1. Field of the Invention
The instant invention relates a catheter device for use in a procedure in which an injectable material or device is injected into a tissue of a patent. In one implementation, for example, the catheter device is useful in injecting a compound into a tissue of the heart, such as the myocardium of the heart.
2. Description of Related Art
Injection of various materials into the myocardium of the heart while the heart is beating is desirable. Various materials and techniques are disclosed in, for example, U.S. Patent Application Publication No. US 2008/0065046 published Mar. 13, 2008 in the name of Hani N. Sabbah et al. and entitled “Intramyocardial Patterning for Global Cardiac Resizing and Reshaping.”
One embodiment of the present invention is a method of injecting a needle into a tissue surface in a patient comprising: providing a delivery catheter comprising a distal tip portion and a proximal handle portion, the distal tip portion comprising an extensible and retractable needle and a suction port in fluid communication with a vacuum port of the proximal handle portion, the vacuum port adapted to create suction at the suction port when a vacuum is applied to the vacuum port; directing the distal tip portion of the delivery catheter to a treatment site; applying a vacuum to the vacuum port to create suction at the suction port of the distal tip portion and engage a tissue surface at a first location displaced from a second location of the tissue surface to be treated; and extending the needle from the distal tip portion into the tissue surface at the second location of the tissue surface.
Another embodiment of the present invention is an injection catheter comprising: a proximal handle portion comprising a vacuum port; a delivery catheter coupled to the proximal handle portion and comprising a distal tip portion, the distal tip portion comprising: an extensible and retractable needle, a tip deflector configured to deflect the needle at an angle displaced from a longitudinal axis of the distal tip portion, and a suction port in fluid communication with a vacuum port of the proximal handle portion, the vacuum port adapted to create suction at the suction port when a vacuum is applied to the vacuum port, wherein the suction port is configured to engage a tissue surface to be injected at a first location and the needle is configured to extend from the distal tip portion at the angle and extend into the tissue surface at a second location displaced from the first location.
Another embodiment of the present invention is an injection catheter comprising: a proximal handle portion comprising a vacuum port and a needle hub; a delivery catheter coupled to the proximal handle portion and comprising a distal tip portion, the distal tip portion comprising: an extensible and retractable needle in fluid communication with the needle hub, a tip deflector configured to deflect the needle at an angle displaced from a longitudinal axis of the distal tip portion, and a suction port in fluid communication with a vacuum port of the proximal handle portion, the vacuum port adapted to create suction at the suction port when a vacuum is applied to the vacuum port, wherein the suction port is configured to engage a tissue surface to be injected to stabilize the distal tip portion adjacent the tissue surface and the needle is configured to extend from the distal tip portion at the angle, extend into the tissue surface at a location on of the tissue surface outside of an engagement region between the suction port and the tissue surface.
Another embodiment of the present invention is an injection catheter comprising: a proximal handle portion comprising a vacuum port; a delivery catheter coupled to the proximal handle portion and comprising a distal tip portion, the distal tip portion comprising: an extensible and retractable needle, wherein the needle is configured to deflect at an angle displaced from a longitudinal axis of the distal tip portion, and a suction port in fluid communication with a vacuum port of the proximal handle portion, the vacuum port adapted to create suction at the suction port when a vacuum is applied to the vacuum port, wherein the suction port is configured to engage a tissue surface to be injected at a first location and the needle is configured to extend from the distal tip portion at the angle and extend into the tissue surface at a second location displaced from the first location.
Another embodiment of the present invention is an injection catheter comprising: a proximal handle portion comprising fluid port; a delivery catheter coupled to the proximal handle portion and comprising a distal tip portion, the distal tip portion comprising: an extensible and retractable needle, a tip deflector configured to deflect the needle in a first direction at an angle displaced from a longitudinal axis of the distal tip portion, and a balloon coupled to the distal tip portion and in fluid communication with the fluid port, the balloon configured to be deployed in response to fluid delivered to the fluid port of the proximal handle portion and delivered to the balloon to extend the balloon in a second direction distinct from the first direction and to bias or displace the needle toward a tissue surface to be treated.
