Electrosurgical tissue dissecting device

Information

  • Patent Grant
  • 10004555
  • Patent Number
    10,004,555
  • Date Filed
    Friday, April 8, 2016
    8 years ago
  • Date Issued
    Tuesday, June 26, 2018
    6 years ago
  • Inventors
  • Original Assignees
  • Examiners
    • Dietrich; Joseph
    Agents
    • RatnerPrestia
Abstract
Electrosurgical devices, methods, and systems for electrosurgical procedures as enabled by bipolar radiofrequency energy. An electrosurgical tissue dissecting device includes a shaft, a distally directed member that extends in a distal direction from the shaft, a first electrode that either forms part of or is positioned on the distally directed member, and a second electrode that is movable with respect to the first electrode.
Description
FIELD

The disclosed technology relates to systems and methods for electrosurgery. More particularly, the technology relates to devices, methods, and systems of electrosurgical tissue dissection and tissue sealing.


BACKGROUND

The technology provided in this disclosure relates to electrosurgical devices, methods, and systems for electrosurgical procedures as enabled by bipolar radiofrequency energy.


SUMMARY

The technology provided in this disclosure relates to electrosurgical devices, methods, and systems for electrosurgical procedures as enabled by bipolar radiofrequency energy. Some technology embodiments are dedicated to electrosurgical dissection, other embodiments include a combination of electrosurgical dissection and tissue sealing capabilities. A dual modality device advantageously allows a minimization of device laparoscopic entry-exit events during a surgical procedure that involves (or may involve) both electrosurgical dissection and sealing.





BRIEF DESCRIPTION OF THE DRAWING FIGURES


FIG. 1 depicts a tissue dissector including a concentric bipolar electrode pair, according to one exemplary embodiment of the invention.



FIG. 2 depicts a tissue dissector including two side-by-side bipolar electrodes, according to another exemplary embodiment of the invention.



FIG. 3 depicts a tissue dissector including two forked tines and an internal blade, all in a fixed position, according to yet another exemplary embodiment of the invention.



FIG. 4 depicts a tissue dissector including two forked tines, at least one of which is pivotable, and an internal blade, according to yet another exemplary embodiment of the invention.



FIG. 5 depicts a tissue dissector including two jaws, at least one of which is pivotable, and an internal blade that pivots upward from the second jaw (but which cannot flip to an external position), according to another exemplary embodiment of the invention.



FIG. 6A depicts a tissue dissector including a blade having a proximal pivot point, as shown in a closed position, according to another exemplary embodiment of the invention.



FIG. 6B depicts the tissue dissector of FIG. 6A with the blade shown in an open position.



FIG. 7A depicts a tissue dissector including a blade having a distal pivot point, as shown in a closed position, according to another exemplary embodiment of the invention.



FIG. 7B depicts the tissue dissector of FIG. 7A with the blade shown in an open position.



FIG. 8A depicts a tissue dissector including a blade having a foldable projecting mechanism, as shown in a closed position, according to yet another exemplary embodiment of the invention.



FIG. 8B depicts the tissue dissector of FIG. 8A with the blade shown in an open position.



FIG. 9A depicts a tissue dissector including a blade having a flexible projecting mechanism, as shown in a home position, according to yet another exemplary embodiment of the invention.



FIG. 9B depicts the tissue dissector of FIG. 9A with the blade shown in a projected position.



FIG. 10A depicts a tissue dissector and sealer including a pivotable blade shown in a neutral position, according to yet another exemplary embodiment of the invention.



FIG. 10B depicts the tissue dissector and sealer of FIG. 10A with the blade shown between the jaws.



FIG. 10C depicts the tissue dissector and sealer of FIG. 10A with the blade shown external to the jaws.





DETAILED DESCRIPTION

Examples of embodiments of the technology are provided hereinafter. Particular technology features are described in the context of these various embodiments. Technology features that may be described or depicted in any one particular embodiment may also be applied to any other embodiment.



FIGS. 1 and 2 depict a first group of embodiments of the technology including a tissue dissector which takes the form of a point-focused dissector. The device of FIG. 1 includes an electrode assembly 10 that includes a distally directed pair of bipolar electrodes including a first electrode 12 and a second electrode 14, the electrodes disposed in a concentric configuration; and an isolating layer 16 disposed between the first and second electrodes.


In the alternative configuration shown in FIG. 2, the electrodes 18 and 20 are disposed in a side-by-side configuration with an isolating layer 22 separating the electrodes from each other. This first group of devices shown in FIGS. 1 and 2 is typically used for kinetically dissecting along a desired line of dissection, or for point-focused dissection.


A second group of embodiments of the technology shown in FIGS. 3-5, takes the form of a device with a tissue-receiving window for distally advancing kinetic dissection. In this application, “kinetic dissection” generally refers to a dissection that is driven by manual movement of the electrode assembly, or the device as a whole, by an operator such as a surgeon. Embodiments may vary with regard to whether the tines are fixed or pivotable, as will be described hereinafter.


More particularly, FIG. 3 depicts an electrode assembly 24 that includes a shaft 23, a pair of directed tines 26 that are distal to the shaft 23. The tines 26 are in a substantially parallel forked configuration, the forked configuration comprising a gap 27 between the tines 26. The tines 26 and the gap 27 collectively comprise a distal-facing tissue receiving window 28.


The electrode assembly 24 includes a pair of bipolar electrodes, including a first electrode and a second electrode. More particularly, the first and second tines 26 act collectively as a first bipolar electrode 26′. The second electrode 30 is in the form of an electrosurgical blade 30′ and is disposed orthogonally across a proximal aspect of the gap 27 between the tines 26. An isolator layer 32 electrically separates the first and second electrodes 26′ and 30.


Tissue that comes into contact with either or both of the tines 26 and the electrosurgical blade 30′ at the same time is subject to dissection by electrosurgical energy delivered by the device. The tines 26 are fixed such that they are not pivotable with respect to each other, however, the tines 26 are pivotable with respect to the shaft 23 about a pivot point 25. Alternatively, the tines 26 may be fixed to the shaft 23 such that the tines 26 can not pivot with respect to the shaft 23.



FIGS. 4 and 5 depict dedicated tissue dissector devices 37 and 39, respectively, that are each configured as an electrode assembly including a set of opposable jaws 34a and 34b (referred to collectively as jaws 34) that can move between an open and a closed position. Accordingly, an electrode assembly of this type of device includes a set of opposing jaws 34. The jaws 34 are moveable from a closed position to an open position (see FIG. 4, for example). When the jaws 34 are in an open position, the electrodes 36 and 38 form a distal-facing tissue trap that is configured and arranged to dissect a tissue sheet kinetically, as when the electrode assembly is distally advanced by an operator. In another aspect, the opposing jaws 34 may also be configured to be able to dissect from a fixed position, as when the jaws 34 close around a tissue site.


In FIG. 4 the opposable jaws 34 are configured such that jaw 34b is fixed with respect to the shaft 35 to which it is attached, and the other jaw 34a is pivotable with respect to the shaft 35. In FIG. 5, both jaws 34 are pivotable with respect to the shaft 35.


Bipolar electrodes 36 and 38 are arranged in FIGS. 4 and 5 of the electrode assembly in a manner similar to that as described for FIG. 3. Tissue that comes into contact with either or both of the jaws 34 and the electrosurgical blade 38′ at the same time is subject to dissection by electrosurgical energy delivered by the device 37 and 39.


In the second group of embodiments of the technology shown in FIGS. 3-5, at least one of the jaws (or tines) or the electrosurgical blade may comprise a plurality of electrodes 36 and 38, the electrode assembly thereby comprising a plurality of bipolar electrode pairs 36 and 38. The devices further include an isolator 32 or electrically insulative layer that electrically isolates the first and second electrodes 36 and 38 from each other.


In various embodiments of the opposable jaws of FIGS. 4 and 5, the jaws 34a and 34b are capable of being open at an angle of up to about 90 degrees. The jaws 34a and 34b may be further configured to lock or stabilize in an open position at a desired angle.



FIG. 5 depicts an electrosurgical blade element 38′ that is movable between at least two different positions. The movable blade 38′ is pivotably attached to the lower jaw 34b in this exemplary embodiment by a pin (not shown) located at the lower, proximal end of the blade 38′. In a first position (not shown), the blade 38′ is pivoted distally and downwardly until it is retracted within a slot 41 located in the lower jaw 34b. In the second position shown in FIG. 5, the blade 38′ is pivoted upwardly and proximally such that it spans between the upper and lower jaws 34, with the distal tip 43 of the blade 38′ received within a slot 45 of the upper jaw 34bIn all positions, the blade 38′ is electrically isolated from both the upper and lower jaws 34 in this embodiment. Although not shown, a suitable mechanism and/or electronic, pneumatic or hydraulic circuit may be employed to operationally connect the blade 38′ to a blade actuator (not shown) located near the proximal end (i.e., toward shaft 35) of the device 39 or external to the device 39.


