Apparatus and method for selectively positioning a device and manipulating it
Apparatus for pulling and positioning an apparatus, e.g., a stent, in the target area of a lumen. In one embodiment, a cylindrically shaped motor has a longitudinal bore, a friction area within the longitudinal bore, and a guide wire disposed within the longitudinal bore. The guide wire and friction area of the motor are sized and adapted to contact each other and impart friction between the friction area and the guide wire to permit the motor to pull a catheter to the target arcs by crawling against the guide wire. In another embodiment, a cylindrical motor having a friction area on its outer surface is disposed within a guide tube.
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This invention relates generally to an apparatus and method of selectively positioning the apparatus, e.g., within a lumen. More particularly, this invention relates to a device and method for pulling a catheter along a wire; a device and method for moving a wire relative to a catheter, a device and method for pulling a catheter relative to a guiding catheter or any larger bore pipeline through which it is inserted; and a device and method for pushing or pulling a device on top of a guide wire or inside a guiding catheter.
BACKGROUND OF THE INVENTIONIn many different applications of invasive and minimally invasive medicine there is a need to introduce catheters and other devices into the body, usually through open lumens or closed lumens, utilizing percutaneous entry. Conventional procedures for the introduction of the devices and their controlled motion in the body usually utilize a force, either a manual force or a motorized force, applied from the outside of the patient to “push” the device to the target area. One shortcoming of introducing the device via a “push” operation, even when done on top of a guiding wire, is that this procedure often does not provide optimal tractability trackability into a tortuous anatomy, e.g., the coronary arteries. In contrast, a “pull” operation in which a pulling device precedes the apparatus and “pulls” it into place increases the tractability trackability of the device and reduces the likelihood that the device will get caught in a curve of the lumen or cause trauma to the lumen.
Another problem is the need to push wires through occluded lumen sections that have a great resistance to such penetration. The fact that the wire is pushed from the outside may waste all the pushing energy in accessive loops with very little or none of the pushing energy actually reaching the tip of the wire.
OBJECTS AND SUMMARY OF THE INVENTIONIt is an object of this invention to provide a device and method for pulling a catheter along a wire.
It is another object of this invention to provide a device and method for pushing a wire relative to a catheter.
In yet another object of this invention to provide a device and method for pulling a catheter relative to a guiding catheter or any larger bore pipeline through which it is inserted.
It is a further object of this invention to provide a device and method for pushing or pulling a device on top of a guidewire or inside a guiding catheter.
It is still a further object of this invention to provide an apparatus and method for selectively positioning a device, e.g., a stent, an Intra Vascular Sound (IVUS) transducer, an atherectomy device (both rotational and directional), pressure sensors, balloons, and pushing wires to open occlusions, by pulling rather than pushing these devices into place.
It is an object of this invention to provide an apparatus for disposing a device in the target area of a lumen, comprising: a cylindrically shaped motor attached to the device, the motor having a longitudinal bore, the motor provided with a motor friction area disposed within the longitudinal bore; a guide wire disposed within the longitudinal bore, the guide wire and the longitudinal bore sized and adapted to impart friction between the friction area of the motor and the guide wire in an amount sufficient to permit the motor to change position relative to the guide wire by crawling against the guide wire when the motor is energized.
It is another object of this invention to provide an apparatus for disposing a device in the target area of a lumen, comprising: a cylindrically shaped motor attached to the device, the motor having an outer surface, the motor provided with a friction area on the outer surface; a cylindrical guide tube having an outer surface and an inner surface defining a longitudinal bore, the outer surface of the motor and the inner surface of the guide tube sized and adapted to impart friction between the friction area of the motor and the inner surface of the cylindrical guide tube in an amount sufficient to permit the cylindrical motor to change position relative to the guide tube by crawling against the inner surface of the guide tube when the motor is energized.
It is still another object of this invention to provide an apparatus for disposing a stent in the target area of a lumen, comprising: a catheter having a proximal end, a distal end, a longitudinal bore therethrough, and an expandable balloon disposed at the distal end; a cylindrically shaped motor disposed at the distal end of the catheter distal to the balloon, the motor having a longitudinal bore communicating with the longitudinal bore of the catheter, the motor provided with a motor friction area disposed within the longitudinal bore; a guide wire disposed with the longitudinal bore of the catheter and the longitudinal bore of the motor, the guide wire and the longitudinal bore of the motor sized and adapted to impart friction between the friction area of the motor and the guide wire in an amount sufficient to permit the motor to change position relative to the guide wire by crawling against the guide wire when the motor is energized.
