WO
WO 2010120944 Oct 2010 WO
WO 2010134503 Nov 2010 WO
2011005901 Jan 2011 WO
2011053757 May 2011 WO
2011053772 May 2011 WO
WO 2011055143 May 2011 WO
WO 2011060339 May 2011 WO
2011091069 Jul 2011 WO
2011130534 Oct 2011 WO
WO 2011126580 Oct 2011 WO
2012019156 Feb 2012 WO
2013049601 Apr 2013 WO
Non-Patent Literature Citations (152)
Entry
US 8,398,630 B2, 03/2013, Demarais et al. (withdrawn)
Brown et al., “Observations on the shrink temperature of collagen and its variations with age and disease,” Ann Rheum Dis, Jun. 1, 1958, 17(2):196-208.
Office Action issued in Chinese Patent Application No. 20111031923.X, dated May 22, 2012, 10 pages total.
Notice of the Reason for Refusal issued in Japanese Patent Application No. 2009-533544, dated Jun. 19, 2012, 3 pages total.
Summons to Attend Oral Proceedings of EP Patent Application No. 07844424.7, dated Jul. 5, 2012, 7 pages total.
European Search Report and Search Opinion of EP Patent Application No. 11191822.3, dated Jun. 13, 2012, 13 pages total.
Office Action issued in European Application No. 07844421.3, dated Aug. 23, 2012, 5 pages total.
Notice of the Reason for Refusal issued in Japanese Patent Application No. 2009-533546, dated Jun. 19, 2012, 6 pages total.
Extended European Search Report and Search Opinion of EP Patent Application No. 12154069.4, dated Sep. 17, 2012, 13 pages total.
Notice of the Reason for Refusal issued in Japanese Patent Application No. 2006-526351, dated Sep. 18, 2012, 20 pages total.
Office Action issued in Chinese Patent Application No. 201110031923.X, dated Sep. 6, 2012, 11 pages total.
Office Action issued in Australian Patent Application No. 2010248955, dated Sep. 13, 2012, 4 pages total.
Brown et al., “Radiofrequency capacitive heaters: the effect of coupling medium resistivity on power absorption along a mouse leg” Phys Med Biol 1993, 38 1-12 (abstract).
Cardiovascular Technologies, Inc., “Heated Balloon Device Technology” [Presentation], 2007-2008, 11 pages total. Retrieved from: <<http://www.cvtechinc.com/pr/presoCVT_Heated_Balloon_Tech.pdf>>.
Carrington, “Future of CVI: It's All About the Plaque.” Diagnostic Imaging Special Edition Forum [online] [retrieved on Sep. 3, 2003] Retreived from the Internet:,http://dimag.com/specialedition/cardiacimg.shtml> 5 pages total.
Cimino, “Preventing Plaque Attack”, [online] [retrieved on Sep. 3, 2003] Retrieved from the Internet: <http://Masshightech.com/displayarticledetail.ap?art_id=52283&cat_id=10>, 3 pages total.
Dahm et al, “Relation of Degree of Laser Debulking of In-Stent Restenosis as a Predictor of Restenosis Rate”, Am J Cardiol, 2002; 90(1): 68-70.
De Korte C L. et al., “Characterization of Placque Components with Intravascular Ultrasound Elastography in Human Femoral and Coronary Arteries In Vitro,” Circulation 2000;102:617-623.
Durney C., et al., Radiofrequency Radiation Dosimetry Handbook (with table of contents), Oct. 1986, 4th ed., 7 pages, Armstrong Laboratory (AFMC) Occupational and Environmental Health Directorate Radiofrequency Radiation Division, USAF School of Aerospace Medicine, Aerospace Medical Division (AFSC), Brooks Air Force Base, http://www.brooks.af.mil/AFRL/HED/hedr/reports/handbook/home.htm.
Fournier-Desseux et al. “Assessment of 1-lead and 2-lead electrode patterns in electrical impedance endotomography”, Physiol. Meas. (2005) 26:337-349.