When the electrosurgical blade 38′ of FIG. 5 is in the deployed second position as described above, RF energy may be passed between the blade 38′ and the first electrode 36, which, in this example, is both the upper and lower jaws 34. The RF energy delivered through the blade 38′ to the tissue is sufficient to electrosurgically cut the tissue as the blade 38′ moves through the tissue. The edges of the blade 38′ including the leading distal edge 47 may be configured as blunt edges such that all cutting is performed electrosurgically. Alternatively, the leading distal edge 47 of the blade 38′ may be sharpened so that cutting may occur manually simply by forward movement of the instrument, with or without additional electrosurgical cutting. Depending on the application, the cutting or dissection, performed with or without the use of RF energy, may involve pure cutting with no concurrent hemostasis, may involve some coagulation, or may involve coagulation with complete hemostasis.


The device 39 shown in FIG. 5 resembles embodiments of a fourth group, as described further below with reference to FIGS. 10A-10C. For example, the immediately preceding description regarding the deployment of an electrosurgical blade 38′ in the context of FIG. 5 also substantially applies to FIGS. 10A-10C. However, the device 39 shown in FIG. 5, in contrast to the device 60 shown in FIGS. 10A-10C, is a dedicated dissecting instrument, without tissue sealing capability. Further, while the electrosurgical blade 38′ of FIG. 5 is configured to be able to move into the gap 27 between the jaws 34; the electrosurgical blade 38′ is not free to pivot to a position external to the jaws 34.


Additionally, the construction of the electrode assembly of FIG. 5, which comprises electrodes 36 and 38, can be relatively light in comparison to the device 60 of FIGS. 10A-10C. More particularly, the device 39 of FIG. 5 is not required to effect compression forces associated with tissue sealing. Finally, it should be understood that the electrosurgical blade 38′ of FIG. 5 may be able to rotate externally outward beyond the jaws 34, thereby forming a device configuration that is particularly similar to that of the device 60 of FIGS. 10A-10C.


A third group of embodiments of the technology shown in FIGS. 6A-9B, takes the form of a dedicated dissector device 51a-51d (referred to collectively as device 51) that includes a handle or shaft 49, a distally directed member 57 and an electrosurgical blade 55a-55d (referred to collectively as blade 55) that is moveably coupled with respect to the shaft 49 and the distally directed member 57. The distally directed member 57 is the first electrode 57′ of the device 51, and the electrosurgical blade 55 is the second electrode 55′ of the device 51. Some of these embodiments may be operated with a manually driven movement of the device 51, and consequently, movement of the electrode assembly along a targeted line of dissection. This type of movement driven dissection is referred to as kinetic dissection.


The third group of embodiments shown in FIGS. 6A-9B are dedicated dissecting devices, with electrosurgical blades that are pivotable or otherwise movable such that at least a portion of the blade 55 is exposed into a position that can engage tissue for dissection. The projecting blade 55 of this and other embodiments of the present disclosure provides the ability to cut through layers of tissue to gain access to target tissue. For example, the projecting blade allows cutting through adhesions to gain access to an organ, or cutting around a tissue mass, which may be difficult or impossible using a cutting blade located between two jaw members. In some embodiments, the distance that the blade 55 projects from the device is adjustable. This allows for controlled depth cutting of tissue and/or vessel sealing.


One embodiment of this third embodiment shown in FIGS. 6A-9B has an electrode assembly that includes a distally directed member 57 comprising a first electrode 57′ of a bipolar electrode pair, and an electrosurgical blade 55 comprising a second electrode 55a′-55d′ (referred to collectively as second electrode 55′) of the bipolar electrode pair.


Embodiments of the blade 55 are configured to be moveable from a home position (see FIGS. 6A, 7A, 8A and 9A), wherein the blade 55 is longitudinally aligned with the distally directed member 57, to any of a range of outwardly projected positions (see FIGS. 6B, 7B, 8B and 9B), wherein the blade 55 projects beyond the longitudinal profile of the distally directed member 57. An isolator 59 or electrically insulative layer typically isolates the first and second electrodes 57′ and 55′ from each other from electrical contact.


In some of the devices of the third embodiment shown in FIGS. 6A-9B, at least one of the distally directed member 57 and the electrosurgical blade 55 comprises a plurality of electrodes 57′ and 55′, the electrode assembly thereby comprising a plurality of bipolar electrode pairs.


The electrode assemblies of FIGS. 6A-9B are configured to effect a controlled-depth tissue cut when the electrode housing assembly is moved across a target tissue surface by an operator. Such operator-driven movement may include any of distally directed translational movement, proximally directed translational movement, or lateral movement. Movements of this type across or through tissue, to a certain depth, may be useful in various surgical maneuvers. For example, this type of dissection may be directed to an exposing function, to access to an underlying site of interest. Or, it may be directed to an exfoliating function, where a portion of a layer of tissue is being removed.


In some of the devices 51 of FIGS. 6A-9B, the electrosurgical blade 55 may be pivotably connected to the distally directed member 57, such pivotable connection allowing the blade 55 to attain a position wherein at least a portion of the blade 55 projects beyond the longitudinal profile of the distally directed member 57. In various embodiments of FIGS. 6A-9B, the site of a pivotable connection of the blade 55 to the distally directed member 57 may be disposed at any appropriate position along the blade 55 between its proximal end 61 and distal end 63. In various embodiments of FIGS. 6A-9B, the electrosurgical blade 55 is pivotably connected to the distally directed member 57 such that it has a pivotable arc range of up to 90 degrees from the site of its connection.


A variety of other mechanisms may allow the electrosurgical blade 55 to be projected beyond the longitudinal profile of the distally directed member 57. For example, in some embodiments of FIGS. 6A-9B the electrosurgical blade 55 may be projectable beyond the longitudinal profile of the distally directed member 57 by a foldable mechanism.


With regard to being configured to be able to cut to a controlled depth, when the electrosurgical blade 55 is positioned in an outwardly projected position (see FIGS. 6B, 7B, 8B and 9B), a distance ‘d’ between a point that projects most further from the longitudinal profile of the distally directed member 57 defines a cutting zone depth. In some embodiments, the electrosurgical blade 55 is lockable or stabilizable at any position within an arc of its pivotable range.


In the device of FIGS. 6A and 6B, the blade 55a is pivotably connected to the isolator 59 at a proximal location on the isolator 59 (i.e., at a location toward the shaft 49 and away from the free end of the distally directed member 57). The isolator 59 is defined on an elongated recess that is formed on a surface of the distally directed member 57.


In the device of FIGS. 7A and 7B, the blade 55b is pivotably connected to the isolator 59 at a distal location on the isolator 59 (i.e., at a location away from the shaft 49 and toward the free end of the distally directed member 57).


In the device of FIGS. 8A and 8B, the blade 55c comprises a linkage having two links that are pivotably connected together by a pin. One link of the linkage is pivotably connected to the isolator 59 at a proximal location on the isolator 59, and the other link of the linkage is slidably connected to an elongated slot 53 that is defined in the isolator 59. The links of the linkage are configured to pivot with respect to one another, as depicted in FIG. 8B.


In the device of FIGS. 9A and 9B, the electrosurgical blade 55 comprises a flexible portion 55d that is constrained in the home position (see FIG. 9A). The flexible portion 55d is slidably positioned in an elongated slot 53a that is defined in the isolator 59. The flexible portion 55d is biased such that it causes the flexible portion 55d to project outward beyond the longitudinal profile of the distally directed member 57 (projected positioned shown in FIG. 9B) when the flexible portion 55d is released from the constraint in the home position (home position shown in FIG. 9A). The flexible portion 55d may be biased outward by a spring (not shown), for example.


A fourth embodiment of the technology shown in FIGS. 10A-10C takes the form of a combination device 60 that includes a tissue sealer and a dissector. The dissector has two operable dissecting arrangements based on the position of the jaws 62a and 62b (referred to collectively as jaws 62) and the blade 64. An isolating layer 63 is defined on both jaws 62.


The device 60 includes at least three electrodes, i.e., two electrosurgical jaws 62a and 62b and an electrosurgical blade 66, which collectively are configured to be able to operate in tissue sealing and tissue dissecting modalities. Accordingly, the device 60 includes at least three electrodes (i.e., a first electrode 62a′, a second electrode 62b′, and a third electrode 64′), a pair of opposing jaws 62 (i.e., a first jaw 62a and a second jaw 62b), and a pivotable electrosurgical blade 64.


The first opposable jaw 62a comprises the first electrode 62a′, the second opposable 62b jaw comprises the second electrode 62b′, and the pivotable electrosurgical blade 64 comprises the third electrode 64′. The electrosurgical blade 64 is pivotably-attached to the second jaw 62b at a first end 66 and unattached at the second end 68. The first and second electrodes 62a′ and 62b′ are operable together as a bipolar electrode pair, and the first and second electrodes 62a′ and 62b′ are collectively operable as a single electrode that operates together with the third electrode 64′ as a bipolar electrode pair.


