SYSTEMS AND METHODS FOR DISSECTION TOOLS - Patent application
The fluid-driven tissue dissection system addresses the limitations of RF energy devices by providing precise and minimally invasive tissue ablation with controlled fluid pressure, enhancing diagnostic accuracy and reducing collateral damage.
Patent Information
- Application Number
- JP2022508772
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-08-15
- Filing Date
- 2020-08-11
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2040-08-11
AI Technical Summary
Existing medical devices for tissue ablation, such as those using radio frequency (RF) energy, often cause collateral tissue damage, delay diagnosis confirmation, and result in postoperative complications due to tissue destruction, necessitating a fast, accurate, and precise method with minimal collateral damage.
A medical device utilizing a fluid-driven system for tissue dissection, which includes a tubular member with a nozzle emitting a fluid jet at controlled pressure to pierce tissue, combined with RF energy delivery for coagulation and hemostasis, minimizing collateral damage and preserving tissue structure.
The fluid-driven system enables precise tissue ablation with reduced heat generation, controlled ablation depth, and minimal blood loss, while preserving tissue structure for accurate diagnosis and treatment confirmation.
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Abstract
Description
[Technical field]
[0001] The present disclosure relates generally to medical devices, including endoscopic devices for tissue resection. In particular, embodiments of the present disclosure relate to systems and devices for fluid-driven endoscopic dissection tools. [Background technology]
[0002] Tumor ablation and other tissue treatments are often performed by medical devices (e.g., endoscopic devices) by delivering radio frequency (RF) energy to destroy tissue. In the case of malignant tumor ablation, it may be desirable to preserve tissue structure to confirm accurate diagnosis and to confirm complete removal and treatment of tissue. Because tissue structure may be destroyed during RF energy delivery, medical confirmation of successful tissue ablation may be delayed or incomplete. For example, destroyed tissue structure may delay or inhibit proper biopsy and classification of treated tissue. RF energy delivery devices may also cause postoperative complications and tissue artifacts, for example, as a result of delayed tissue effects. Thus, there is a need for a fast, accurate, and precise method with minimal collateral tissue damage. Summary of the Invention
[0003] According to one example, a medical device is provided. The medical device includes a body having a proximal end with a proximal opening. The body defines a channel from the proximal opening along a longitudinal axis of the body to a distal opening configured to emit a fluid jet. The body has a surface extending transverse to the longitudinal axis and further includes a distal wall surface facing the distal opening to receive the fluid jet. The body defines a space between the distal wall surface and the distal opening. The distal wall includes a protrusion configured to engage tissue.
[0004] In another exemplary embodiment, a medical device includes a tubular member having a proximal end and a distal end coupleable to a fluid source. The medical device has a fluid channel disposed within the tubular member and configured to supply fluid from the proximal end of the tubular member through the tubular member to the distal end. The medical device has a nozzle located at the distal end of the tubular member. The nozzle is configured to emit a fluid jet along a longitudinal axis. A distal wall has a surface extending transverse to the longitudinal axis and faces the nozzle to receive the fluid jet. The wall includes a protrusion configured to engage tissue. The medical device defines a space between the nozzle and the distal wall.
[0005] In another embodiment, a method of medical tissue is provided that includes positioning a medical device adjacent to tissue of interest, engaging the tissue of interest with prongs of the medical device to hold the medical device in position adjacent to the tissue of interest, and ejecting a fluid from a distal opening of the medical device along a longitudinal axis toward a distal wall surface of the medical device, the fluid perforating the tissue of interest.
[0006] In some exemplary embodiments, the distal opening emits a fluid jet at a pressure that pierces tissue. The pressure of the fluid jet may be 1723.69 kilopascals (250 pounds per square inch) or less and the distal opening may have a diameter of about 1 millimeter or less. The proximal opening has a diameter larger than that of the distal opening. The channel tapers in cross-sectional size from the distal opening to the proximal opening and the protrusions include one or more sharp tips for engaging tissue.