Fujimori et al., “Significant Prevention of In-Stent Restenosis by Evans Blue in Patients with Acute Myocardial Infarction”, Abstract #2925, AHA (2002), 1 page total.
Fujita, “Sarpogrelate, an Antagonist of 5-HT2a Receptor Treatment Reduces Restenosis After Coronary Stenting”, Abstract #2927, AHA (2002), 1 page total.
Gabriel C, et al., Compilation of the Dielectric Properties of Body Tissues at RF and Microwave Frequencies (with table of contents), Jun. 1996, 17 pages, Armstrong Laboratory (AFMC) Occupational and Environmental Health Directorate Radiofrequency Radiation Division, USAF School of Aerospace Medicine, Aerospace Medical Division (AFSC), Brooks Air Force Base, http://www.brooks.af.mil/AFRL/HED/hedr/reports/dielectric/Report/Report.html.
Gabriel C, et al., Compilation of the Dielectric Properties of Body Tissues at RF and Microwave Frequencies, Appendi04-10-2009 A, Jun. 1996, 21 pages, Armstrong Laboratory (AFMC) Occupational and Environmental Health Directorate Radiofrequency Radiation Division, USAF School of Aerospace Medicine, Aerospace Medical Division (AFSC), Brooks Air Force Base, http://www.brooks.af.mil/AFRL/HED/hedr/reports/dielectric/Appendi04-10-2009.A/Appendi04-10-2009 A.html.
Gabriel C, et al., Compilation of the Dielectric Properties of Body Tissues at RF and Microwave Frequencies, Appendi04-10-2009 C, Jun. 1996, 6 pages, Armstrong Laboratory (AFMC) Occupational and Environmental Health Directorate Radiofrequency Radiation Division, USAF School of Aerospace Medicine, Aerospace Medical Division (AFSC), Brooks Air Force Base, http://www.brooks.af.mil/AFRL/HED/hedr/reports/dielectric/Appendi04-10-2009.C/Appendi04-10-2009 C.html.
Gregory et al., “Liquid Core Light Guide for Laser Angioplasty”, Journal of Quantum Electronics, vol. 26, No. 12, (Dec. 1990), pp. 2289-2296.
Intraluminal, Product description [online] [retrieved on Sep. 3, 2003] Retrieved from the Internet: http://www.intraluminal.com/products/inde04-10-2009 .html> 1 page total.
Kaplan et al., “Healing after arterial dilatation with radiofrequency thermal and nonthermal balloon angioplasty systems,” J Invest Surg. Jan.-Feb. 1993;6(1):33-52.
Kolata, “New Studies Question Value of Opening Arteries”, New York Times [online] [retrieved on Jan. 25, 2005]. Retrieved from the Internet: <http://nytimes.com/2004/03/21/health/21HEAR.html?ei=5070&en=641bc03214e&e04-10-2009 =11067>, 5 pages total.
Konings M K, et al., “Development of an Intravascular Impedance Catheter for Detection of Fatty Lesions in Arteries,” IEEE Transactions on Medical Imaging, vol. 51, No. 4, Apr. 2004.
Kurtz et al., “Lamellar Refractive Surgery with Scanned Intrastromal Picosecond and Femtosecond Laser Pulses in Animal Eyes”, J Refract Surg, vol. 14, (Sep./Oct. 1998), pp. 541-548.
Lightlab Imaging Technology, “Advantages of OCT”, [online] [retrieved on Sep. 3, 2003]. Retrieved from the Internet: <http:www.lightlabimaging.com/advantage.html> 2 pages total.
Lightlab Imaging Technology, “Image Gallery”, [online] [retrieved on Sep. 3, 2003]. Retrieved from the Internet: <http:lightlabimaging.com/gallery/cvpstill.html> 4 pages total.
Lightlab Imaging Technology, “LightLab Imaging Starts US Cardiology Clinical Investigations”, LightLab Company Press Release, [online] [retrieved on Sep. 3, 2003]. Retrieved from the Internet: <http://www.lighlabimaging.com/press/cardtrails.html> 2 pages total.