It is another object of this invention to provide a method of disposing a stent in the target area of a lumen, comprising the steps of:
-
- a) constructing an apparatus comprising: a catheter having a proximal end, a distal end, a longitudinal bore therethrough, and an expandable balloon disposed at the distal end; a cylindrically shaped motor disposed at the distal end of the catheter distal to the balloon, the motor having a longitudinal bore communicating with the longitudinal bore of the catheter, the motor provided with a motor friction area disposed within the longitudinal bore, a guide wire disposed within the longitudinal bore of the catheter and the longitudinal bore of the motor, the guide wire and the longitudinal bore of the motor sized and adapted to impart friction between the friction area of the motor and the guide wire in an amount sufficient to permit the motor to change position relative to the guide wire by crawling against the guide wire when the motor is energized;
- b) advancing the guide wire to the target area;
- c) securing the guide wire;
- d) energizing the motor so that it advances along the guide wire to the target area to dispose the stent in the target area of lumen;
- e) inflating the balloon to secure the stent in the target area of the lumen;
- f) deflating the balloon; and
- g) withdrawing the guide wire, motor, and catheter from the lumen.
It is yet another object of this invention to provide a method of disposing a stent in an obstructed target area of a lumen, comprising the steps of:
-
- a) constructing an apparatus comprising: a catheter having a proximal end, a distal end, a longitudinal bore therethrough, and an expandable balloon disposed at the distal end; a cylindrically shaped motor disposed at the distal end of the catheter distal to the balloon, the motor having a longitudinal bore communicating with the longitudinal bore of the catheter, the motor provided with a motor friction area disposed within the longitudinal bore, a guide wire disposed with the longitudinal bore of the catheter and the longitudinal bore of the motor, the guide wire and the longitudinal bore of the motor sized and adapted to impart friction between the friction area of the motor and the guide wire in an amount sufficient to permit the motor to change position relative to the guide wire by crawling against the guide wire when the motor is energized;
- b) advancing the guide wire to the target area;
- c) securing the guide wire;
- d) energizing the motor so that the motor advances along the guide wire to the obstructed target area;
- e) securing the catheter;
- f) energizing the motor so that the guide wire advances through the longitudinal bore of the motor and into the obstructed target area of the lumen;
- g) securing the guide wire;
- h) energizing the motor so that the motor advances along the guide wire and disposes the stent in the target area of the lumen;
- i) inflating the balloon to secure the stent in the target area of the lumen;
- j) deflating the balloon; and
- k) withdrawing the guide wire, motor, and catheter from the lumen.
More generally, embodiments of the present invention employ a piezoelectric micromotor to move a device to a target area in a lumen. In one embodiment, the motor is attached to a catheter and frictionally engages a guide wire. Energizing the motor brings about relative motion between the wire and catheter. This allows moving the wire to a target area in a lumen with the catheter fixed and/or moving the catheter to the target area while holding the guide wire fixed. The catheter may have a balloon to be expanded in the lumen at the target area. Similarly, the catheter may deliver a stent to the target area where it can be expanded. When there is an obstruction that prevents reaching the target area, the guide wire and motor may be used to clear the obstruction to permit the guide wire and catheter to be moved to the target area.
Miniature Oscillating Ceramic Motors (OCM) are well known in the art and are disclosed in U.S. Pat. No. 5,453,653 to Zumeris the specification of which is incorporated herein by reference. These motors can be made very small and in any shape and they operate by contacting a surface in an amount sufficient to generate sufficient friction to permit the motor to “crawl” along the contacted surface and change its position relative to the contracted surface when the motor is energized. These motors can be adequately insulated to act in aqueous environments. Their small size and low energy level requirements make them especially suitable for use inside living organisms.
In another embodiment of this invention, shown in
In operation, an expandable stent 20 is secured to the balloon portion 19 of the catheter 15 and the guide wire 2 is placed into the bore 18 of the catheter 15. The guide wire 2 is then introduced into the lumen to be treated and is advanced by pushing it until it is near the target area. The guide wire 2 is then secured. The micro-motor 1 is then energized so that it crawls along the guide wire 2 which pulls the catheter 15 into the proximity of the target area to be treated. Because the catheter 15 is “pulled” into position as shown in
In another embodiment of this invention shown in
In some applications, one or more passes may be utilized to clear the obstruction. As has been recognized by those skilled in the art, vibrating the guide wire facilitates the wire passing through an obstruction. As explained in U.S. Pat. No. 5,453,653 to Zumeris, excitation of the micro-motor of the present invention with an AC voltage is possible. If excited with AC, a vibration in the range of 20-100 KHz., depending on the resonant frequency of the material used for the piezoelectric ceramic will result. As further explained, in a pulsed method of operation two electrodes are excited by a positive DC voltage and two electrodes are excited by a negative DC voltage. Under this excitation the left side of piezoelectric ceramic becomes longer than the right side and ceramic moves to the right. When the voltage is removed, the ceramic will move back to its original position. However, if a non-symmetrical voltage pulse is applied to the electrodes, then, during the return to zero, the inertia of body will cause the body not to return the ceramic to the starting position. Thus, when operating in the DC pulsed mode, a vibrating or pulsating motion will occur at a rate dependent on the pulse time, e.g., 10-50 ms. Stated another way, in each case, an oscillatory motion takes place.