[0007] In an additional embodiment, the body further comprises a valve and a spring, the valve being fixedly coupled to the spring and disposed proximate the spring and disposed between the proximal and distal openings of the tubular member. The body may be conductive for delivering radio frequency (RF) energy to tissue. The RF energy delivered to the body is conducted to the distal wall surface. The body comprises a bottom surface disposed along the longitudinal axis between the proximal opening and the distal wall surface for defining a tissue engaging region. The medical device also comprises a flexible tube coupled to the proximal end of the body. The flexible tube has a channel for delivering a fluid to the body. The flexible tube comprises a conductive tube, wire, cable, or braid for delivery of radio frequency (RF) energy to the body.
[0008] It can be understood that both the foregoing general description and the following detailed description are exemplary and explanatory only and are not limiting of the invention as claimed. As used herein, the terms "comprises," "comprises," or any other variation thereof, are intended to cover non-exclusive inclusions, whereby a process, method, article, or device that comprises a list of elements does not include only those elements, but may include other elements not expressly listed or inherent to such process, method, article, or device. The term "exemplary" is used in the sense of "example" rather than "ideal." As used herein, the term "proximal" means a direction closer to the operator and the term "distal" means a direction further from the operator. Although endoscopy is referenced herein, such reference should not be construed as limiting the possible applications of the disclosed tools. For example, the disclosed tools may be used in procedures such as bronchoscopy, ureteroscopy, colonoscopy, or other procedures within the body.
[0009] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate examples of the present disclosure and, together with the description, serve to explain the principles of the disclosure. [Brief description of the drawings]
[0010] [Figure 1] 1 is a perspective view of a medical device for performing fluid-driven tissue dissection according to one embodiment of the present disclosure; [Figure 2A] FIG. 2 illustrates a distal end of the medical device of FIG. 1. [Figure 2B] FIG. 2 illustrates a distal end of the medical device of FIG. 1. [Diagram 3] 2 is a cross-sectional view of the medical device of FIG. 1. [Figure 4A] 13 is a cross-sectional view of another embodiment of a medical device. [Figure 4B] 13 is a cross-sectional view of another embodiment of a medical device. [Figure 4C] 13 is a cross-sectional view of another embodiment of a medical device. [Diagram 5] 13 is a cross-sectional view of yet another embodiment of a medical device according to the present disclosure configured to perform dual fluid-driven tissue dissection and RF energy delivery to tissue. [Figure 6] 13 is an exemplary flow chart illustrating operations for performing fluid-driven tissue dissection. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0011] Tissue dissection, and particularly tissue / tumor resection and removal, may benefit from medical devices that implement fast, accurate, and precise methods with minimal collateral tissue damage. Such medical devices may be more effective and advantageous than medical devices that only provide radio frequency (RF) energy to perform tissue ablation, for example, by preserving tissue structures for medical diagnosis confirmation and for effective tissue treatment. In some embodiments, fluid may be provided to perform tissue dissection techniques (e.g., submucosal dissection). The fluid-driven system may be configured to effectively dissect or ablate tissue with high precision and low heat generation. The fluid-driven ablation system may also be combined with RF energy delivery techniques or other energy delivery techniques to provide coagulation and hemostatic functions during tissue ablation. In one example, fluid-driven tissue ablation techniques may lead to reduced blood loss during surgical procedures, and the low temperature helps preserve tissue and vascular structures. The ablation depth may also be controlled by variable fluid pressure application. Accordingly, aspects of the present disclosure are directed toward medical devices having a fluid-driven tissue ablation system.
[0012] Reference is now made to FIG. 1. FIG. 1 illustrates an exemplary medical device 102. The medical device 102 may be, for example, an endoscopic medical device, such as a catheter, used to perform a tissue resection method (e.g., submucosal tissue dissection). The medical device 102 has a tubular member 104 with a proximal end (not shown) and a distal end 106. The tubular member 104 may be any known or envisioned tubular member 104 used for medical procedures, such as endoscopy, for example, a flexible tubular member with one or more channels or lumens disposed therein and extending between the proximal and distal ends 106 of the tubular member 104 for medical operations. In one example, the tubular member 104 is a catheter, which may be solid, slotted, braided, injection molded, or reflowed. As shown in FIG. 1 and FIG. 2A, at least a distal portion of the tubular member 104 has slots, for example, to add flexibility to the tubular member 104. The slotted portion may extend to a non-slotted portion at the distal end 106 that couples to the body 108 described below. In one example, the tubular member may be a pusher device. The medical device 102 also has a handle (not shown) connected to the proximal end of the tubular member 104. An operator may use the handle to perform operations of the medical device 102, including operations described by examples herein. The handle may be any known or envisioned handle used for medical procedures and may include appropriate ports and plugs for fluid and / or energy supply. The medical device 102 also has a fluid supply mechanism (not shown) located at the proximal end of the tubular member 104. The fluid supply mechanism may or may not be part of the handle and allows fluid to flow from the proximal end of the tubular member 104, through one or more internal channels or lumens, to the distal end 106, and ultimately to the body 108 to perform the fluid-driven tissue ablation techniques described herein. In one example, the fluid supply mechanism may include a fluid source disposed at the proximal end of the tubular member 104, for example, within the handle.In another example, the fluid supply mechanism may be a mechanism for driving fluid from a remote fluid source through the tubular member 104 (eg, a pump).
