Claims
- 1. A tissue cutting device, comprising:
a housing; an electrode in communication with an energy source, the electrode being housed by the housing and configured to be at least one of flexible, extendable out of the housing, and retractable into the housing; at least one cutting area comprising an exposed portion of the electrode, the cutting area being configured to generally focus energy from the energy source to the at least one cutting area to facilitate initiation of a cut with the at least one cutting area in contact with tissue; and an insulating layer partially surrounding the electrode and configured to expose at least a portion of the electrode to define the at least one cutting area.
- 2. The tissue cutting device of claim 1, wherein the cutting area includes a cutting area extending in a direction along a length of the electrode.
- 3. The tissue cutting device of claim 1, comprising a plurality of cutting areas, the cutting areas generally aligned in a direction along a length of the electrode.
- 4. The tissue cutting device of claim 1, wherein the at least one cutting area includes at least one of a sharpened edge and a serrated edge.
- 5. The tissue cutting device of claim 1, wherein the cutting area is a protuberance defined by the electrode, the protuberance extending through an opening defined in the insulating layer.
- 6. The tissue cutting device of claim 1, wherein the at least one cutting area includes a plurality of the protuberances generally aligned in a direction along a length of the electrode.
- 7. The tissue cutting device of claim 1, wherein the at least one cutting area is defined by an opening defined by the insulating layer, further comprising a thermal insulator at least partially disposed in the opening defined by the insulating layer.
- 8. The tissue cutting device of claim 1, wherein the insulating layer includes a plurality of segments disposed along a length of the electrode, the segments being spaced apart relative to each other to expose at least a portion of the electrode to define the at least one cutting area.
- 9. The tissue cutting device of claim 1, wherein the insulating layer includes a plurality of segments disposed along a length of the electrode, each segment defining an opening to expose the electrode to define the at least one cutting area, the openings defined by the segments being generally aligned in a direction along a length of the electrode.
- 10. The tissue cutting device of claim 1, wherein the insulating layer comprises a material selected from the group consisting of plastic, polymer, parylene, polytetrafluoroethylene, polyimide, polyetheretherketone, polydimethylsiloxanes, ceramics, and glass.
- 11. The tissue cutting device of claim 1, further comprising a protective layer disposed between the electrode and the insulating layer, the protective layer having electrical insulation properties less than that of the insulating layer, the protective layer covering the at least one cutting area.
- 12. The tissue cutting device of claim 1, wherein the electrode comprises a nonconductive material and at least one discrete conductive area corresponding to the at least one cutting area, the conductive area being selected from the group consisting of a conductive coating on a surface of the nonconductive material and a conductive element disposed in the nonconductive material.
- 13. The tissue cutting device of claim 1, wherein the housing is a probe, the electrode being extendible and retractable out of and into the probe.
- 14. The tissue cutting device of claim 13, wherein the probe comprises the insulating layer, the electrode being extendible and retractable out of and into the probe.
- 15. The tissue cutting device of claim 13, further comprising an automated electrode oscillator coupled to the electrode and configured to oscillate the electrode back and forth along an axis generally defined by one of a length of the electrode and a width of the electrode.
- 16. The tissue cutting device of claim 1, wherein the electrode is a loop electrode and wherein the housing is a probe coupled to the loop electrode for positioning and moving the loop electrode in the tissue.
- 17. The tissue cutting device of claim 16, wherein the probe defines at least one opening from which the loop electrode is extendible out of the probe to at least one of a predetermined and variable size and is retractable into the probe.
- 18. The tissue cutting device of claim 16, wherein an angle between a plane generally defined by the loop electrode and an axis defined along the length of the probe is one of fixed and variable.
- 19. The tissue cutting device of claim 16, further comprising an automated electrode oscillator coupled to the loop electrode and configured to move the loop electrode back and forth in a plane generally defined by the loop electrode.
- 20. The tissue cutting device of claim 16, wherein the loop electrode includes a proximal end and a distal end and wherein the distal end is housed within the probe, the tissue cutting device further comprising a spring housed in the probe and coupled to the distal end of the loop electrode such that the spring expands and compresses within the probe as the proximal end of the loop electrode extends from and retracts into the probe, respectively.
- 21. The tissue cutting device of claim 16, wherein the loop electrode is configured to be oscillated relative to the probe in at least one of a direction generally along a length of the probe, a direction generally orthogonal to the length of the probe, a rotational direction about an axis generally parallel to the length of the probe, a rotational direction about an axis generally orthogonal to the axis along the length of the probe, a plane generally defined by the electrode, an axis generally defined by a length of the electrode, and an axis generally defined by a width of the electrode.