The foregoing and other aspects, features, details, utilities, and advantages of the present invention will be apparent from reading the following description and claims, and from reviewing the accompanying drawings.
The catheter device 10 includes a handle portion 12 and a delivery catheter 14. The handle portion 12 of the catheter device 10 includes a plurality of connection points, such as ports, hubs, and connectors for coupling one or more devices to the handle portion 12 of the catheter device 10.
In the particular implementation shown in
The connectors are operably coupled to one or more devices disposed at the distal tip 24 of the delivery catheter 14. The vacuum port 16, for example, is operably coupled to a suction port 28 disposed along a side edge of the distal tip 24 of the delivery catheter 14. In one implementation, the vacuum port 16 and the suction port 28 are coupled via one or more lumens extending from the vacuum port 16 in the handle portion 12 through the delivery catheter 14 to the distal tip 24 of the delivery catheter 14. As a vacuum is drawn at the vacuum port 16 of the catheter device 10, the suction port 28 at the distal end 24 of the delivery catheter 14 is in fluid communication with the vacuum port 16, and suction is imparted to the suction port 28. As described in more detail below, the suction may be used to stabilize the distal tip 24 of the delivery catheter 14, to evacuate fluid or debris from the area in which the tip of the catheter is disposed, and/or to deliver a fluid (e.g., a saline wash or saline with contrast) to an area near the tip 24 of the delivery catheter 14.
Similarly, a retractable and extensible injection needle 26 disposed at the distal tip 24 of the delivery catheter 14 is operatively coupled to the needle hub 18. In one implementation, for example, the injection needle 26 is in fluid communication with the needle hub for delivering one or more injectable polymer, cells, drugs, device, biologics or any combination thereof to a location adjacent the distal tip 24 of the delivery catheter 14. The injection needle 26 may be in fluid communication with the needle hub 18 via a lumen, via a needle cannula, or other fluid communication path extending from the needle hub 18 of the handle portion 12 through the delivery catheter 14 to the needle 26 extending from the tip 24 of the delivery catheter 14. The lumen, cannula, hyper needle or other fluid communication path can be designed to reduce or minimize a pressure level required to deliver an injectable material to the needle. A diameter or width of the fluid communication path sufficient to allow the injectable material to flow through the path from the needle hub 18 to the injection needle 26 depending on the characteristics of the injectable material. The dimensions of the fluid communication path may be different depending on the viscosity or other characteristics of the injectable material to ensure that the material is able to flow to the injection needle 26 without overwhelming resistance. The fluid communication path may be larger for a relatively viscous material, such as an injectable polymer, than for an injectable saline solution, for example. In one implementation, for example, an internal diameter of a needle lumen (see, e.g., needle lumen 48 in
During delivery of the delivery catheter 14, the injection needle 26 can be retracted within the tip 24 of the delivery catheter 14 to prevent the needle from reducing the maneuverability of the catheter and to prevent harm to a patient. Once the tip 24 of the delivery catheter is at a desired site, the injection needle 26 can be extended from the tip 24 of the catheter and injected into a tissue of a patient. As shown in
Although not drawn to exact scale,
The angulation of the injection needle 26 may be accomplished in a number of ways. In one example implementation, for example, a stainless steel or other rigid needle may be deflected by a tip deflector 32, or other rigid surface, such as shown in
In another example implementation, a shape memory alloy needle, such as a Nitinol needle, may be pre-bent at an angle and then straightened when placed in the delivery catheter 14. A structure of the catheter, such as a lumen, maintains the shape memory alloy material in a straight configuration. However, when the needle is extended outside of the lumen or other structure (e.g., a hyper needle) of the catheter, the shape memory alloy needle reverts to its pre-bent state and can be angled downwards past the suction port disposed on a lower surface of the tip of the catheter. In some implementations, the tip deflector or another structure in the tip of the catheter can direct the shape memory alloy in the correct direction. In other implementations, however, the shape memory alloy needle can be oriented within the catheter so that, upon its resumption of the pre-bent shape, it is already oriented in the predetermined angle and direction.