Lightlab Imaging Technology, “LightLab Sees Bright Prospects for Cardiac Application of OCT Technology” The Graysheet Medical Devices Diagnostics & Instrumentation, vol. 27, No. 35, (Aug. 27, 2001) [online] [retrieved on Sep. 3, 2003]. Retrieved from the Internet: <http://www.lighlabimaging.com/press/graysheet.html> 1 page total.
Lightlab Imaging Technology, “What is OCT?”, [online] [retrieved on Sep. 3, 2003]. Retrieved from the Internet: <http:lightlabimaging.com/oct.html.> 2 pages total.
Lightlab Imaging Technology, “Why use OCT?”, [online] [retrieved on Sep. 3, 2003]. Retrieved from the Internet: <http:lightlabimaging.com/whyoct.html> 2 pages total.
Lima et al., “Efficacy and Safety of Oral Sirolimus to Treat and Prevent In-Stent Restenosis: A Pilot Study Results”, Abstract #2929, AHA (2002), 1 page total.
Lima et al., “Systemic Immunosuppression Inhibits In-Stent Coronary Intimal Proliferation in Renal Transplant Patients”, Abstract #2928, AHA (2002), 1 page total.
MIT Techtalk, “Laser Catheter to Aid Coronary Surgery”, Jan. 9, 1991 [online] [retrieved on Feb. 7, 2005]. Retrieved from the Internet : <http://web.mit.edu/newsoffice/tt/1991/jan09/24037.html> 4 pages total.
Morice et al., “A Randomized Comparison of a Sirolimus-Eluting Stent With a Standard Stent for Coronary Revascularization”, N. Engl J Med, vol. 346, No. 23, (Jun. 6, 2002), pp. 1773-1779.
Müller et al., “Effectiveness and Safety of Ultrasonic Atherosclerotic Plaque Ablation: In Vitro Investigation”, CardioVas. Intervent. Radiol., (1993) 16: 303-307.
Nair A, et al., “Regularized Autoregressive Analysis of Intravascular Ultrasound Backscatter: Improvement in Spatial Accuracy of Tissue Maps,” IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control, vol. 51 No. 4, Apr. 2004.
Popma et al., “Chapter 38—Percutaneous Coronary and Valvular Intervention”, Heart Disease: A Textbook of Cardiovascular Medicine, 6th ed., (2001) W.B> Saunders Company, pp. 1364-1405.
Romer et al., “Histopathology of Human Coronary Atherosclerosis by Quantifying Its Chemical Composition with Raman Spectroscopy,” Circulation 97:878-885 (1998).
Scheller et al., “Potential Solutions to the Current Problem: Coated Balloon,” EuroIntervention, Aug. 2008; 4 Suppl C: C63-66.
Scheller, “Intracoronary Paclitaxel Added to Contrast Media Inhibits In-Stent Restenosis of Porcine Coronary Arteries”, Abstract #2227, AHA (2002), 2 pages total.
Shaffer, “Scientific Basis of Laser Energy”, Clin Sports Med 2002; 21(4):585-598.
Shmatukha A V, et al., “MRI temperature mapping during thermal balloon angioplasty,” Phys Med Biol 51, (2006) N163-N171.
Slager et al., “Vaporization of Atherosclerotic Placques by Spark Erosion,” J Am Coll Cardiol, vol. 5 (Jun. 1985) pp. 1382-1386.
Stiles et al., “Simulated Charactization of Atherosclerotic Lesions in the Coronary Arteries by Measurement of Bioimpedance,” IEEE Transactions on Biomedical Engineering, (Jul. 2003), 5(4):916-921.
Süselbeck et al. “Intravascular electric impedance spectroscopy of atherosclerotic lesions using a new impedance system”, Basic Res Cardiol (2005) 100:446-452.
Suselbeck T, et al., “In vivo intravascular electrical impedance spectroscopy using a new catheter with integrated microelectrodes,” Basic Res Cardiol 100:28-34 (2005).
