CRYOCLAMP AND METHOD OF USE
20170224401 ยท 2017-08-10
Inventors
- John M. Baust (Owego, NY)
- John G. Baust (Owego, NY)
- Roy E. Cheeks (Harpers Ferry, WV, US)
- Anthony Robilotto (Binghamton, NY)
Cpc classification
A61B18/1445
HUMAN NECESSITIES
A61B2018/0212
HUMAN NECESSITIES
A61B2018/0225
HUMAN NECESSITIES
A61B2090/064
HUMAN NECESSITIES
A61B2090/0811
HUMAN NECESSITIES
A61B2017/00398
HUMAN NECESSITIES
International classification
Abstract
A cryogenic medical device is disclosed for use in minimally invasive surgical procedures. Various configurations of cryoprobes are designed in combination with a clamp to form a cryoclamp for the treatment of damaged, diseased, cancerous or other unwanted tissues. The device is an integrated cryoablation probe with a hinged clamp that allows for single entry into the chest cavity through a thorascopic port, by surgical or other means. The integrated cryoablation probe allows for the clamping of tissue as well as freezing with a single device. The clamp acts as an outer sheath so that when closed, directional freezing of the cryoprobe is achieved on the opposing probe surface away from the clamp or on an internal surface that is between the clamp. The cryoclamp may be a removable attachment or integrated into the unitary device.
Claims
1. A cryoinstrument comprising: a longitudinal body having at least one treatment surface including an external surface thereof and integral with the longitudinal body, wherein the at least one treatment surface is a freeze segment; an articulating joint attached to at least a portion of said longitudinal body; and an extension having a proximal end and a distal end, wherein the proximal end of the extension is directly coupled to the articulating joint, and the extension is movable relative to the longitudinal body; and a supply line extending longitudinally along said longitudinal body, said supply line supplying a cryogenic fluid medium to a distal end of said longitudinal body to directly cool said at least one treatment surface; a return line extending longitudinally along said longitudinal body, said return line recovering said cryogenic fluid medium from said distal end of said longitudinal body after said cryogenic fluid medium directly cools said at least one treatment surface, wherein said articulating joint reversibly adjusts to an open position and a closed position to form a clamp for securing said tissue structure between said longitudinal body and said extension, and wherein in the closed position, the extension is longitudinally aligned with and parallel to the longitudinal body.
2. The cryoinstrument of claim 1, wherein said articulating joint is integral with said longitudinal body.
3. The cryoinstrument of claim 1, wherein said longitudinal body is a probe or a catheter.
4. The cryoinstrument of claim 1, wherein said extension is a probe or catheter.
5. The cryoinstrument of claim 3, wherein said extension is a thermal insulator.
6. The cryoinstrument of claim 1, further comprising a second articulating joint that reversibly adjusts to an open position and a closed position for providing a range of motion of said clamp.
7. The cryoinstrument of claim 1, wherein said articulating joint is an attachable component removably positioned with said longitudinal body.
8. The cryoinstrument of claim 1, wherein said extension is removable.
9. The cryoinstrument of claim 1, wherein said extension is configured to be reversibly secured to said tissue structure.
10. The cryoinstrument of claim 1, wherein said freeze segment has a length in the range of 0.5 cm to 15 cm.
11. The cryoinstrument of claim 1, wherein said longitudinal body has a diameter in the range of 1.5 mm to 10 mm.
12. The cryoinstrument of claim 3, wherein said probe or said catheter utilizes said cryogenic fluid medium for cooling.
13. The cryoinstrument of claim 1, wherein said clamp includes one of the following configured to operate the clamp: a motorized component, a pull wire, hydraulics, pneumatics, or a remote control device.
14. The cryoinstrument of claim 1, further comprising a sensor configured to monitor or control one or more of the following: a temperature, a pressure, a position, or an electrophysiology measurement.
15. The cryoinstrument of claim 1, wherein said cryogenic fluid medium comprises at least one of: nitrogen, carbon dioxide, argon, nitrous oxide, propane, or any combination thereof.