[0013] The medical device 102 also includes a body 108 disposed at the distal end 106 of the tubular member 104. The body 108 has a proximal end 110 and a distal end 112. In one example, the proximal end 110 of the body 108 is configured to interface / engage with the distal end 106 of the tubular member 104. For example, the body 108 may be plugged into a mating component at the distal end 106 of the tubular member 104. It should be appreciated that any internal working channels and / or lumens may be aligned with the body 108 and the tubular member 104. In other examples, the body 108 may be integrally formed with the tubular member 104 (e.g., by being bonded or otherwise attached or attached to the tubular member 104) and permanently secured thereto. The body 108 has a proximal opening (not shown in FIG. 1) and a distal opening 109 .
[0014] FIG. 1 also shows a tissue boundary 114. The tissue boundary 114 may be any tissue layer within the human body. FIG. 1 also shows a target tissue at reference number 116. In one example, the target tissue 116 may be a tumor located within the gastrointestinal (GI) endothelium, but it should be appreciated that the target tissue 116 may be any tissue in the human body. The techniques described herein enable treatment of the target tissue 116, for example, by providing a fluid-driven tissue ablation method. FIG. 1 shows a distal end 112 of the body 108 embedded beneath the tissue boundary 114. Reference number 118 indicates a direction in which fluid may be delivered at a sufficiently high pressure to perforate the tissue boundary 114 and tissue region 120 where treatment is being applied. Finally, the medical device 102 is used to ablate the target tissue 116. These systems and methods are described in more detail herein.
[0015] Reference is now made to FIG. 2A, which illustrates a body 108 at the distal end 106 of the tubular member 104 according to one exemplary embodiment. As discussed above, the body 108 is configured to interface with the tubular member 104, for example, by plugging into an opening at the distal end 106 of the tubular member 104 (not shown in FIG. 1). The body 108 has a proximal opening (not shown in FIG. 1) and a distal opening 109, as shown in FIG. 1. An intermediate fluid channel (not shown in FIG. 1) is formed in the body 108 between the proximal opening of the body 108 and the distal opening 109 of the body 108, as described herein. It should be appreciated that in one example, the intermediate fluid channel aligns with at least one channel or lumen of the tubular member 104 (e.g., a catheter). FIG. 2A illustrates a fluid jet 210 emanating from the distal opening 109 of the body 108 along an axis (e.g., a longitudinal axis) 2A also shows the direction of fluid flow along the axis at reference numeral 211. The proximal opening of the body 108 is configured to interface with and receive fluid from a fluid supply device (e.g., a fluid supply mechanism described in connection with FIG. 1) that is internal and / or external to the medical device 102. The distal opening 109 of the body 108 is configured to emit a fluid supplied from the fluid supply device. An intermediate fluid channel (not shown in FIG. 2A) is formed in the body 108 between the proximal opening of the body 108 and the distal opening 109 of the body 108, as described herein. In one example, the fluid supply device can be a fluid lumen or channel disposed within the tubular member 104 of the medical device 102 such that a fluid (e.g., water or saline) is supplied from a source at a proximal end of the medical device 102 to the proximal opening of the body 108 for discharge through the distal opening 109 of the body 108. In this example, the body 108 is configured to provide a fluid jet 210 as the fluid is emitted from the fluid delivery device.