- 22. The tissue cutting device of claim 16, wherein the loop electrode extends from one of a distal end of the probe and a side of the probe adjacent to the distal end of the probe.
- 23. The tissue cutting device of claim 16, further comprising a tissue collector coupled to the probe, the tissue collector being selected from the group consisting of a wire mesh and a deformable bag.
- 24. The tissue cutting device of claim 23, wherein the tissue collector is further coupled to the loop electrode.
- 25. A tissue cutting device, comprising:
a housing; an electrode in communication with an energy source, the electrode being housed in the housing; an insulating layer partially surrounding the electrode and configured to expose at least a portion of the electrode to define at least one cutting area; and an electrode oscillator coupled to the electrode and configured to oscillate the electrode relative to the housing in at least one of a direction generally along a length of the housing, a direction generally orthogonal to the length of the housing, a rotational direction about an axis generally parallel to the length of the housing, a rotational direction about an axis generally orthogonal to the axis along the length of the housing, a plane generally defined by the electrode, an axis generally defined by a length of the electrode, and an axis generally defined by a width of the electrode.
- 26. The tissue cutting device of claim 25, wherein the electrode oscillator oscillates the electrode at a frequency of between approximately 1 Hz and approximately 100 Hz.
- 27. The tissue cutting device of claim 25, wherein the electrode oscillator oscillates the electrode at a peak-to-peak distance of between approximately less than 1 mm to approximately 20 mm.
- 28. A method for cutting tissue, comprising the steps of:
exposing at least one cutting area of a cutting device to tissue, the cutting device including an electrode coupled to an energy source, an insulating layer partially surrounding the electrode and configured to expose at least a portion of the electrode to define the at least one cutting area; applying an energy from an external energy source to the electrode, the energy being generally focused in the at least one cutting area in contact with the tissue; and oscillating the at least one cutting area relative to the tissue to cut the tissue.
- 29. The method for cutting tissue of claim 28, wherein the electrode is housed in a housing and wherein the oscillating is performed by extending and retracting the electrode into and out of the housing.
- 30. The method for cutting tissue of claim 28, wherein the oscillating includes oscillating the at least one cutting area relative to a probe housing the electrode, the oscillating being performed by an automated electrode oscillator coupled to the electrode.
- 31. The method for cutting tissue of claim 30, wherein the automated electrode oscillator oscillates the electrode at a frequency of between approximately 1 Hz and approximately 100 Hz.
- 32. The method for cutting tissue of claim 30, wherein the automated electrode oscillator oscillates the electrode at a peak-to-peak distance of between approximately less than 1 mm to approximately 20 mm.
- 33. The method for cutting tissue of claim 30, wherein the automated electrode oscillator includes at least one of a motor and solenoid.
- 34. The method for cutting tissue of claim 28, wherein the oscillating is performed with at least one of a predetermined direction, a predetermined distance, and a predetermined frequency.
- 35. The method for cutting tissue of claim 28, wherein the oscillating is oscillating the electrode into and out of the probe.
- 36. A method for cutting tissue, comprising the steps of:
exposing at least one cutting area of a cutting device to tissue, the cutting device including an electrode coupled to an energy source and housed in a housing, an insulating layer partially surrounding the electrode and configured to expose at least a portion of the electrode to define the at least one cutting area, the electrode being at least one of flexible, extendable out of the housing, and retractable into the housing; and applying an energy from an external energy source to the electrode, the energy being generally focused in the at least one cutting area in contact with the tissue to cut the tissue.
- 37. The method for cutting tissue of claim 36, further comprising oscillating the at least one cutting area relative to the tissue to further facilitate cutting of the tissue.
- 38. The method for cutting tissue of claim 36, wherein the cutting area includes a cutting area extending in a direction along a length of the electrode.
- 39. The method for cutting tissue of claim 36, wherein the at least one cutting area includes a plurality of cutting areas generally aligned in a direction along a length of the electrode.
- 40. The method for cutting tissue of claim 36, wherein the at least one cutting area includes at least one of a sharpened edge and a serrated edge.
- 41. The method for cutting tissue of claim 36, wherein the insulating layer includes a plurality of segments disposed along a length of the electrode, the segments being spaced apart relative to each other to expose at least a portion of the electrode to define the at least one cutting area.
- 42. The method for cutting tissue of claim 36, further comprising the step of flexing the electrode to expose the at least one cutting area to the tissue to be cut.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to U.S. Provisional Patent Application Serial No. 60/435,972, entitled “Method for Cutting Tissue” and filed on Dec. 20, 2002, the entirety of which is incorporated by reference herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60435972 |
Dec 2002 |
US |