16. The cryoinstrument of claim 1, wherein said cryogenic fluid medium includes supercritical nitrogen.
17. A medical instrument comprising: a longitudinal body having at least one treatment surface including an external surface thereof and integral with said longitudinal body, said at least one treatment surface configured to provide cooling, using a cryogenic fluid medium, for treating a tissue from said external surface of said longitudinal body toward said tissue; an articulating joint attached to at least a portion of said longitudinal body; an extension having a proximal end and a distal end; a supply line extending longitudinally along said longitudinal body, said supply line supplying said cryogenic fluid medium to a distal end of said longitudinal body to directly cool said at least one treatment surface; and a return line extending longitudinally along said longitudinal body, said return line recovering said cryogenic fluid medium from said distal end of said longitudinal body after said cryogenic fluid medium directly cools said at least one treatment surface, wherein the proximal end of said extension is directly coupled to said articulating joint, and the extension is movable relative to the longitudinal body, and wherein said articulating joint reversibly adjusts to an open and closed position to form a clamp for securing a tissue structure between said longitudinal body and said extension, and wherein in the closed position, the extension is longitudinally aligned with and parallel to the longitudinal body.
18. The medical instrument of claim 17, wherein said treatment surface is a freeze segment that utilizes a cryogenic treatment and creates a directional freeze zone.
19. The medical instrument of claim 17, wherein said at least one treatment surface is disposed on the external surface of the longitudinal body such that the treatment surface faces toward the movable extension.
20. The medical instrument of claim 17, wherein said at least one treatment surface is disposed on the external surface of the longitudinal body such that the treatment surface faces outward and away from the movable extension.
21. The medical instrument of claim 17, wherein said longitudinal body comprises one or more probes or catheters.
22. The medical instrument of claim 17, wherein said longitudinal body deflects at said articulating joint, alone or in combination with said extension, to form a diverted probe or catheter.
23. The medical instrument of claim 22, wherein said one or more probes or catheters create a linear freeze zone, alone or in combination.
24. The medical instrument of claim 17, wherein said cryogenic fluid medium comprises any of the following: nitrogen, carbon dioxide, argon, nitrous oxide, propane, and any combination thereof.
25. The medical instrument of claim 17, wherein said cryogenic fluid medium includes supercritical nitrogen.
26. A method of using said medical of claim 17, said method comprising the steps of: preparing said medical instrument for contact with a tissue internal to a mammalian body; positioning said tissue in a first position between said longitudinal body and said extension; securing said tissue into a clamped position; activating a first procedure, said first procedure being an ablative treatment, wherein said ablative treatment is performed using said supercritical nitrogen; ceasing said ablative treatment; and removing said medical instrument from said tissue.
27. The method of claim 26, wherein said ablative treatment comprises cryoablation.
28. The method of claim 26, further comprising a step of adjusting said medical instrument to a second position for a second procedure.
29. The method of claim 26, wherein said cryoablation utilizes a probe or catheter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The invention is best understood from the following detailed description when read with the accompanying drawing figures. It is emphasized that the various features are not necessarily drawn to scale. In fact, the dimensions may be arbitrarily increased or decreased for clarity of discussion.
[0018]
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION
[0023] In the following detailed description, for purposes of explanation and not limitation, exemplary embodiments disclosing specific details are set forth in order to provide a thorough understanding of the present invention. However, it will be apparent to one having ordinary skill in the art that the present invention may be practiced in other embodiments that depart from the specific details disclosed herein. In other instances, detailed descriptions of well-known devices and methods may be omitted so as not to obscure the description of the present invention.
[0024] A side view of a cryoclamp in accordance with one embodiment of the present invention is illustrated in
[0025] In one embodiment, the clamp component is mechanically engineered for manual operation. Another embodiment utilizes a cabling material to provide adjustable forces and tension in clamping the tissue. A pressurized pneumatic cylinder or hydraulic device would also be capable of controlling the operation of the clamp (e.g. from an open to closed position and vice versa). In other aspects, the mechanical operation of the clamp may include motorized components, pull-wires, hydraulics, and pneumatics. The clamp may also have a controllable articulation that can be achieved by a micro-sized motor. Any manual or computerized remote control operation of the device is possible. In one aspect, the remote control operations are wireless controls including various sensors for monitoring and controlling temperature, pressure, positioning of the clamp, and electrophysiology measurements. In another aspect, the remote control operation is wired to the handheld device or directly to the cryosystem, such that all control mechanisms would originate from a central location (whether that be at the cryosource, within the handheld instrument itself, or within a remote control separate from the medical device).