The device 60 may be configured for tissue sealing by grasping a portion of tissue between the two opposable jaws 62. In a procedure or portion of a procedure that includes a tissue sealing event, the first and second jaws 62 are the operative as paired bipolar electrodes. Aspects of the mechanics and electrical dynamics of tissue sealing are described in other related patent applications: application Ser. No. 12/121,734 filed May 15, 2008; application Ser. No. 09/169,019 filed Oct. 8, 1998 now U.S. Pat. No. 6,123,701 issued Sep. 26, 2000; application Ser. No. 13/021,633 filed Feb. 4, 2011; application Ser. No. 13/096,912 filed Apr. 28, 2011; application Ser. No. 13/070,391 filed Mar. 23, 2011; application Ser. No. 13/110,848 filed May 18, 2011; application Ser. No. 13/021,633 filed Feb. 4, 2011; application Ser. No. 12/907,646 filed Oct. 19, 2010, each of which are incorporated by reference herein in their entirety.


The electrosurgical device 60 of FIGS. 10A-10C is configured to dissect tissue in two ways, depending on the operating arrangement of the electrode assembly, i.e., depending on whether the opposing jaws 62 are in an open position or a closed position, and depending on the position of electrosurgical blade 64 relative to the jaws 62. A first operable arrangement and a second operable arrangement of the electrode assembly are summarized below.


In the first operational arrangement of the device 60, the electrode assembly is arranged to kinetically dissect tissue with the jaws open, and the electrosurgical blade 64 is positioned between the jaws 62. The term ‘kinetic dissection’ refers to dissection that is driven by manual movement of the electrode assembly, or the device 60 as a whole, by the operator. Thus, the operational arrangement includes positioning the first and second jaws 62 in an open position (see FIG. 10A) to form a distal-facing gap, and pivoting the electrosurgical blade 64 such that it is disposed across the gap 27, as shown in FIG. 10B, the unattached end 68 of the blade 64 being stabilized by engaging the first jaw 62a.


In some embodiments being configured for tissue dissecting comprises being configured for a kinetic or distally-advancing cutting with a bilaterally supported blade. Distally-advancing cutting relates to operator controlled movement of the electrode assembly. A bilaterally-supported blade includes stable support at the end of the blade that is pivotably attached to the second jaw 62b, and stabilization or retention of the free end of the blade within the gap formed between the open jaws. When the jaws of the electrode assembly are in an open position, the height ‘h’ (see FIG. 10B) of the gap formed at the distal end of the jaws 62 comprises a tissue window; this height ‘h’ represents a limit to the thickness of a tissue portion that may be dissected by the device.


In the second operating arrangement of the device 60, the electrode assembly is arranged to kinetically dissect tissue with the jaws 62 closed or substantially closed, as shown in FIG. 10C, but with the electrosurgical blade 64 projected at an angle external to the second jaw 62b to which it is attached, and opposite the first jaw 62a. In some embodiments, being configured for tissue dissecting comprises locking or stabilizing the blade 64 at an acute angle ‘a’ with respect to the second jaw 62b, thereby enabling the trapping of tissue when the device 60 is being advanced in the direction of the acute angle ‘a.’ In another operable arrangement, being configured for tissue dissecting comprises locking the blade 64 at a substantially right angle with respect to the second jaw 62b, thereby enabling a tissue cutting profile of the blade's maximal depth.


In some embodiments, being configured for operator-driven movement of the electrode assembly comprises being configured to dissect tissue in accordance with any of distally directed translational movement, proximally directed translational movement, or lateral movement.


In some embodiments, being configured for tissue dissecting comprises being configured for cutting with a unilaterally supported blade. And, in some embodiments, tissue dissecting comprises operator driven movement cutting that cuts a portion of tissue that is limited by a length of the blade.


According to another aspect of the invention, the device 60, which combines tissue dissection and tissue sealing capability, includes an electrode assembly that includes: a pair of opposable jaws 62, a first jaw 62a and a second jaw 62b, wherein the first and second jaws 62 are rotationally joined at their respective proximal ends 70 such that the jaws 62 may pivot between an open position and a closed position, the open position creating a gap 27 between the two jaws 62; and a pivotable electrosurgical blade 64 rotationally joined to the second jaw 62b, the blade 64 pivotably configured to be stabilized in a first, second, and third position.


In a first position, the blade 64 (see FIG. 10A) is stowed within a profile of the second jaw 62a, the blade 64 being pivotable in either direction from the stowed position within an arc disposed between a second position (see FIG. 10B) that places a distal end 68 of the blade across the gap 27 between jaws 62 when they are in an open position such that the blade 64 is bilaterally supported, and a third position (see FIG. 10C) that places the distal end 68 of the blade 64 external to the second jaw 62a. In this embodiment of the device 60, the first and second electrode 62a′ and 62b′ are operable together as a bipolar electrode pair, and the first and second electrode 62a′ and 62b′ are collectively operable as a single electrode that operates together with the third electrode 64′ as a bipolar electrode pair.


Several operational arrangements of the electrode assembly of the device 60 can be made, each being associated with a particular electrosurgical modality, as will be described hereinafter.


(1) When the jaws 62 are in an open position and when the electrosurgical blade 64 is in the parked position, the gap 27 between the first and second jaws 62 allows positioning of the first and second electrodes 62a′ and 62b′ such that they are configured to perform sealing of tissue portions that may be captured within the jaws 62.


(2) When the jaws 62 are in an open position and when the electrosurgical blade 64 is in the second position, the first and third electrode 62a′ and 64′ are positioned to perform distally advancing tissue dissection by the blade 64 as it is supported bilaterally.


(3) When the jaws 62 are in a closed position, and when the blade is pivotably positioned external to the second jaw 62b, the second and third electrodes 62b′ and 64′ are positioned to perform operator-movement driven tissue dissection by blade as it is unilaterally supported.


The device 60 further comprises an isolator layer 63 separating first and second electrodes 62a′ and 62b′ when the blade 64 is in the second position of FIG. 10B, and an isolator layer 63 separating the second and third electrodes 62b′ and 64′. The device 60 may further comprise a mechanical blade disposed proximal to the electrode assembly and configured to be distally advanceable through tissue after the first and second electrodes 62a′ and 62b′ have effected a sealing of the tissue. Finally, in some embodiments of the device 60, being configured for tissue sealing comprises being configured to grasp a portion of tissue between the two opposable jaws 62.


According to one exemplary method of using the device of FIGS. 3-5, the method comprises engaging a portion of a tissue sheet within the distal facing tissue trap; and delivering sufficient RF energy from the tissue dissection trap to the engaged portion of tissue such that the portion of tissue is dissected. Some embodiments of this method may further include manually advancing the electrode assembly in the direction of a targeted dissection line; and delivering RF energy while advancing. In methods that include the operation of devices equipped with an electrode assembly such as that of FIGS. 3-5, the method may further comprise adjusting the angle of the jaws, and it may further include stabilizing the angle of the jaws.


Although the jaws 36 of FIG. 4 may not be as heavy or robust as those of FIGS. 10A-10C in terms of being able to deliver compressive forces associated with tissue sealing, in some embodiments, the jaws 36 are configured to grasp tissue with sufficient force that the tissue is stabilized within the jaws 36. Accordingly, these embodiments are capable of a stabilized dissection as well as kinetic dissection.


Embodiments of the provided technology include methods of using devices of FIGS. 6A-9B, as summarized above. The method comprises providing a bipolar electrode assembly per device; positioning the electrosurgical blade such that it projects beyond the longitudinal profile of the distally directed member; advancing the bipolar electrode assembly into a tissue sheet so as to engage a portion of the tissue sheet, the first and second jaws of the electrode assembly in an open position, forming a distally-directed tissue dissection trap; and delivering sufficient RF energy from the tissue dissection trap to the engaged portion of tissue such that the portion of tissue is dissected.


In some embodiments of this electrosurgical dissection method, the advancing of the electrode assembly and delivering energy steps are performed simultaneously or in at least partially overlapping fashion. And in some embodiments, the tissue dissection trap remains in an open position continuously or substantially continuously while engaging the portion of the tissue sheet.


In a method of electrosurgical dissection that involves the use of the devices of FIGS. 6A-9B, the method comprises moving a bipolar electrode assembly across a target tissue such that the electrosurgical blade, when projecting outward, dissects a portion of tissue to a controlled depth, such movement comprising movement in any of three directions, a distal direction, a proximal direction, or a lateral direction.


With regard to a method of electrosurgery involving the use of the devices of FIGS. 10A-10C, the method comprises passing a bipolar electrode assembly into an operating space; performing at least two electrosurgical procedures with the bipolar electrode assembly in the operating space prior to removing it from the operating space, a first procedure comprising tissue dissecting and a second procedure comprising tissue sealing, wherein the two procedures may be performed in any order; and upon completing the electrosurgical procedures, removing the bipolar electrode assembly from the operating space. The operating space for embodiments of these dual purpose devices may be within a laparoscopic environment or in an open environment. In the case of a laparoscopic space, the use of a device able to perform both tissue sealing and tissue dissecting is particularly advantageous in that it allows both procedures to be done within the temporal context between a single entry and exit of the device through a trocar.