In implementations where the suction port 28 stabilizes the tip 24 of the catheter 14 by engaging a surface such as a tissue of a patient, the injection needle 26 can be extended beyond an outer dimension of the suction port 28 disposed on a bottom edge of the catheter tip 26 to inject the needle into the adjacent tissue of a patient displaced (e.g., laterally displaced) from the location on the tissue surface where the suction port is engaging the tissue. Thus, the needle is able to be inserted into the tissue at a location outside of where the suction port is engaging the tissue. In some procedures, for example, the injection needle 26 may be extensible into the tissue from about 3 mm to about 5 mm to inject a material or other injectable into the tissue. Depending on the particular procedure, however, the injection needle may be designed to extend any desired distance into the tissue.
In one implementation, the needle may include a locking mechanism, such as a luer lock system disposed at a proximal end (near the handle portion 12) that would prevent or reduce backwards movement of the needle during operation, such as due to movements within a beating heart.
The camera 22 is also mounted to the tip 24 of the delivery catheter 14 so that the operation of the needle as well as movement of the catheter is captured by the camera and communicated back through the camera lead 20 for display to a surgeon operating the catheter device 10 providing visible feedback for the surgeon. In one implementation, for example, the camera 22 comprises a CMOS camera with a fiber optic link communicating through a lumen of the delivery catheter 14 to the camera lead 20 extending from the handle portion of the catheter device for display on a monitor where it may be viewed during operation of the catheter device 10. In one implementation, an illumination device may also be used in cooperation with the camera 22. The illumination device may be incorporated with the camera or may be separate from the camera and disposed at the tip of the delivery catheter to illuminate a region near the tip during a procedure.
The handle portion 12 further includes a steering device 30. In the particular implementation shown in
Section views shown in
As shown in
An example implementation of a tip deflector is shown in detail in
In use, the suction created at the suction port 28 stabilizes the tip 24 of the delivery catheter 14 by holding the suction lip 40 in contact with a tissue surface of a patient. In one implementation, for example, the tissue surface comprises a myocardium of a heart and the suction port can stabilize the tip 24 between the myocardium and the pericardial sac of the heart.
In various implementations, the catheter device 10 may include a suction port 28 stabilization device and/or a balloon stabilization device to stabilize the tip 24 of the delivery catheter during a procedure. Where both a suction port stabilization device and a balloon stabilization component are provided, an operator may decide whether to use one or both of the stabilizing components depending on the circumstances of the procedure.
In the example shown in
Example Surgical Procedure
In one particular implementation, a minimally invasive procedure to deliver a compound, such as the Algisyl-LVR® material, to the myocardium through the epicardial space in a beating heart procedure is performed using the catheter device 10. Although this example surgical procedure discloses injecting a particular compound, the Algisyl-LVR® material, the use of the catheter device 10 is not so limited. As discussed above, the catheter device 10 may be used to inject any injectable material or device, such as but not limited to any substrate such as cells, drugs, biologics, devices or any combination thereof. Example surgical operations include any combination or sub-combination of the following.
Although embodiments of this invention have been described above with a certain degree of particularity, those skilled in the art could make numerous alterations to the disclosed embodiments without departing from the spirit or scope of this invention. All directional references (e.g., upper, lower, upward, downward, left, right, leftward, rightward, top, bottom, above, below, vertical, horizontal, clockwise, and counterclockwise) are only used for identification purposes to aid the reader's understanding of the present invention, and do not create limitations, particularly as to the position, orientation, or use of the invention. Joinder references (e.g., attached, coupled, connected, and the like) are to be construed broadly and may include intermediate members between a connection of elements and relative movement between elements. As such, joinder references do not necessarily infer that two elements are directly connected and in fixed relation to each other. It is intended that all matter contained in the above description or shown in the accompanying drawings shall be interpreted as illustrative only and not limiting. Changes in detail or structure may be made without departing from the spirit of the invention as defined in the appended claims.
This application claims the benefit of U.S. Provisional Patent Application Ser. No. 61/801,625 filed Mar. 15, 2013, which hereby is incorporated herein in its entirety by reference thereto.
Number | Date | Country | |
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61801625 | Mar 2013 | US |