[0016] The fluid jet 210 may be a fluid jet of water, saline, or other liquid delivered at sufficient fluid pressure for tissue ablation. For example, the fluid jet 210 may be emitted through the distal opening 109 of the body 108 at a fluid pressure of up to 60 atmospheric pressure bars ("bar"), or up to about 870 pounds per square inch (psi). In one embodiment, if the diameter of the distal opening 109 of the body 108 is 1 millimeter (mm), the fluid jet 210 is emitted at a fluid pressure of 250 psi or less. It should be appreciated that suitable fluid pressures may vary depending on system and device parameters, including, but not limited to, tissue type, the fluid used for the fluid jet 210, the diameter of the distal opening 109 of the body 108, etc. In one example, the diameter of the distal opening 109 varies based on the channel of the tubular member 104 and the desired size of the intended area of tissue impact of the fluid jet 210. For example, a fluid pressure between about 20-60 bar may be used for tissue resection, with the relatively low pressure providing a cleaner and more precise tissue perforation or penetration to minimize risk. In one example, if the distal opening 109 has a diameter of about 0.04 inches, a fluid pressure of less than about 250 psi may be sufficient to perforate tissue (e.g., muscle tissue, diseased tissue, or other type of tissue to be treated by the medical device 102), and if the distal opening 109 has a diameter of about 0.05 inches, a fluid pressure of less than about 100 psi may be sufficient to perforate tissue. Because the mucosal and submucosal layers of the GI tract may be tougher than muscle, a higher fluid pressure may be desirable for tissue resection of the mucosal and / or submucosal layers as opposed to fluid pressure for muscle tissue. In one example, a fluid pressure of about 600 psi can penetrate the mucosal and / or submucosal tissue. The fluid pressure can also vary based on the type of distal opening 109 (e.g., the internal shape and geometry of the distal opening 109).In one example, the distal opening 109 may be chamfered to distribute pressure or may be inwardly conical / tapered (tapering in a proximal to distal direction) to focus the fluid stream (e.g., fluid jet 210).
[0017] FIG. 2A also shows an outer surface of the distal wall 220. The distal wall 220 extends in a direction transverse to the longitudinal axis along which the fluid jet 210 is emitted. Referring to FIG. 2B, which shows a view of the body 108 according to an exemplary embodiment, a proximally facing inner surface of the distal wall 220 is indicated at 220a. The inner surface 220a faces the distal opening 109 of the body 108. When fluid is delivered through the body 108, the fluid jet 210 is emitted from the distal opening 109 of the body 108, and the fluid jet 210 is received at the inner surface 220a of the distal wall 220. FIG. 2B also shows the distal wall 220 having a protrusion 230 at an upper end of the distal wall 220, extending in a direction transverse to the longitudinal axis along which the fluid jet 210 is emitted. The protrusion 230 may be a relatively sharp tip of the distal wall 220 that points in a radially outward direction. The protrusions 230 are configured to engage tissue (e.g., pierce and / or be disposed on a tissue surface). For example, the protrusions 230 engage the tissue boundary 114 described in connection with FIG. 1 to guide or attach the body 108 to an area proximate the tissue of interest (e.g., target tissue 116) for eventual performance of the fluid-driven tissue ablation method described herein. In one example, the protrusions 230 are hooks or hook-like features configured to engage and attach to tissue. The protrusions 230 may include one or more tips or prongs.
[0018] There is a desire to minimize or mitigate unintended tissue penetration when the fluid jet 210 is emitted at a high enough fluid pressure to ablate tissue. In one example, an unmitigated fluid flow without a barrier to block the fluid jet 210 may quickly penetrate organs / tissues where tissue treatment is not intended. The protrusions 230 may prevent or limit unintended tissue penetration by blocking the fluid flow from passing through tissue acquired by the protrusions 230. The protrusions 230 provide a solid surface (e.g., inner surface 220a of distal wall 220) against which the fluid jet 210 impinges, which may dissipate the force of the fluid jet 210. As the fluid jet 210 impinges on a solid surface, the fluid may "bounce back." To mitigate or prevent unintended tissue penetration due to fluid splash back, the fluid splash back may be of low enough energy so as not to cause damage to surrounding healthy tissue (and to avoid, for example, obscuring a camera view of the operation). Thus, the protrusions 230 may be shaped to minimize the fluid energy of the rebound when the fluid jet 210 impacts the protrusions 230. For example, the solid surface (e.g., the inner surface 220(a) of the distal wall 220) may be flat, convex, or concave relative to the flow of the fluid jet 210. In general, the contours of the distal wall 220 and the protrusions 230 may be optimized in terms of distance from the distal opening 109, shape, material, and thickness to safely direct the rebound. Referring again to FIG. 2A, this diffusion is indicated at 240, where the fluid diffuses along the edges and sides of the body 108 and the distal wall 220, causing minimal or no unintended tissue penetration.