In some embodiments of this method, making use of the devices of FIGS. 10A-10C, electrosurgical dissecting comprises moving an electrosurgical assembly along a line of dissection and delivering energy simultaneously. In typical embodiments of the method, performing two electrosurgical procedures comprises delivering RF energy in association with each procedure. In some of the embodiments of the electrosurgical method, tissue dissecting comprises dissecting a plurality of tissue dissecting sites. In some of the embodiments of the electrosurgical method, tissue sealing comprises sealing a plurality of tissue sealing sites.


With regard to electrosurgical tissue sealing with the device 60 of FIGS. 10A-10C, the embodiments of method may comprise compressing a target tissue sealing site and delivering RF energy to the sealing site. In this operational arrangement, the blade is disposed in a home position or a neutral position, such that it does not project beyond the profile of the jaws.


With regard to electrosurgical tissue dissecting device according to the device 60 of FIGS. 10A-10C, embodiments of the method may comprise distally advancing a bilaterally supported blade, the blade pivotably positioned across a gap between the open jaws.


Further with regard to electrosurgical dissecting, embodiments of the method may comprise cutting through a portion of a tissue sheet along a line of dissection. With regard to these embodiments, wherein along the line of dissection, the tissue sheet has a thickness no greater than a height of a cutting window of the bipolar electrode assembly, such cutting window being limited at least by the height of a gap between the distal tips of the opposing jaws when the jaws are in an open position.


With regard to electrosurgical dissecting, embodiments of the method may comprise dissecting with the electrosurgical blade when it is positioned external to the second jaw, projecting at an angle. In such an arrangement, the blade is unilaterally supported at the point of its pivotable attachment to the second jaw.


Embodiments of this method electrosurgical dissecting may include moving an electrosurgical cutting blade through a surface aspect of a tissue portion in any of three directions, a distal direction, a proximal direction, or a lateral direction. Embodiments may further include cutting a line of dissection into a portion of a tissue to a controlled depth.


Embodiments of the provided technology include devices and systems that incorporate embodiments of the electrode assemblies as summarized above. Devices thus may include any of the described electrode assemblies; a shaft supporting the electrode assembly; and a hand piece supporting the shaft. Embodiments may further include a rotational mechanism configured to rotate the shaft and the electrode assembly with respect to the hand piece, and/or they may include an articulating assembly disposed between the electrode assembly and the shaft. The scope of each embodiment described or depicted should be understood to include technology features described or depicted in the context of any other particular embodiment.


Some device and electrode assembly embodiments are sized and configured to be able to enter and operate in a laparoscopic space through currently available commercial trocars, including 5 mm diameter trocars. In these particular embodiments, therefore, both the shaft and the electrode assembly (in a closed state or arrangement) are of a sufficiently narrow diameter that they can easily pass through a 5 mm trocar.


Systems as provided by the technology may include any of described or depicted devices, as well as a generator operably connected to the electrosurgical device. Some embodiments of the generator are operable to deliver RF energy to the electrodes in any waveform selected from the group comprising a continuous cutting RF voltage waveform, a blended waveform with a continuous RF voltage waveform with a duty cycle of less than 100%, and a coagulation waveform comprising pulsed RF voltage. Further details of energy delivery capability are shown in Table 1.


Electrical Algorithm Parameters: Energy Delivery Ranges


Table 1 provides example ranges of operating parameters for the electrosurgical tissue sealing and the electrosurgical tissue dissecting operating modalities of embodiments of the technology. Embodiments of systems that are dedicated to dissecting are enabled to deliver energy within the parameters of dissecting energy. Embodiments of systems with electrode assemblies that are configured for dual purposes of both sealing and dissecting are enabled to deliver energy consistent with the parameters for both tissue sealing and tissue dissection.









TABLE 1







Electrical Algorithm Parameters: Energy Delivery Ranges









Parameter
Sealing
Dissecting














Max Voltage (volts)
85-115
volts
400
volts


Ramp End Power (watts)
150
watts
10-100
watts


Ramp Rate (watts/sec)
50-150
watts/sec
255
watts/sec








Claims
  • 1. An electrosurgical tissue dissecting device comprising: a shaft;a distally directed member that extends in a distal direction from the shaft;a first electrode that either forms part of or is positioned on the distally directed member; andan electrosurgical blade which is a second electrode that is configured to pivot with respect to the first electrode,wherein a proximal end of the electrosurgical blade is pivotably mounted to the distally directed member, and is movable such that at least a portion of the blade is exposed, wherein a distal end of the second electrode is configured to pivot with respect to the first electrode about a pivot point that is defined at the proximal end of the second electrode, andwherein the distally directed member defines an elongated recess formed on a surface of the distally directed member, wherein the electrosurgical blade is pivotable with respect to the distally directed member to a position in which the electrosurgical blade is disposed entirely within the recess.
  • 2. The electrosurgical tissue dissecting device of claim 1, wherein the electrosurgical blade is pivotable with respect to the distally directed member between a home position, in which the electrosurgical blade is longitudinally aligned with the distally directed member, and an outwardly projected position, in which the electrosurgical blade projects beyond the longitudinal profile of the distally directed member.
  • 3. The electrosurgical tissue dissecting device of claim 2, wherein the electrosurgical blade defines a cutting zone depth when the electrosurgical blade is positioned in the outwardly projected position.
  • 4. The electrosurgical tissue dissecting device of claim 3, wherein the cutting zone depth is controllable by pivoting the distal end of the second electrode with respect to the first electrode to change a distance that the electrosurgical blade projects from the device.
  • 5. The electrosurgical tissue dissecting device of claim 1, wherein the electrosurgical blade is pivotable with respect to the distally directed member through a pivot arc range.
  • 6. The electrosurgical tissue dissecting device of claim 5, wherein the pivot arc range is about 90 degrees.
  • 7. The electrosurgical tissue dissecting device of claim 5, wherein the electrosurgical blade is lockable at any position within the pivot arc range.
  • 8. An electrosurgical tissue dissecting device comprising: a shaft;a distally directed member that extends in a distal direction from the shaft;a first electrode that either forms part of or is positioned on the distally directed member; andan electrosurgical blade which is a second electrode that is movable with respect to the first electrode,wherein the electrosurgical blade is movable with respect to the distally directed member such that at least a portion of the electrosurgical blade is exposed,wherein the electrosurgical blade is movable with respect to the distally directed member between a home position, in which the electrosurgical blade is positioned within a longitudinal profile of the distally directed member, and an outwardly projected position, in which the electrosurgical blade projects beyond the longitudinal profile of the distally directed member, andwherein the electrosurgical blade comprises a flexible portion that is slidably positioned in an elongated slot, the electrosurgical tissue dissecting device further comprising an isolator that isolates the first electrode from the second electrode to prevent electrical contact between the first electrode and the second electrode, wherein the elongated slot is defined in the isolator.
  • 9. The electrosurgical tissue dissecting device of claim 8, wherein the electrosurgical blade defines a cutting zone depth when the electrosurgical blade is positioned in the outwardly projected position.
  • 10. The electrosurgical tissue dissecting device of claim 8, wherein the flexible portion is constrained in the home position.
  • 11. The electrosurgical tissue dissecting device of claim 8, wherein the flexible portion is biased toward the outwardly projected position.
  • 12. The electrosurgical tissue dissecting device of claim 8, wherein the flexible portion is releasable from the home position to permit the flexible portion to move to the outwardly projected position.
CROSS-REFERENCE TO RELATED APPLICATIONS

This application is a continuation under 35 U.S.C. § 120 of U.S. patent application Ser. No. 13/536,149, filed Jun. 28, 2012, which in turn, claims the benefit of priority under 35 U.S.C. § 119 of U.S. Provisional Patent Application No. 61/502,268, filed Jun. 28, 2011, the contents of both applications being incorporated by reference herein in their entirety for any and all purposes.