Tepe et al., “Local Delivery of Paclitaxel to Inhibit Restenosis During Angioplasty of the Leg,” N Engl J Med, Feb. 14, 2008; 358(7): 689-699; retrieved from the Internet: <<http://content.nejm.org/cgi/reprint/358/7/689.pdf>>.
Van Den Berg, “Light Echoes Image the Human Body”, OLE, Oct. 2001, pp. 35-37.
Volcano Therapeutics, “Product—Functional Measurement”, [online] [retrieved on Sep. 3, 2003]. Retrieved from the Internet: <http://www.volcanotherapeutics.com/pages/products/functional_measurement-us.html> 2 pages total.
Examiner's Report of Canadian Patent Application No. 2,539,026, dated Feb. 6, 2012, 4 total pages.
Office Action issued in Chinese Patent Application No. 200480030163.9, dated Jan. 16, 2009, 8 pages total.
Office Action issued in Chinese Patent Application No. 200480030163.9, dated Mar. 28, 2008, 7 pages total.
Office Action issued in Chinese Patent Application No. 200480030163.9, dated Aug. 31, 2007, 8 pages total.
Office Action issued in Chinese Patent Application No. 200480030163.9, dated Jul. 31, 2009, 5 pages total.
Supplementary Partial European Search Report of Application No. 04816863.7, dated May 8, 2009, 7 pages total.
Office Action issued in European Application No. 04816863.7, dated Jun. 4, 2010, 5 pages total.
Office Action issued in European Application No. 04816863.7, dated Dec. 5, 2011, 4 total pages.
Office Action issued in European Application No. 04816863.7, dated Jan. 22, 2010, 6 total pages.
Formal Inquiry issued in Japanese Patent Application No. 2006-526351, dated Jan. 17, 2012, 5 pages total.
Notice of the Reason for Refusal issued in Japanese Patent Application No. 2006-526351, dated Apr. 27, 2010, 6 pages total.
Final Decision of Rejection issued in Japanese Patent Application No. 2006-526351, dated Jan. 18, 2011, 4 pages total.
European Search Report and Search Opinion of EP Patent Application No. 12151957.3, dated Apr. 16, 2012, 8 pages total.
Office Action issued in Chinese Patent Application No. 200680016424.0, dated Apr. 13, 2010, 10 pages total.
European Search Report and Search Opinion of EP Patent Application No. 06748830.4, dated Nov. 16, 2009, 12 pages total.
Partial European Search Report of EP Patent Application No. 11191822.3, dated Mar. 19, 2012, 7 pages total.
Office Action issued in Chinese Patent Application No. 20111031923.X, dated Nov. 17, 2011, 16 pages total.
Examiner's First Report of Australian Patent Application No. 2007310988, dated May 23, 2012, 4 pages total.
European Search Report and Search Opinion of EP Patent Application No. 07844421.3, dated Jan. 4, 2010, 15 pages total.
European Search Report and Search Opinion of EP Patent Application No. 12155447.1, dated May 10, 2012, 6 pages total.
International Search Report and Written Opinion of PCT Application No. PCT/US2009/064027, dated Jan. 19, 2010, 9 pages total.
European Search Report and Search Opinion of EP Patent Application No. 07844417.1, dated Nov. 5, 2009.
European Search Report and Search Opinion of EP Patent Application No. 12154120.5, dated May 8, 2012, 8 pages total.
European Search Report and Search Opinion of EP Patent Application No. 07844424.7, dated Nov. 11, 2009, 11 pages total.
Partial European Search Report of EP Patent Application No. 12154069.4, dated May 10, 2012, 5 pages total.
International Search Report and Written Opinion of PCT Application No. PCT/US2009/064465, dated Jan. 13, 2010, 13 pages total.
International Search Report of PCT Application No. PCT/US09/57728, dated Nov. 30, 2009, 10 pages total.
International Search Report and Written Opinion of PCT/US2010/034789, dated Jul. 9, 2010, 13 pages total.
International Search Report and Written Opinion of PCT/US2011/00661, dated Nov. 18, 2011, 14 pages total.