[0019] FIG. 2B also shows a bed region ("bed") 250 of the body 108. The bed 250, in one example, is a surface disposed along a longitudinal axis between the distal opening 109 of the body 108 and the distal wall 220 of the body 108. The bed 250 can define a space in the body 108 for receiving tissue between the distal opening 109 and the distal wall 220. In one example, the bed 250 is a surface connecting the inner surface 220a of the distal wall 220 to the side of the body 108 having the distal opening 109 of the body 108. The bed 250 can be used during a medical procedure to remove excised tissue from the patient's body. For example, after the target tissue 116 is treated by a fluid-driven ablation method, the body 108 can be manipulated such that the target tissue 116 is placed on the bed 250 and removed from the patient's body when the medical device 102 is removed. To assist in capturing the resected tissue and retaining it during retraction of the medical device 102 from the patient, the surface of the bed 250 may be treated with an adhesive coating or otherwise treated so that the resected tissue will adhere to the surface of the bed 250.
[0020] Reference is now made to FIG. 3, which shows a cross-sectional view of the medical device 102. FIG. 3 shows a cross-sectional view of the body 108 and the distal end of the tubular member 104 of the medical device 102. FIG. 3 shows an intermediate fluid channel 330 in the body 108 and a primary fluid channel 340 in the tubular member 104. As described in connection with FIG. 2A, the intermediate fluid channel 330 is formed between a proximal opening in the body 108 and a distal opening 109 of the body 108. In FIG. 3, fluid in the primary fluid channel 340 flows to the intermediate fluid channel 330 through a proximal opening of the body 108 (not shown in FIG. 3), as indicated by arrow 350. In other words, the proximal opening of the body 108 interfaces with the distal opening of the primary fluid channel 340, thereby allowing fluid to flow between the primary fluid channel 340 and the intermediate fluid channel 330. The intermediate fluid channel 330 is tapered from the proximal end to the distal end. In other words, the cross-sectional area and / or diameter of the intermediate fluid channel 330 decreases from its proximal end to its distal end. As a result, the fluid pressure increases as the fluid flows distally (indicated at arrow 360) through the intermediate fluid channel 330. Thus, the fluid flows at a higher pressure toward the distal end of the intermediate fluid channel 330 when compared to the fluid flow at the proximal end of the intermediate fluid channel 330 and when compared to the fluid flow in the primary fluid channel 340. As a result, as the fluid jet 210 exits the intermediate fluid channel 330 at the distal opening 109 of the body 108, the fluid jet 210 is emitted at a higher fluid pressure compared to the fluid pressure of the primary fluid channel 340. In this example, the distal opening 109 of the body 108 operates as a nozzle for emitting the fluid jet 210 at a high relative fluid pressure. As described herein, the fluid pressure of the fluid jet 210 is high enough to perform a tissue ablation operation. Splash is limited, as shown by the dissipation of water at reference 240.
[0021] Reference is now made to Figures 4A-4C, which show cross-sectional views of another embodiment of a medical device 102'. Figure 4A shows a tubular member 410, a distal end structure 420, and a body 425. The tubular member 410 may have the structure and function of the tubular member 104, and the body 425 may have the structure and function of the body 108. The distal end structure 420 may have the structure and function of the distal end 106. The distal end structure 420 further includes a valve 450 and a spring 460. In the example illustrated in Figure 4A, a fluid may be supplied to the distal end of the medical device 102'. At the distal end, after the fluid travels through the tubular member 410 to an intermediate fluid channel shown at 430, the intermediate fluid channel 430 retains the fluid as the intermediate fluid channel 430 narrows.