US Referenced Citations (470)
Number Name Date Kind
1918700 Harris Jul 1933 A
3356408 Stutz Dec 1967 A
3527224 Rabinowitz Sep 1970 A
3709215 Richmond Jan 1973 A
3742955 Battista Jul 1973 A
3845771 Vise Nov 1974 A
3920021 Hiltebrandt Nov 1975 A
3970088 Morrison Jul 1976 A
4018230 Ochiai Apr 1977 A
4041952 Morrison, Jr. Aug 1977 A
4072153 Swartz Feb 1978 A
4094320 Newton Jun 1978 A
4231372 Newton Nov 1980 A
4492231 Auth Jan 1985 A
4532924 Auth Aug 1985 A
4590934 Malis May 1986 A
4644953 Lahodny Feb 1987 A
4671274 Sorochenko Jun 1987 A
4972846 Owens Nov 1990 A
4976717 Boyle Dec 1990 A
4979948 Geddes Dec 1990 A
4998527 Meyer Mar 1991 A
5037379 Clayman Aug 1991 A
5041101 Seder Aug 1991 A
5059782 Fukuyama Oct 1991 A
5078736 Behl Jan 1992 A
5108408 Lally Apr 1992 A
5133713 Huang Jul 1992 A
5151102 Kamiyama Sep 1992 A
5156613 Sawyer Oct 1992 A
5178618 Kandarpa Jan 1993 A
5190541 Abele Mar 1993 A
5207691 Nardella May 1993 A
5217030 Yoon Jun 1993 A
5234425 Fogarty Aug 1993 A
5250074 Wilk Oct 1993 A
5267998 Hagen Dec 1993 A
5269780 Roos Dec 1993 A
5269782 Sutter Dec 1993 A
5273524 Fox Dec 1993 A
5277201 Stern Jan 1994 A
5281216 Klicek Jan 1994 A
5282799 Rydell Feb 1994 A
5290287 Boebel Mar 1994 A
5295990 Levin Mar 1994 A
5300068 Rosar Apr 1994 A
5300087 Knoepfler Apr 1994 A
5312023 Green May 1994 A
5324289 Eggers Jun 1994 A
5330471 Eggers Jul 1994 A
5330502 Hassler Jul 1994 A
5336229 Noda Aug 1994 A
5336237 Chin Aug 1994 A
5341807 Nardella Aug 1994 A
5342381 Tidemand Aug 1994 A
5352223 McBrayer Oct 1994 A
5352235 Koros Oct 1994 A
5354336 Kelman Oct 1994 A
5356408 Rydell Oct 1994 A
5366477 LeMarie, III Nov 1994 A
5374277 Hassler Dec 1994 A
5377415 Gibson Jan 1995 A
5391166 Eggers Feb 1995 A
5395369 McBrayer Mar 1995 A
5395375 Turkel Mar 1995 A
5396900 Slater Mar 1995 A
5397320 Essig Mar 1995 A
5403312 Yates Apr 1995 A
5417687 Nardella May 1995 A
5423814 Zhu Jun 1995 A
5431676 Dubrul Jul 1995 A
5438302 Goble Aug 1995 A
5443463 Stern Aug 1995 A
5443470 Stern Aug 1995 A
5445638 Rydell Aug 1995 A
5447513 Davison Sep 1995 A
5449355 Rhum Sep 1995 A
5456684 Schmidt Oct 1995 A
5458598 Feinberg Oct 1995 A
5462546 Rydell Oct 1995 A
5472442 Klicek Dec 1995 A
5480399 Hebborn Jan 1996 A
5482054 Slater Jan 1996 A
5484435 Fleenor Jan 1996 A
5484436 Eggers Jan 1996 A
5496312 Klicek Mar 1996 A
5496317 Goble Mar 1996 A
5514134 Rydell May 1996 A
5520698 Koh May 1996 A
5531744 Nardella Jul 1996 A
5540684 Hassler, Jr. Jul 1996 A
5540685 Parins Jul 1996 A
5542945 Fritzsch Aug 1996 A
5549637 Crainich Aug 1996 A
5556397 Long Sep 1996 A
5558100 Cox Sep 1996 A
5558671 Yates Sep 1996 A
5562700 Huitema Oct 1996 A
5562701 Huitema Oct 1996 A
5562702 Huitema Oct 1996 A
5562720 Stern Oct 1996 A
5569243 Kortenbach Oct 1996 A
5571100 Goble Nov 1996 A
5573535 Viklund Nov 1996 A
5578052 Koros Nov 1996 A
5599350 Schulze Feb 1997 A
5601224 Bishop Feb 1997 A
5603700 Daneshvar Feb 1997 A
5603711 Parins Feb 1997 A
5611803 Heaven Mar 1997 A
5624452 Yates Apr 1997 A
5637110 Pennybacker Jun 1997 A
5637111 Sutcu Jun 1997 A
5653692 Masterson Aug 1997 A
5658281 Heard Aug 1997 A
5662662 Bishop Sep 1997 A
5662676 Koninckx Sep 1997 A
5665085 Nardella Sep 1997 A
5665100 Yoon Sep 1997 A
5667526 Levin Sep 1997 A
5669907 Platt, Jr. Sep 1997 A
5673840 Schulze Oct 1997 A
5673841 Schulze Oct 1997 A
5674184 Hassler, Jr. Oct 1997 A
5674220 Fox Oct 1997 A
5675184 Matsubayashi Oct 1997 A
5680982 Schulze Oct 1997 A
5681282 Eggers Oct 1997 A
5683385 Kortenbach Nov 1997 A
5683388 Slater Nov 1997 A
5688270 Yates Nov 1997 A
5693051 Schulze Dec 1997 A
5697949 Giurtino Dec 1997 A
5700261 Brinkerhoff Dec 1997 A
5702390 Austin Dec 1997 A
5704534 Huitema Jan 1998 A
5707369 Vaitekunas Jan 1998 A
5709680 Yates Jan 1998 A
5713896 Nardella Feb 1998 A
5715832 Koblish Feb 1998 A
5718703 Chin Feb 1998 A
5720719 Edwards Feb 1998 A
5728143 Gough Mar 1998 A
5733283 Malis Mar 1998 A
5735289 Pfeffer Apr 1998 A
5735848 Yates Apr 1998 A
5735849 Baden Apr 1998 A
5741285 McBrayer Apr 1998 A
5746750 Prestel May 1998 A
5749895 Sawyer May 1998 A
5755717 Yates May 1998 A
5776130 Buysse Jul 1998 A
5788662 Antanavich Aug 1998 A
5797941 Schulze Aug 1998 A
5810811 Yates Sep 1998 A
5817091 Nardella Oct 1998 A
5817092 Behl Oct 1998 A
5823066 Huitema Oct 1998 A
5833689 Long Nov 1998 A
5836990 Li Nov 1998 A
5840077 Rowden Nov 1998 A
5855576 LeVeen Jan 1999 A
5860975 Goble Jan 1999 A
5891142 Eggers Apr 1999 A
5893835 Witt Apr 1999 A
5893874 Bourque Apr 1999 A
5931835 Mackey Aug 1999 A
5931836 Hatta Aug 1999 A
5954720 Wilson Sep 1999 A
5976128 Schilling Nov 1999 A
5979453 Savage Nov 1999 A
6003517 Sheffield Dec 1999 A
6004319 Goble Dec 1999 A
6030384 Nezhat Feb 2000 A
6050993 Tu Apr 2000 A
6050995 Durgin Apr 2000 A
6056744 Edwards May 2000 A
6059766 Greff May 2000 A
6059782 Novak May 2000 A
6066139 Ryan May 2000 A
6068626 Harrington May 2000 A
6071281 Burnside Jun 2000 A
6074386 Goble Jun 2000 A
6086586 Hooven Jul 2000 A
6090106 Goble Jul 2000 A
6093186 Goble Jul 2000 A
6096037 Mulier Aug 2000 A
6099550 Yoon Aug 2000 A
6123701 Nezhat Sep 2000 A
H1904 Yates Oct 2000 H
6142992 Cheng Nov 2000 A
6152920 Thompson Nov 2000 A
6152932 Ternstrom Nov 2000 A
6162220 Nezhat Dec 2000 A
6174309 Wrublewski Jan 2001 B1
6179832 Jones Jan 2001 B1
6203541 Keppel Mar 2001 B1
6203542 Ellsberry Mar 2001 B1
6206877 Kese Mar 2001 B1
6210406 Webster Apr 2001 B1
6212426 Swanson Apr 2001 B1
6217894 Sawhney Apr 2001 B1
6228084 Kirwan, Jr. May 2001 B1
6234178 Goble May 2001 B1
6241139 Milliman Jun 2001 B1
6245069 Gminder Jun 2001 B1
6254601 Burbank Jul 2001 B1
6258085 Eggleston Jul 2001 B1
6277114 Bullivant Aug 2001 B1
6283963 Regula Sep 2001 B1
6287304 Eggers Sep 2001 B1
6290715 Sharkey Sep 2001 B1
6293942 Goble Sep 2001 B1
6293946 Thorne Sep 2001 B1
6296636 Cheng Oct 2001 B1
6312430 Wilson Nov 2001 B1
6322494 Bullivant Nov 2001 B1
6327505 Medhkour Dec 2001 B1
6334861 Chandler Jan 2002 B1
6350274 Li Feb 2002 B1
6361559 Houser Mar 2002 B1
6364879 Chen Apr 2002 B1
6371956 Wilson Apr 2002 B1
6391024 Sun May 2002 B1
6391029 Hooven May 2002 B1
6398781 Goble Jun 2002 B1
6423550 Buysse Jun 2002 B1
H2037 Yates Jul 2002 H
6416509 Goble Jul 2002 B1
6428550 Vargas Aug 2002 B1
6436096 Hareyama Aug 2002 B1
6464702 Schulze Oct 2002 B2
6485486 Trembly Nov 2002 B1
6485489 Teirstein Nov 2002 B2
6491690 Goble Dec 2002 B1
6494881 Bales Dec 2002 B1
6500176 Truckai Dec 2002 B1
6514252 Nezhat Feb 2003 B2
6517530 Kleven Feb 2003 B1
6520185 Bommannan Feb 2003 B1
6533784 Truckai Mar 2003 B2
6546933 Yoon Apr 2003 B1
6554829 Schulze Apr 2003 B2