[0026] In
[0027]
[0028]
[0029] In one embodiment, the probe/catheter extension 404 is a rigid structure. In another embodiment, the probe extension 404 is a flexible tip. Also, sensors along and adjacent to the probe may be positioned on one or more surfaces for the electrical monitoring of the heart or even for temperature monitoring. In other aspects, any number or type of sensors may complement functionality of the probe.
[0030] In addition, the probe extension 404 may also incorporate a heating element for warming the device post-treatment. Various aspects of a heating/warming system would include electrical components and/or material compositions compatible with the use of various cryogens and the use of warmer gases.
[0031] In addition, the control of the device can be positioned as a trigger control of a hand-held device, remote from a cryogen generator or system. The trigger may have automatic or manual functionality, having a push button control, pull mechanism, or operate as any mechanical trigger. Further, in another aspect, the cryoclamp device 400 and cryogenic generator may be a unitary integral device, handheld, and utilized in a procedure similar to the cryoinject model (e.g. a smaller scale cryogun device separate from the larger and less transportable cryogenic console and attached cryoprobe design).
[0032] One embodiment, as depicted in
[0033] In one embodiment, the device of the invention could be comprised of materials compatible and desirable for use in the medical field. For exemplary purposes, and not limitation, such materials could include metals: stainless steel, copper, gold, aluminum, and tungsten may be of choice. Aluminum may be desirable because it is light weight, inexpensive, easy to machine, biocompatible, and nonmagnetic for MRI use. Other metals, plastics/polymers, and various compositions thereof, however, may be integrated in the material composition to fully realize the various potential applications for utilizing the device. Optical components and/or monitoring sensors may also be desirable to provide for visualization and automatic functioning of the device.
[0034] The embodiments of the present invention may be modified to take the shape and have dimensions of any device or apparatus currently used in the industry. Specifically, probe structures utilized to date in cryotherapy or alternative treatment therapy probes, such as those used in radiofrequency treatment, may be modified to include an integration point and clamp attachment. The clamp is compatible with any fluid cryogen system (i.e. gas, liquid, critical or supercritical fluid) at any temperature or pressure, including supercritical nitrogen systems. The clamp may be utilized with any type of cryoprobe, rigid or flexible, including but not limited to surgical probes and catheters. The modified devices and systems which include the integrated clamp design would therefore allow for improved cryogenic or radiofrequency treatment options. Further, any number or combination of arms or clamps may be integrated in combination with the components of the above device. The device and/or system may take many forms and be of any size, shape, or dimension. Any number of sensors or control mechanisms may also be utilized to facilitate operation of the device/system.
[0035] For exemplary purposes, and not limitation, the cryoclamp may be a miniaturized version and compact so as to slide through a minute incision. In another aspect, the device may include a locking mechanism while the clamp is in the closed (or open) position. The locking mechanism would ensure that the clamp remains in closed position during the entry and removal from the incision; and then controllably release to clamp and secure the desired tissue. The locking mechanism also serves as a safety feature in precisely locating and securing the desired tissue, whereby sensors therein would add an additional feature to ensure adjacent tissue is not adversely affected.
[0036] As presented, the multiple embodiments of the present invention offer several improvements over standard medical devices currently used in the cryogenic industry. The improved cryogenic medical devices disclosed herein remarkably enhance the utilization of a cryoprobe for the freezing of targeted tissue. The present invention provides cost savings in the integrated structure, while reducing the invasiveness of treatment. The previously unforeseen benefits have been realized and conveniently offer advantages for the treatment of multiple disease states. In addition, the improvements enable construction of the device as designed to enable easy handling, storage, and accessibility.
[0037] As exemplified, the device may include any cryoprobe or radiofrequency probe with the capacity to integrally incorporate any combination of the disclosed integrated structure(s). The invention being thus described, it would be obvious that the same may be varied in many ways by one of ordinary skill in the art having had the benefit of the present disclosure. Such variations are not regarded as a departure from the spirit and scope of the invention, and such modifications as would be obvious to one skilled in the art are intended to be included within the scope of the following claims and their legal equivalents.