Claims
- 1. A microwave ablation assembly comprising:
an elongated probe having a penetration end adapted to penetrate into bio-tissue and an opposite access end, said probe defining an insert passage extending therethrough from the access end to the penetration end thereof; a coaxial transmission line including an inner conductor and an outer conductor separated by a dielectric material medium, and having a proximal end coupled to a microwave energy source; and an antenna device coupled to the transmission line for generating an electric field sufficiently strong to cause tissue ablation, said antenna device and said transmission line each having a transverse cross-sectional dimension for sliding receipt through said insert passage, while said elongated probe is positioned in the bio-tissue, to a position advancing said antenna device beyond said penetration end and further into said bio-tissue.
- 2. A microwave ablation assembly as defined in claim 1, wherein
said inner conductor, said dielectric material medium and said outer conductor extend through said insert passage as a single unit.
- 3. A microwave ablation assembly as defined in claim 1, wherein
said outer conductor is provided by a conductive sleeve adapted for electrical coupling to the elongated probe, and said dielectric material medium and the inner conductor are adapted for sliding receipt in the conductive sleeve and the insert passage of the probe as a unit to advance and retract the antenna device.
- 4. A microwave ablation assembly for insertion through an insert passage of an elongated metallic biopsy needle having a penetration end adapted to penetrate into bio-tissue, said insert passage terminating at an insert opening at the penetration end, said ablation assembly comprising:
a coaxial transmission line including an inner conductor and an outer conductor separated by a dielectric material medium, and having a proximal end thereof coupled to a microwave energy source; and an antenna device coupled to the transmission line for generating an electric field sufficiently strong to cause tissue ablation, said antenna device and said transmission line each having a transverse cross-sectional dimension adapted for sliding receipt through said insert passage while said biopsy needle is positioned in the bio-tissue, and to a position advancing said antenna beyond said insert opening and further into said bio-tissue.
- 5. A microwave ablation assembly as defined in claim 4, wherein
said inner conductor, said dielectric material medium and said outer conductor extend through said insert passage as a single unit.
- 6. A method for ablating bio-tissue comprising:
introducing an elongated probe into the bio-tissue to a predetermined depth, said probe defining a passage extending therethrough from a proximal access end to an opposite distal end thereof; introducing into the passage an elongated microwave ablation device having a distal antenna coupled to a transmission line which in turn is coupled to a microwave energy source at a proximal end thereof; positioning the distal antenna at least at the probe distal end; and generating an electric field at the distal antenna which is sufficiently strong to cause ablation of the bio-tissue within the electric field.
- 7. The method according to claim 6, wherein
said introducing an elongated probe includes piercing the opposite distal end thereof into the bio-tissue percutaneously.
- 8. The method according to claim 7, wherein
said elongated probe is a biopsy needle, and further including, after the piercing and before the introducing into the passage, removing a specimen of bio-tissue through said biopsy needle.
- 9. The method according to claim 8, wherein,
said introducing into the passage includes inserting the distal antenna and the transmission line, as a single unit, through an access opening at the proximal access end of the probe and into the passage toward the distal end thereof.
- 10. The method according to claim 9, wherein,
said positioning the distal antenna includes advancing the distal antenna through said passage to a position beyond said penetration end and further into said bio-tissue.
- 11. The method according to claim 10, wherein,
said inserting further includes inserting the distal antenna, the inner conductor, the dielectric material medium and the outer conductor into the insert passage of the biopsy needle as a single unit.
- 12. The method according to claim 6, further including:
said transmission line is coaxial including an inner conductor and an outer conductor separated by a dielectric material medium therebetween, and further including:
removing a portion of said outer conductor proximate a distal end of said transmission line to expose a portion of the dielectric material medium to form said antenna device.
- 13. The method according to claim 12, wherein,
said elongated probe is electrically conductive, and further including:
electrically connecting said outer conductor to said elongated probe causing the same to function as the transmission line and the antenna device.
- 14. The method according to claim 13, wherein,
said outer conductor is provided by a conductive sleeve, and said electrically connecting includes precoupling the conductive sleeve to said elongated probe prior to piercing, and said introducing into the passage further includes slideably inserting the inner conductor and the dielectric material medium as a unit into the conductive sleeve.
- 15. The method according to claim 6, wherein,
said antenna device is sufficiently rigid to enable further penetration into the bio-tissue during the advancing the distal antenna.
- 16. The method according to claim 15, wherein,
said transmission line is coaxial having an inner conductor and an outer conductor separated by a dielectric material medium such that the diameter of said inner connector in combination with said dielectric material medium provides the sufficient rigidity.
- 17. A method of percutaneously ablating bio-tissue in a body cavity comprising:
percutaneously piercing a penetration end of a biopsy needle into the bio-tissue to a predetermined depth from outside the body cavity, said probe defining an insert passage extending therethrough from an opposite access end to the penetration end thereof; inserting into the insert passage an elongated microwave ablation device having a distal antenna coupled to a transmission line which in turn is coupled to a microwave energy source at a proximal end thereof; advancing the distal antenna through said insert passage to a position beyond said penetration end and further into said bio-tissue; and generating an electric field at the distal antenna which is sufficiently strong to cause ablation of the bio-tissue within the electric field.
- 18. The method according to claim 17, further including:
after the piercing and before the inserting, removing a specimen of bio-tissue through said biopsy needle.
- 19. The method according to claim 18, wherein
said transmission line is coaxial including an inner conductor and an outer conductor separated by a dielectric material medium therebetween, and further including:
removing a portion of said outer conductor proximate a distal end of said transmission line to expose a portion of the dielectric material medium to form said antenna device.
- 20. The method according to claim 19, wherein,
Said advancing of the distal antenna includes advancing the distal antenna, the inner conductor, the dielectric material medium and the outer conductor into the insert passage of the biopsy needle as a single unit.
- 21. The method according to claim 17, wherein
said transmission line is a coaxial transmission line suitable for transmission of microwave energy at frequencies in the range of about 400 to about 6000 megahertz, and includes an inner conductor and an outer conductor separated by a dielectric material medium therebetween, and further including:
removing a portion of said outer conductor proximate a distal end of said transmission line to expose a portion of the dielectric material medium to form said antenna device.
- 22. The method according to claim 21, wherein,
said biopsy needle is electrically conductive, and further including:
electrically connecting said outer conductor to said elongated probe causing the same to function as the transmission line and the antenna device.
- 23. The method according to claim 22, wherein,
said outer conductor is provided by a conductive sleeve, and said electrically connecting includes precoupling the conductive sleeve to said elongated probe prior to piercing, and said inserting into the insert passage further includes slideably inserting the inner conductor and the dielectric material medium as a unit into the conductive sleeve as a unit.
- 24. An ablation assembly comprising:
an elongated hollow probe having proximal and distal ends and at least one lumen passing therethrough, said distal end adapted to penetrate biological tissue; and an ablative energy delivery device, comprising:
a means for transmitting ablative energy having proximal and distal ends, said proximal end operably attached to an energy source; and a means for emitting ablative energy operably attached to the distal end of the transmitting means, wherein the energy delivery device is adapted to translate through the at least one lumen of the hollow probe.
Parent Case Info
[0001] This application is a continuation of U.S. patent application Ser. No. 09/305,143, filed May 4, 1999, allowed, which is incorporated herein by reference.
Continuations (2)
|
Number |
Date |
Country |
Parent |
09955553 |
Sep 2001 |
US |
Child |
10159422 |
May 2002 |
US |
Parent |
09305143 |
May 1999 |
US |
Child |
09955553 |
Sep 2001 |
US |