[0022] The valve 450 is located in a distal portion of the intermediate fluid channel 430, distal from a constriction 435 of the intermediate fluid channel 430. The constriction 435 has a smaller diameter and / or cross-sectional area than the portions of the channel 430 distal and proximal to the constriction 435. The valve 450 is not fixed relative to the intermediate fluid channel 430 and thus can translate longitudinally within the channel 430, for example along the direction indicated by arrow 405. A spring 460 is also located in a distal portion of the intermediate fluid channel 430, distal from the valve 450. The spring 460 is attached to the valve 450 at a proximal end of the spring 460.
[0023] The spring 460 and valve 450 are disposed between a proximal opening of the intermediate fluid channel 430, indicated at reference 462, and a proximal end of the body 425. In one example, the body 425 is joined to the distal end structure 420 such that the spring 460 is attached to a surface of the body 425 at the distal end of the spring 460. In one example, the spring 460 is a coil spring compressible upon application of pressure (e.g., upon application of fluid pressure along direction 405 relative to the valve 450). In one example, the valve 450 is a one-way valve that allows fluid to exit the intermediate fluid channel 430 in a single direction.
[0024] Reference is now made to Figures 4B and 4C. Figure 4B illustrates a closed state configuration of valve 450. In Figure 4B, arrows 470a-470c represent fluid flowing into intermediate fluid channel 430. Fluid pressure increases at arrow 470c as intermediate fluid channel 430 narrows toward valve 450. In Figure 4B, the valve is closed, and thus fluid does not exit intermediate fluid channel 430. Figure 4C illustrates an open state configuration of valve 450. In Figure 4C, once the fluid reaches a sufficient pressure (e.g., a threshold pressure), the proximal force exerted by spring 460 against valve 450 is overcome, and the pressure urges valve 450 distally (e.g., along direction 405) toward spring 460, thus compressing spring 460 distally. Once distal movement begins, the shape of valve 450 results in a larger area of valve 450 being exposed to fluid flow, causing valve 450 to open quickly. Thus, when the spring 460 is in a compressed state (e.g., when the valve 450 and spring 460 move distally beyond a threshold distance due to a threshold pressure), fluid may flow around the valve as shown at arrows 472a-472d and into an exhaust channel shown at reference 480. The exhaust channel 480 may extend from the proximal opening 462 to the distal end structure 420, such that fluid may flow, for example, in the direction of arrows 472a-472d, toward the body 425. The fluid leaves the exhaust channel 480 and flows toward the protrusion (e.g., protrusion 230). As the fluid pressure in the intermediate fluid channel 430 decreases (e.g., when fluid supplied to the device 102' decreases), the proximal pressure of the spring 460 against the valve 450 may become greater than the fluid pressure applied against the valve 450, and the valve 450 may retract (e.g., proceed proximally) to the closed state shown in FIG. 4B.
[0025] In one example, fluid is emitted from the middle fluid channel 430 at a constant or relatively constant pressure. Thus, the mechanism described in Figures 4A-4C allows fluid to be emitted from the exhaust channel 480 at a constant or near constant pressure, which avoids a scenario in which fluid pressure gradually increases during fluid ejection from the middle fluid channel 430 and the distal opening 462. In some examples, it is advantageous for fluid to be emitted from the exhaust channel 480 at a substantially constant pressure to avoid unintended tissue damage during periods of pressure increase or suboptimal tissue ablation.
[0026] Reference is now made to FIG. 5. FIG. 5 shows a cross-sectional view of yet another embodiment of a medical device at 500. In general, the device 500 is configured for fluid-driven tissue dissection and RF energy delivery to tissue. FIG. 5 shows a cross-sectional view of a tubular member 520 and a body 530. The tubular member 520 and the body 530 can have any of the structures and functions of the tubular members 104, 420 and the bodies 108, 410, respectively. The medical device 500 is advantageous for endoscopic procedures to provide a coagulation function by RF delivery in addition to the tissue ablation function performed by the fluid drive system. The body 530 can be bonded or otherwise attached to the tubular member 520. The body 530 is made of a metal or other conductive material. The body 530 is configured to conduct RF energy. For example, RF energy may be delivered to the body 530 via a conductive tube, wire, cable, or blade of the medical device 500. The conductive tube is indicated at 540 in a close-up view of the junction between the body 530 and the tubular member 520. The conductive tube 540 may be surrounded by insulation indicated at 550 (inner insulation) and 560 (outer insulation). The conductive tube 540 thus forms a conductive path for transmitting RF energy to the body 530 and ultimately to the distal wall 535 for coagulating tissue during a medical procedure. Thus, the RF active components of the body 530 include the distal wall 535. Thus, in one example, the distal wall 535 may act as a contact point to tissue for delivering RF energy for coagulation.