CardioVascular Technologies Inc., “Heated Balloon Device Technology,” 11 pages, 2008.
Strategic Business Development, Inc., “Thermal and Disruptive Angioplasty: A Physician's Guide,” 8 pages, 1990.
Zhang et al., “Non-contact Radio-Frequency Ablation for Obtaining Deeper Lesions,” IEEE Transaction on Biomedical Engineering, vol. 50, No. 2, 6 pages, Feb. 2003.
Lazebnik et al., “Tissue Strain Analytics Virtual Touch Tissue Imaging and Qualification,” Siemens Whitepaper, Oct. 2008, 7 pages.
Han et al., “Third-Generation Cryosurgery for Primary and Recurrent Prostate Caner,” BJU International, vol. 93, pp. 14-18.
Zhou et al., “Mechanism Research of Cryoanalgesia,” Forefront Publishing Group, 1995.
Florete, “Cryoblative Procedure for Back Pain,” Jacksonville Medicine, Oct. 1998, 10 pages.
Stevenson, “Irrigated RF Ablation: Power Titration and Fluid Management for Optimal Safety Efficacy,” 2005, 4 pages.
Giliatt et al., “The Cause of Nerve Damage in Acute Compression,” Trans Am Neurol Assoc, 1974: 99; 71-4.
Omura et al., “A Mild Acute Compression Induces Neurapraxia in Rat Sciatic Nerve,” The International Journal of Neuroscience, vol. 114 (12), pp. 1561-1572.
Baun, “Interaction with Soft Tissue,” Principles of General & Vascular Sonography, Chapter 2, pp. 23-24, Before Mar. 2012.
Blue Cross Blue Shield Medicaly Policy, “Surgery Section—MRI-Guided Focused Ultrasound (MRgFUS) for the Treatment of Uterine Fibroids and Other Tumors,” 2005, 5 pages.
Gentry et al., “Combines 3D Intracardiac Echo and Ultrasound Ablation,” Medical Imaging 2003: Ultrasonic and Signal Processing, vol. 5035, 2003, pp. 166-173.
Lafon et al., “Optmizing the Shape of Ultrasound Transducers for Interstitial Thermal Ablations,” MEd Phys. Mar. 2002; 29(3): 290-7 (abstract only).
G. Ter Haar, “Ultrasound Focal Beam Surgery,” Ultrasound in Med. & Biol., 1995, vol. 21, No. 9, pp. 1089-1100.
Seip et al., “Transurethral High Intensity Focused Ultrasound: Catheter Based Prototypes and Experimental Results,” IEEE Ultrasonics Symposium Proceeding, 2000, 4 pages.
Toytman et al., “Tissue Dissection with Ultrafast Laser Using Extended and Multiple Foci,” SPIE Proceeding, Optical Interactions with Tissues and Cells XXI, vol. 7562, 2010, 10 pages.
Zhoue et al., “Non-Thermal Ablation of Rabbit Liver VX2 Tumore by Pulsed High Intensity Focused Ultrasound Contrast Agent: Pathological Characteristics,” World Journal of Gastroenterology, vol. 14(43), Nov. 21, 2008, pp. 6743-6747.
Van Den Berg, “Light echoes image the human body,” OLE, Oct. 2001, p. 35-37.
“IntraLuminal: Products,” IntraLuminal Therapeutics, Inc., 2003, p. 1-9.
“Laser Catheter to Aid Coronary Surgery,” TechTalk: MIT, Jan. 9, 1991, p. 1-4.
“Optical Coherence Tomography: Advantages of OCT,” LightLab Imaging Technology.
“Optical Coherence Tomography: Image Gallery Cardiovascular Procedures,” LightLab Imaging Technology.
“Optical Coherence Tomography: LightLab Imaging Starts US Cardiology Clinical Investigations,” LightLab Imaging Technology, 2002.
“Optical Coherence Tomography: LightLab Sees Bright Prospects for Cardiac Application of OCT Technology,” LightLab Imaging Technology, 2001, vol. 27, No. 35.