6564806 Fogarty May 2003 B1
6565560 Goble May 2003 B1
6565561 Goble May 2003 B1
6584360 Francischelii Jun 2003 B2
6610074 Santilli Aug 2003 B2
6616654 Mollenauer Sep 2003 B2
6616659 delaTorre Sep 2003 B1
6619529 Green Sep 2003 B2
6623482 Pendekanti Sep 2003 B2
6626901 Treat Sep 2003 B1
6645198 Bommannan Nov 2003 B1
6645201 Utley Nov 2003 B1
6648839 Manna Nov 2003 B2
6652518 Wellman Nov 2003 B2
6656177 Truckai Dec 2003 B2
6666859 Fleenor Dec 2003 B1
6669696 Bacher et al. Dec 2003 B2
6673085 Berg Jan 2004 B1
6676660 Wamper Jan 2004 B2
6682526 Jones Jan 2004 B1
6682527 Strul Jan 2004 B2
6695840 Schulze Feb 2004 B2
6699245 Dinger Mar 2004 B2
6719754 Underwood Apr 2004 B2
6722371 Fogarty Apr 2004 B1
6736814 Manna May 2004 B2
6743229 Buysse Jun 2004 B2
6746488 Bales Jun 2004 B1
6752154 Fogarty Jun 2004 B2
6752803 Goldman Jun 2004 B2
6770070 Balbierz Aug 2004 B1
6770072 Truckai Aug 2004 B1
6808525 Latterell Oct 2004 B2
6817974 Cooper Nov 2004 B2
6821273 Mollenauer Nov 2004 B2
6837888 Ciarrocca Jan 2005 B2
6840938 Morley Jan 2005 B1
6843789 Goble Jan 2005 B2
6852108 Barry Feb 2005 B2
6858028 Mulier Feb 2005 B2
6889089 Behl May 2005 B2
6893435 Goble May 2005 B2
6896672 Eggers May 2005 B1
6896673 Hooven May 2005 B2
6905497 Truckai Jun 2005 B2
6905506 Burbank Jun 2005 B2
6913579 Truckai Jul 2005 B2
6918907 Kelly Jul 2005 B2
6918909 Ohyama Jul 2005 B2
6923803 Goble Aug 2005 B2
6926712 Phan Aug 2005 B2
6929642 Xiao Aug 2005 B2
6936048 Hurst Aug 2005 B2
6939346 Kannenberg Sep 2005 B2
6953461 McClurken Oct 2005 B2
6981628 Wales Jan 2006 B2
7011657 Truckai Mar 2006 B2
7033356 Latterell Apr 2006 B2
7063699 Hess Jun 2006 B2
7090637 Danitz Aug 2006 B2
7090673 Dycus Aug 2006 B2
7090685 Kortenbach Aug 2006 B2
7094235 Francischelli Aug 2006 B2
7101371 Dycus Sep 2006 B2
7101372 Dycus Sep 2006 B2
7101373 Dycus Sep 2006 B2
7118587 Dycus Oct 2006 B2
7125409 Truckai Oct 2006 B2
7137980 Buysse Nov 2006 B2
7150097 Sremcich Dec 2006 B2
7159750 Racenet Jan 2007 B2
7166102 Fleenor Jan 2007 B2
7169146 Truckai Jan 2007 B2
7179254 Pendekanti Feb 2007 B2
7195627 Amoah Mar 2007 B2
7220260 Fleming May 2007 B2
7238195 Viola Jul 2007 B2
7250048 Francischelli Jul 2007 B2
7267677 Johnson Sep 2007 B2
7270664 Johnson Sep 2007 B2
7276068 Johnson Oct 2007 B2
7278991 Morris Oct 2007 B2
7291143 Swanson Nov 2007 B2
7364577 Wham Apr 2008 B2
7367972 Francischelli May 2008 B2
7410483 Danitz Aug 2008 B2
7494039 Racenet Feb 2009 B2
7506790 Shelton, IV Mar 2009 B2
7540872 Schechter Jun 2009 B2
7549564 Boudreaux Jun 2009 B2
7624902 Marczyk Dec 2009 B2
7641651 Nezhat Jan 2010 B2
7703653 Shah Apr 2010 B2
7794461 Eder Sep 2010 B2
7803156 Eder Sep 2010 B2
7862565 Eder Jan 2011 B2
7942874 Eder May 2011 B2
20010001820 Wampler May 2001 A1
20010029367 Fleenor Oct 2001 A1
20020062123 McClurken May 2002 A1
20020062136 Hillstead May 2002 A1
20020107514 Hooven Aug 2002 A1
20020111624 Witt Aug 2002 A1
20020124853 Burbank Sep 2002 A1
20020128643 Simpson Sep 2002 A1
20020151882 Marko Oct 2002 A1
20020177848 Truckai Nov 2002 A1
20020183738 Chee Dec 2002 A1
20030073994 Schulze Apr 2003 A1
20030078577 Truckai Apr 2003 A1
20030114851 Truckai Jun 2003 A1
20030144652 Baker Jul 2003 A1
20030144653 Francischelli Jul 2003 A1
20030158547 Phan Aug 2003 A1
20030171745 Francischelli Sep 2003 A1
20030216726 Eggers Nov 2003 A1
20030229344 Dycus Dec 2003 A1
20030236549 Bonadio Dec 2003 A1
20040006339 Underwood Jan 2004 A1
20040010245 Cerier Jan 2004 A1
20040068274 Hooven Apr 2004 A1
20040097919 Wellman May 2004 A1
20040122423 Dycus Jun 2004 A1
20040143263 Schechter Jul 2004 A1
20040199226 Shadduck Oct 2004 A1
20040236320 Protsenko Nov 2004 A1
20050010212 McClurken Jan 2005 A1
20050015085 McClurken Jan 2005 A1
20050021026 Baily Jan 2005 A1
20050021027 Shields Jan 2005 A1
20050033276 Adachi Feb 2005 A1
20050033277 Clague Feb 2005 A1
20050033278 McClurken Feb 2005 A1
20050070895 Ryan Mar 2005 A1
20050070978 Bek Mar 2005 A1
20050090819 Goble Apr 2005 A1
20050096645 Wellman May 2005 A1
20050096694 Lee May 2005 A1
20050107781 Ostrovsky May 2005 A1
20050107784 Moses May 2005 A1
20050113817 Isaacson May 2005 A1
20050113820 Goble May 2005 A1
20050119654 Swanson Jun 2005 A1
20050124987 Goble Jun 2005 A1
20050131390 Heinrich Jun 2005 A1
20050149073 Arani Jul 2005 A1
20050171533 Latterell Aug 2005 A1
20050187561 Lee-Sepsick Aug 2005 A1
20050192633 Montpetit Sep 2005 A1
20050196421 Hunter Sep 2005 A1
20050203500 Saadat Sep 2005 A1
20050203504 Wham Sep 2005 A1
20050209664 Hunter Sep 2005 A1
20050226682 Chersky Oct 2005 A1
20050256522 Francischelli Nov 2005 A1
20050256524 Long Nov 2005 A1
20050261676 Hall Nov 2005 A1
20060025765 Landman Feb 2006 A1
20060025812 Shelton Feb 2006 A1
20060041254 Francischelli Feb 2006 A1
20060047278 Christian Mar 2006 A1
20060052778 Chapman Mar 2006 A1
20060052779 Hammill Mar 2006 A1
20060064084 Haemmerich Mar 2006 A1
20060079872 Eggleston Apr 2006 A1
20060079891 Arts Apr 2006 A1
20060167451 Cropper Jul 2006 A1
20060190029 Wales Aug 2006 A1
20060199999 Ikeda Sep 2006 A1
20060217709 Couture et al. Sep 2006 A1
20060226196 Hueil Oct 2006 A1
20060229665 Wales Oct 2006 A1
20060253117 Hovda Nov 2006 A1
20060258954 Timberlake Nov 2006 A1
20060259035 Nezhat Nov 2006 A1
20060271037 Maroney Nov 2006 A1
20060271041 Eder Nov 2006 A1
20060271042 Latterell Nov 2006 A1
20060287674 Ginn Dec 2006 A1
20060289602 Wales Dec 2006 A1
20060293655 Sartor Dec 2006 A1
20070005061 Eder Jan 2007 A1
20070055231 Dycus Mar 2007 A1
20070062017 Dycus Mar 2007 A1
20070073340 Shelton Mar 2007 A1
20070128174 Kleinsek Jun 2007 A1
20070129726 Eder Jun 2007 A1
20070173804 Wham Jul 2007 A1
20070173805 Weinberg Jul 2007 A1
20070173811 Couture Jul 2007 A1
20070179497 Eggers Aug 2007 A1
20070185482 Eder Aug 2007 A1
20070208336 Kim et al. Sep 2007 A1
20070244538 Eder Oct 2007 A1
20070250113 Hegeman Oct 2007 A1
20070265613 Edelstein Nov 2007 A1
20070282318 Spooner Dec 2007 A1
20070282320 Buysse Dec 2007 A1
20080172052 Eder Jul 2008 A1
20080188844 McGreevy Aug 2008 A1
20080195093 Couture Aug 2008 A1
20080221565 Eder Sep 2008 A1
20080228179 Eder Sep 2008 A1
20080275446 Messerly Nov 2008 A1
20080308607 Timm Dec 2008 A1
20090018535 Schechter Jan 2009 A1
20090112246 Weisshaupt Apr 2009 A1
20090138006 Bales May 2009 A1
20090157071 Wham Jun 2009 A1
20090157072 Wham Jun 2009 A1
20090157075 Wham Jun 2009 A1
20090182323 Eder Jul 2009 A1
20090182333 Eder Jul 2009 A1
20090198272 Kerver Aug 2009 A1
20090209953 Schoenman Aug 2009 A1
20090240245 Deville Sep 2009 A1
20090299367 Ginnebaugh Dec 2009 A1