[0027] Reference is now made to FIG. 6, which shows an exemplary flow chart 600 illustrating operations for performing the fluid-driven tissue ablation technique described herein. In operation 610, an ablation device is placed in proximity to tissue of interest. The ablation device may be any of the medical devices 102, 102', 500 described herein. In operation 620, the tissue of interest is engaged with prongs of the ablation device to hold the ablation device in a position at the tissue of interest. In operation 630, fluid is emitted from a distal opening of the ablation device along a longitudinal axis toward a distal wall surface of the ablation device. The fluid ablates the tissue of interest.
[0028] Other embodiments of the present disclosure will be apparent to those skilled in the art from consideration of the specification and practice of the invention disclosed herein. It is intended that the specification and examples be considered as exemplary only, with a true scope and spirit of the invention being indicated by the following claims.
[0029] It should be understood that one or more of the aspects of any of the medical devices described herein may be used in combination with any other medical device known in the art, such as a medical imaging system or other scope, such as a colonoscope, bronchoscope, ureteroscope, duodenoscope, or other type of imaging device.
[0030] It should also be understood that one or more embodiments of any of the medical devices described herein may be used to resect, cut, or otherwise dissect tissue in any part of the human body. For example, any of the medical devices described herein may be used in medical procedures in which removal and / or detection of tissue is required.
[0031] Although the principles of the present disclosure have been described herein with reference to illustrative examples of specific applications, it should be understood that the present disclosure is not limited thereto. Those having ordinary skill in the art and access to the teachings provided herein will recognize that additional modifications, applications, and equivalent substitutions all fall within the scope of the examples described herein. Thus, the present invention should not be considered as limited by the foregoing description.
Claims
1. 1. A medical device comprising: a body having a proximal end with a proximal opening, the body defining a channel from the proximal opening to a distal opening, the channel configured to emit a fluid jet along a longitudinal axis of the body; the body further includes a distal wall surface extending transverse to the longitudinal axis and having an inner surface facing the distal opening for receiving the fluid jet, the body defining a space between the distal wall surface and the distal opening, the distal wall including protrusions configured to engage tissue, the protrusions providing a solid surface against which the fluid jet impinges, the distal opening configured to emit the fluid jet at a pressure to perforate the tissue, the solid surface provided by the protrusions being convex or concave relative to the flow of the fluid jet, The medical device, wherein the body further comprises a valve and a spring configured to receive fluid at the proximal opening and maintain the fluid within the body until a pressure of the fluid exceeds a predetermined threshold.
2. 10. The medical device of claim 1, wherein the pressure is less than or equal to 250 pounds per square inch.
3. The medical device of claim 1 or 2, wherein the distal opening has a diameter of about 1 millimeter or less.
4. The medical device of claim 1 , wherein the proximal opening has a diameter greater than a diameter of the distal opening.
5. The medical device of claim 1 or 4, wherein the channel tapers in cross-sectional size from the distal opening to the proximal opening.
6. The medical device of claim 1 , wherein the prongs include one or more sharp tips for engaging the tissue.
7. The medical device of claim 1 , wherein the valve is fixedly coupled to the spring, the valve and the spring being disposed between the proximal and distal openings, and the valve being located proximal to the spring.
8. 10. The medical device of claim 1 or 7, wherein the valve is a one-way valve and the spring is a coil spring having a distal end fixed within the body.
9. The medical device of claim 1 , wherein the body is an electrical medical device for delivering radio frequency (RF) energy to the tissue.
10. The medical device of claim 9 , wherein the radio frequency (RF) energy supplied to the body is conducted to the distal wall surface.
11. 11. The medical device of claim 1, wherein the body further comprises a bed disposed along the longitudinal axis between the distal opening and the distal wall surface for defining a tissue engaging region.
12. 12. The medical device of claim 1, further comprising a flexible tube coupled to the proximal end of the body, the flexible tube including a channel for supplying a fluid to the body.
13. The medical device of claim 12 , wherein the flexible tube comprises an electrically conductive tube, wire, cable, or braid for delivery of radio frequency (RF) energy to the body.
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