“Optical Coherence Tomography: What is OCT?,” LightLab Imaging Technology.
“Optical Coherence Tomography: Why Use OCT?,” LightLab Imaging Technology.
“Products—Functional Measurement,” VOLCANO Functional Measurement Products US, Mar. 24, 2003, p. 1-2.
Brown et al., “Radiofrequency capacitive heaters: the effect of coupling medium resistivity on power absorption along a mouse leg,” Physics in Medicine and Biology, 1993, p. 1-12, vol. 38.
Carrington, “Future of CVI: It's all about plaque: Identification of vulnerable lesions, not ‘rusty pipes,’ could become cornerstone of preventive cardiology,” Diagnostic Imaging, 2001, p. 1-8.
Chen et al., “Percutaneous pulmonary artery denervation completely abolishes experimental pulmonary arterial hypertension in vivo,” EuroIntervention, 2013, p. 1-8.
Cimino, “Preventing plaque attack,” Mass High Tech, 2001, p. 1-2.
Dahm et al., “Relation of Degree of Laser Debulking of In-Stent Restenosis as a Predictor of Restenosis Rate,” The American Journal of Cardiology, 2002, p. 68-70, vol. 90.
De Korte et al., “Characterization of Plaque Components With Intravascular Ultrasound Elastography in Human Femoral and Coronary Arteries In Vitro,” Circulation, Aug. 8, 2000, p. 617-623.
Durney et al., “Radiofrequency Radiation Dosimetry Handbook,” Oct. 1986, p. 1-2, Fourth Edition.
Durney et al., “Radiofrequency Radiation Dosimetry Handbook: Contents,” Oct. 1986, p. 1-5, Fourth Edition.
Fournier-Desseux et al., “Assessment of 1-lead and 2-lead electrode patterns in electrical impedance endotomography,” Physiological Measurement, 2005, p. 337-349. Vo. 26, Institute of Physics Publishing.
Fram et al., “Feasibility of Radiofrequency Powered, Thermal Balloon Ablation of Atrioventricular Bypass Tracts Via the Coronary Sinus: In Vivo Canine Studies,” PACE, Aug. 1995, p. 1518-1530, vol. 18.
Fram et al., “Low Pressure Radiofrequency Balloon Angioplasty: Evaluation in Porcine Peripheral Arteries,” JACC, 1993, p. 1512-1521, vol. 21, No. 6, American College of Cardiology.
Fujimori et al., “Significant Prevention of In-Stent Restenosis by Evans Blue in Patients with Acute Myocardial Infarction,” American Heart Association, 2002.
Fujita et al., “Sarpogrelate, an Antagonist of 5-HT(2A) Receptor, Treatment Reduces Restenosis After Coronary Stenting,” American Heart Association, 2002.
Gabriel, “Appendix A: Experimental Data,” 1999, p. 1-21.
Gabriel, “Appendix C: Modeling the frequency dependence of the dielectric properties to a 4 dispersions spectrum,” p. 1-6.
Gregory et al., “Liquid Core Light Guide for Laser Angioplasty,” The Journal of Quantum Electronics, Dec. 1990, p. 2289-2296, vol. 26, No. 12.
Kaplan et al., “Healing after Arterial Dilatation with Radiofrequency Thermal and Nonthermal Balloon Angioplasty Sytems,” Journal of Investigative Surgery, 1993, p. 33-52, vol. 6.
Kolata, “New Studies Question Value of Opening Arteries,” The New York Times, Mar. 21, 2004, p. 1-5.
Konings et al., “Development of an Intravascular Impedance Catheter for Detection of Fatty Lesions in Arteries,” IEEE Transactions on Medical Imaging, Aug. 1997, p. 439-446, vol. 16, No. 4.
Kurtz et al., “Lamellar Refractive Surgery with Scanned Intrastromal Picosecond and Femtosecond Laser Pulses in Animal Eyes,” Journal of Refractive Surgery, Sep./Oct. 1998, p. 541-548.