20100042093 Wham Feb 2010 A9
20100076427 Heard Mar 2010 A1
20100094282 Kabaya Apr 2010 A1
20100280508 Eder Nov 2010 A1
20100298823 Cao Nov 2010 A1
20110184404 Walberg Jul 2011 A1
20110202058 Eder Aug 2011 A1
20110230875 Walberg Sep 2011 A1
20110238056 Koss Sep 2011 A1
20120071871 Lue Mar 2012 A1
Foreign Referenced Citations (99)
Number Date Country
2061215 Feb 1992 CA
1250360 Apr 2000 CN
1882289 Dec 2006 CN
1889893 Jan 2007 CN
202007005510 Jul 2007 DE
202007015547 Feb 2008 DE
102007017966 Nov 2008 DE
102007053359 Jun 2009 DE
202011000800 Jun 2011 DE
0134750 Mar 1985 EP
487269 May 1991 EP
440385 Jul 1991 EP
502268 Sep 1992 EP
562195 Sep 1993 EP
658333 Jun 1995 EP
0737446 Oct 1996 EP
875209 Apr 1998 EP
923907 Jun 1999 EP
1064886 Jan 2001 EP
833593 Feb 2001 EP
1254637 Nov 2002 EP
0717960 Feb 2003 EP
1293169 Mar 2003 EP
1293170 Mar 2003 EP
869742 May 2003 EP
873089 Oct 2003 EP
742696 Nov 2003 EP
1041933 Mar 2004 EP
1004277 Jul 2004 EP
959786 Sep 2004 EP
913126 Oct 2004 EP
956827 Oct 2004 EP
1472984 Nov 2004 EP
1486177 Dec 2004 EP
1518498 Mar 2005 EP
1518499 Mar 2005 EP
1532933 May 2005 EP
1621146 Feb 2006 EP
1632192 Mar 2006 EP
1645237 Apr 2006 EP
1747761 Jan 2007 EP
1767164 Mar 2007 EP
1810625 Jul 2007 EP
1852081 Nov 2007 EP
1862138 Dec 2007 EP
1039862 May 2008 EP
1707143 Jun 2008 EP
2106764 Oct 2009 EP
1330991 Jan 2011 EP
06337936 Aug 1994 JP
11137562 May 1999 JP
2001095813 Apr 2001 JP
2003088534 Mar 2003 JP
2004049566 Feb 2004 JP
2005144193 Jun 2005 JP
9005160889 Jun 2005 JP
9222257 Dec 1992 WO
9308754 May 1993 WO
9400060 Jan 1994 WO
9426179 Nov 1994 WO
9502371 Jan 1995 WO
9605776 Feb 1996 WO
1996016605 Jun 1996 WO
9623449 Aug 1996 WO
9724073 Jul 1997 WO
9724074 Jul 1997 WO
9812999 Apr 1998 WO
9843548 Oct 1998 WO
9853750 Dec 1998 WO
9923933 May 1999 WO
9952459 Oct 1999 WO
9956646 Nov 1999 WO
0013193 Feb 2000 WO
0013192 Mar 2000 WO
0112090 Feb 2001 WO
0135846 May 2001 WO
0154602 Aug 2001 WO
0158372 Aug 2001 WO
0158373 Aug 2001 WO
0182812 Nov 2001 WO
0224092 Mar 2002 WO
0267798 Jul 2002 WO
0258542 Aug 2002 WO
03088806 Oct 2003 WO
03103522 Dec 2003 WO
2004032596 Apr 2004 WO
2004032776 Apr 2004 WO
20040734090 Sep 2004 WO
2004098383 Nov 2004 WO
2005009213 Feb 2005 WO
2005034729 Apr 2005 WO
2005079901 Sep 2005 WO
05115251 Dec 2005 WO
2006060431 Jun 2006 WO
2006124601 Nov 2006 WO
2007002227 Jan 2007 WO
2007082061 Jul 2007 WO
2008094554 Aug 2008 WO
2008124112 Oct 2008 WO
Non-Patent Literature Citations (73)
Entry
Entire patent prosecution history of U.S. Appl. No. 13/536,149, filed Jun. 28, 2012, entitled, “Electrosurgical Tissue Dissecting Device.”
Office Action for U.S. Appl. No. 13/536,149 dated Oct. 6, 2014.
Aoki et al.; Thoracoscopic resection of the lung with the ultrasonic scalpel.; Ann Thorac Surg; vol. 67; No. 4; pp. 1181-1183; Apr. 1999.
Arthrocare receives clearance to market coblation-based devices for gynecology and laparoscopic surgery: clearance includes plasma forceps and 21 specific indications; Business Wire; p. 524; Oct. 25, 2001.
Australian Examination Report issued in Australian Application No. 2011212786, dated Apr. 16, 2014.
Bergamaschi et al.; Laparoscopic intracorporeal bowel resection with ultrasound versus electrosurgical dissection; JSLS; vol. 5; No. 1; pp. 17-20; Jan.-Mar. 2001.
Chinese Examination Report for Application No. 200780053005.9 dated Oct. 18, 2011 with English Language Translation.
Chinese Office Action dated Mar. 19, 2012, for related Chinese Application No. 200880005613.7 (w/English translation) 15 pgs.
Chinese Application No. 200780053005.9, fourth office action dated Mar. 27, 2013.
Curon Announces the Publication of Data Supporting Durability and Effectiveness of Stretta (R) System: —Positive One Year Follow-Up Data of U.S. Clinical Trial Published in Gastrointestinal Endoscopy: Feb. 7, 2002; PR Newswire, pNYTH 10307022002.
Curon Medical Announces Presentation of Positive Clinical Study Results of Stretta(R) Procedure For Gastroesophageal Reflux Disease (GERD): Mar. 20, 2002; PR Newswire,PNYW07920032002.
Eder, Joseph C.; U.S. Appl. No. 12/200,798 “Assisted systems and methods for performing transvaginal hysterectomies,” filed Aug. 28, 2008.
Eichfeld et al.; Evaluation of ultracision in lung metastatic surgery; Ann Thorac Surg; vol. 70; No. 4; pp. 1181-1184; Oct. 2000.
Enable Medical Introduces Second Generation Bipolar Scissors: Dec. 1998: Health Industry Today, pNA.
Entire patent prosecution history of U.S. Appl. No. 13/021,633, filed Feb. 4, 2011, entitled, “Laparoscopic Radiofrequency Surgical Device.”
ERBE Elektromedizin GmbH ERBE BiClamp Brochure; downloaded Jan. 24, 2011; 6 pgs., © 2011, http://vvvvw.erbe-med.corn/erbe/media/Marketingmaterialen/85100-139_ERBE_EN_BiClamp_D024676.pdf.
European Patent Office Examination Report for European Application No. 07 811 938.5 dated Mar. 5, 2012.
Everest Medical Announces Introduction of 3mm Bipolar Forceps: Oct. 2, 1996: PRNewswire, p. 1002MNW021.
Everest Medical Discusses Patent Status: Forecasts $1 Million Revenue First Quarter: Introduces Next Generation Bipolar Scissors: Mar. 31, 1994; PR Newswire, p. N/A.
Everest Medical Introduces New Quadripolar (TM) Cutting Forcepts at The Global Congress of Gynecologic Endoscopy Meeting: Nov. 8, 1999; PR Newswire p. 8927.
Everest Medical Reports Record First Quarter Results: Introduces Next Generation Bipolar Scissors: Apr. 19, 1994; PR Newswire, p. N/A.
Examination Report for Australian Patent Application No. 200.7352602 dated Aug. 21, 2012.
Examination Report for Chinese Patent Application No. 200780053005.9: dated Jun. 26, 2012 (w/ English Language Translation).
First Office Action in Related Chinese Application No. 201180003207.9 dated Jul. 9, 2014.
Gyrus ACMI (an Olympus Company); PKS Seal (product page);http://www.gyrusacmi.com/user/display.cfm?display=product&pid=9024; downloaded Jan. 24, 2011; 1 page.
Gyrus Medical: Cutting Forceps Forceps:http://www.gyrusgroup.com/medical/products_item.asp?id=7, downloaded 2005.
Gyrus Medical: LP Scissors:http://www.gyrusgroup.com/medical/products item.asp?id=11, downloaded 2005.
Gyrus Medical; Lyons TM Dissecting Forceps: http://www.gyrusgroup.com/medical/products item.asp?id=8, downloaded 2005.
Gyrus Medical; Micro/Macro-Jaw Forceps: http://www.gyrusgroup.com/medical/products item.asp?id=13, downloaded 2005.
Gyrus Medical; Seal Open Forceps (Product Information); downloaded Oct. 20, 2005.
Hayashi et al.; Experimental and clinical evaluation of the harmonic scalpel in thoracic surgery; Kurume Med J; vol. 46; No. 1; pp. 25-29; 1999.