Lee et al., “Thermal Compression and Molding of Atherosclerotic Vascular Tissue With Use of Radiofrequency Energy: Implications for Radiofrequency Balloon Angioplasty,” JACC, 1989, p. 1167-1175, vol. 13, No. 5, American College of Cardiology.
Lima et al., “Efficacy and Safety of Oral Sirolimus to Treat and Prevent In-Stent Restenosis: A Pilot Study Results,” American Heart Association, 2002, p. 2929.
Lima et al., “Systemic Immunosuppression Inhibits In-Stent Coronary Intimal Proliferation in Renal Transplant Patients,” American Heart Association, 2002, p. 2928.
Morice et al., “A Randomized Comparison of a Sirolimus-Eluting Stent With a Standard Stent for Coronary Revascularization,” The New England Journal of Medicine, Jun. 6, 2012, p. 1773-1780, vol. 346, No. 23.
Muller-Leisse et al., “Effectiveness and Safety of Ultrasonic Atherosclerotic Plaque Ablation: In Vitro Investigation,” CardioVascular and Interventional Radiology, 1993, p. 303-307, vol. 16.
Nair et al., “Regularized Autoregressive Analysis of Intravascular Ultrasound Backscatter: Improvement in Spatial Accuracy of Tissue Maps,” IEEE Transactions on Ultrasonics, Apr. 2004, p. 420-431, vol. 51, No. 4.
Popma et al., “Percutaneous Coronary and Valvular Intervention,” p. 1364-1405.
Resar et al., “Endoluminal Sealing of Vascular Wall Disruptions With Radiofrequency-Heated Balloon Angioplasty,” Catheterization and Cardiovascular Diagnosis, 1993, p. 161-167, vol. 29.
Romer et al., “Histopathology of Human Coronary Atherosclerosis by Quantifying Its Chemical Composition With Raman Spectroscopy,” Circulation, 1998, p. 878-885, vol. 97.
Schauerte et al., “Catheter Ablation of Cardiac Autonomic Nerves for Prevention of Vagal Atrial Fibrillation,” Circulation, 2000, p. 2774-2780, vol. 102.
Scheller et al., “Intracoronary Paclitaxel Added to Contrast Media Inhibits In-Stent Restenosis of Porcine Coronary Arteries,” American Heart Association, 2002, p. 2227.
Scheller et al., “Potential solutions to the current problem: coated balloon,” EuroIntervention, 2008, p. C63-C66, vol. 4 (Supplement C).
Shaffer, “Scientific basis of laser energy,” Clinics in Sports Medicine, 2002, p. 585-598, vol. 21.
Shmatukha et al., “MRI temperature mapping during thermal balloon angioplasty,” Physics in Medicine and Biology, 2006, p. N163-N171, vol. 51.
Slager et al., “Vaporization of Atherosclerotic Plaques by Spark Erosion,” J Am Coll Cardiol, 1985, p. 21-25.
Stiles et al., “Simulated Characterization of Atherosclerotic Lesions in the Coronary Arteries by Measurement of Bioimpedance,” IEEE Transactions on Biomedical Engineering, Jul. 2003, p. 916-921, vol. 50, No. 7.
Suselbeck et al., “In vivo intravascular electric impedance spectroscopy using a new catheter with integrated microelectrodes,” Basic Res Cardiol, 2005, p. 28-34, vol. 100.
Suselbeck et al., “Intravascular electric impedance spectroscopy of atherosclerotic lesions using a new impedance catheter system,” Basic Res Cardiol, 2005, p. 446-452, vol. 100.
Tepe et al., “Local Delivery of Paclitaxel to Inhibit Restenosis during Angioplasty of the Leg,” The New England Journal of Medicine, 2008, p. 689-699, vol. 358.
Related Publications (1)
Number Date Country
20120158101 A1 Jun 2012 US
Provisional Applications (3)
Number Date Country
60976733 Oct 2007 US
60921973 Apr 2007 US
60852787 Oct 2006 US
Continuations (1)
Number Date Country
Parent 11975383 Oct 2007 US
Child 13385555 US