Hefni et al.; Safety and efficacy of using the ligasure vessel sealing system for securing the pedicles in vaginal hysterectomy: randomized controlled trial; BJOG vol. 112; No. 3; pp. 329-333; Mar. 2005.
Heniford ST et al.: Initial Results With an Electrothermal Bipolar Vessel Sealer: Aug. 2001 Surg Endosc.; 15 (8); 799-801, Epub May 14, 2001; Carolinas Laparoscopic and Advanced Surgery Prograrn, Department of General Surgery, Carolinas Medical Center, 1000 Blythe Boulevard, MEB #601, Charlotte, NC. USA.
International Search Report for International Application No. PCT/US2011/023731, dated Oct. 13, 2011.
Japanese Examination Report for Application No. 2010-506177, dated Sep. 29, 2011 with English Language Translation.
Kamat. AA et al: Superiority of Electrocautery Over the Suture Method for Achieving Cervical Cone Bed Hemostasis: Oct. 2003. Obstet Gynecol.: 102 (4): 726-30; Department of Obstetrics and Gynecology, Baylor College of Medicine, Houston, Texas 77030, USA. akamat©bcm.tmc.edu.
Kennedy. JS et al.: High-Burst-Strength. Feedback-Controlled Bipolar Vessel Sealing; Jun. 1998 Surg Endosc.; 12 (6): 876-8; Valleylab, Inc., 5920 Longbow Drive, Boulder, CO 80301, USA.
Kerver et al., U.S. Appl. No. 13/070,391 entitled “Articulable electrosurgical instrument with a stabilizable articulation actuator,” filed Mar. 23, 2011.
Kim et al.; Design and fabrication of a locomotive mechanism for capsule-type endoscopes using shape memory alloys (SFAs); IEEE/ASME Trans on Mechatronics; vol. 10; No. 1; pp. 77-86; Feb. 2005.
Koss et al.; U.S. Appl. No. 12/748,229 entitled “Irnpedance mediated power delivery for electrosurgery,” filed Mar. 26, 2010.
Koss et al.; U.S. Appl. No. 12/907,646 entitled “Impedance mediated control of power delivery for electrosurgery,” filed Oct. 19, 2010.
Kovac, Transvaginal hysterectomy; rationale and surgical approach; Obstet. Gynecol.; vol. 103; pp. 1321-1325; 2004.
Landman J. et al.: Evaluation of a Vessel Sealing System. Bipolar Electrosurgery. Harmonic Scalpel. Titanium Clips. Endoscopic Gastrointestinal Anastomosis Vascular Staples and Sutures For Arter lai and Venous Ligation in a Porcine Model: Feb. 2003. J Urol.; 169 (2): 697-700; Department of Surgery (Division of Urology), Washington University School of Medicine, St. Louis, Missouri, USA.
Levy. Barbara: Use of a New Vessel Ligation Device During Vaginal Hysterectomy: As presented at FIGO 2000, Washington, D.C; University of Washington School of Medicine; Federal Way, Washington, USA; © 2000 Valleylab.
Levy. Barbara et al.: Update on Hysterectomy: New Technologies and Techniques; Feb. 2003; http://www.obgmanagement.com/supplements.pdf/hysterectomy.pdf; A supplement to OBG Management.
Lin et al.; Application of ultrasonic scalpel in gynecologic operative laparoscopy; Chin Med J (Engl.); vol. 114; No. 12; pp. 1283-1285; Dec. 2001.
Live Tissue Connect Technologies; company profile;(http://www.onemedplace.com/database/compdisplay print.php?CompanyID=11508); 1 pg.; Oct. 19, 2010 (downloaded Feb. 7, 2011).
Lyons et al.; An innovative bipolar instrument for laparoscopic surgery; JSLS; vol. 9; No. 1; pp. 39-41; Jan.-Mar. 2005.
McClurken et al.; Collagen shrinkage and vessel sealing; Technical brief #300. Dover, NH: Tissue Link Medical; 2001.
Nezhat etal.; U.S. Appl. No. 08/948,282 entitled “Method and systems for organ resection,” filed Oct. 9, 1997.
Nojarov et al.; High-energy scissors mode; Rhys Rev C Nucl Rhys; vol. 51; No. 5; pp. 2449-2456; 1995 (http://arxiv.org/abs/nucl-th/9502001v1).
Parikh et al.; Three dimensional virtual reality model of the normal female pelvic floor; Annals of Bimedical Engineering; vol. 32; pp. 292-296.
Preliminary Report on Patentability for Application No. PCT/US2011/023731 dated Aug. 7, 2012.
Quadripolar Cutting Forceps Introduced by Everest Medical: Jan. 2000; Health Industry Today, v. 63, n. 1. p. NA.
Radiofrequency energy proven effective against leading cause of obstructive sleep apnea; Business Wire: , Sep. 14, 1998, 4 pgs.
Refractec, Inc.; Medical Use of Radiofrequency (RF) Energy; (http://www.locateadoc.com/Site_tools/Print.cfm); 2 pgs; Aug. 23, 2008.
Sages 2001 Hands-On Course I—Taking it to the Next Level: Advanced Laparoscopic Techniques; http://www.sages.org/01/program/syllabi/ho1.html#schirme; 24 pgs; downloaded Oct. 5, 2005.
SAGES 2001 Nurses Program, Session 1,http://sages.org/01program/syllabi/nurse/nurse.html; downloaded Jan. 24, 2011; 5 pgs.
Srisombut. C. et al.: Laparoscopic Hysterectomy Using Laparosonic Coagulating Shears: Experience of 15 Cases: Aug. 2000. J. Med. Assoc. Thai.; 83 (8):915-20; Department of Obstetrics and Gynecology, Faculty of Medicine, Ramathibodi Hospital, Mahidol University, Bangkok, Thailand.
SURGRX 510(K) Summary (# K031133); Palo Alto, CA; 5 pgs.; Jul. 3, 2003.
The Gynecare Versapoint,.All contents copyright ® Johnson & Johnson Gateway, LLC, downloaded 2005, http://www.jnjgataway.com/home.jhtml?loc=USENG&page=viewContent&contentId=edeaO00100001747&parentId=fc0de00100000334.
TREAT; A new thermal device for sealing and dividing blood vessels; http://www.starioninstruments.com/PDFs/Treat.pdf; downloaded Jun. 29, 2005; 2 pgs.
Tyco Healthcare; The LigaSureVessel Sealing System (Brochure); Apr. 2002; 8 pgs.
U.S. Patent Issued For Novare Surgical Systems Cygnet (R) Surgical Clamp; Novare Signs Multi-Year Supply Agreement with Boston Scientific; PR Newswire, pNA; Sep. 2, 2003.
Valleylab Products—Electrosurgical Forceps: The Surgeon's Choice For Quality and Precision: htto://www.valleylab.com/oroduct/es/accessories/forceps over.html: © 2005 valleylab.
Valleylab Products—Ligasure TM Vessel Sealing System; http://www.valleylab.com/products/vessel__seal/index.html, © 2005.
Office Action dated Aug. 19, 2015 in U.S. Appl. No. 13/021,633.
Non-Final Office Action dated Nov. 6, 2015 in U.S. Appl. No. 13/536,149.
Notice of Allowance for U.S. Appl. No. 13/536,149, dated Jan. 13, 2016.
Non-Final Office Action dated Mar. 31, 2016 for U.S. Appl. No. 13/021,633.
Final Office Action for U.S. Appl. No. 13/021,633, dated Sep. 13, 2016, 17 pages.
U.S. Non-Final Office Action for U.S. Appl. No. 13/021,633, dated May 10, 2017, 19 pages.
Notice of Allowance for U.S. Appl. No. 13/021,633, dated Nov. 3, 2017, 12 pages.
Related Publications (1)
Number Date Country
20160242840 A1 Aug 2016 US
Provisional Applications (1)
Number Date Country
61502268 Jun 2011 US
Continuations (1)
Number Date Country
Parent 13536149 Jun 2012 US
Child 15094332 US