The guide wire 2 is then secured, the motor 1 is energized, and the catheter 15 is advanced through the vessel past the area from which the guide wire 2 has cleared the obstruction 21 from the target area as shown in FIG. 8D. This method may be used to simply clear an obstruction in a lumen as discussed above or may be used in conjunction with other embodiments of the invention, e.g., to facilitate the placement of an expandable stent in the target area of a lumen by first clearing the target area of any obstructions.
While the invention has been described with respect to a limited number of embodiments, it will be appreciated that many variations, modifications, and other applications of the invention may be made.
Claims
1. An apparatus, comprising: a cylindrically shaped motor, said motor having a longitudinal bore, said motor provided with a motor friction area disposed within said longitudinal bore; a guide wire disposed within said longitudinal bore, said guide wire and said longitudinal bore sized and adapted to impart friction between said friction area of said motor and said guide wire in an amount sufficient to permit said motor to change position relative to said guide wire by crawling against said guide wire when said motor is energized; and, further comprising a biasing means to bias said guide wire against said friction area.
2. The apparatus of claim 1, wherein said biasing means is a leaf spring.
3. An apparatus, comprising: a cylindrically shaped motor, said motor having an outer surface, said motor provided with a friction area on said outer surface; a cylindrical guide tube having an outer surface and an inner surface defining a longitudinal bore, said outer surface of said motor and said inner surface of said guide tube sized and adapted to impart friction between said friction area of said motor and said inner surface of said cylindrical guide tube in an amount sufficient to permit said cylindrical motor to change position relative to said guide tube by crawling against said inner surface of said guide tube when said motor is energized.
4. The apparatus of claim 3, further comprising a biasing means to bias said inner surface of said guide tube against said friction area.
5. The apparatus of claim 4, wherein said biasing means is a leaf spring.
6. A method of disposing a device in the target area of a lumen, comprising the steps of:
- a) constructing an apparatus comprising: a cylindrically shaped motor attached to said device, said motor having a longitudinal bore, said motor provided with a motor friction area disposed within said longitudinal bore, a guide wire disposed within said longitudinal bore, said guide wire and said longitudinal bore of said motor sized and adapted to impart friction between said friction area of said motor and said guide wire in an amount sufficient to permit said motor to change position relative to said guide wire by crawling against said guide wire when said motor is energized;
- b) advancing said guide wire to said target area;
- c) securing said guide wire;
- d) energizing said motor so that said motor advances along said guide wire to said target area to dispose said device in said target area of said lumen; and
- e) withdrawing said guide wire, motor, and catheter from said lumen.
7. A method of disposing a device in the target area of a lumen, comprising the steps of:
- a) constructing an apparatus comprising: a cylindrically shaped motor having an outer surface, said motor provided with a friction area on said outer surface, a cylindrical guide tube having an outer surface and an inner surface defining a longitudinal bore, said outer surface of said motor and said inner surface of said guide tube sized and adapted to impart friction between said friction area and said inner surface of said cylindrical guide tube in an amount sufficient to permit said cylindrical motor to change position relative to said guide tube by crawling against said inner surface of said guide tube when said motor is energized;
- b) advancing said guide tube to said target area;
- c) securing said guide tube;
- d) inserting said motor attached to said device in said bore of said guide tube;
- e) energizing said motor so that said motor advances along said inner surface of said guide tube to said target area to dispose said device in said target area of said lumen; and
- f) withdrawing said guide tube, motor, and catheter from said lumen.
8. An apparatus for disposing a stent in the target area of a lumen, comprising: a catheter having a proximal end, a distal end, a longitudinal bore therethrough, and an expandable balloon disposed at said distal end; a cylindrically shaped motor disposed at said distal end of said catheter distal to said balloon, said motor having a longitudinal bore communicating with a said longitudinal bore of said catheter, said motor provided with motor friction area disposed within said longitudinal bore of said motor; a guide wire disposed within said longitudinal bore of said catheter and said longitudinal bore of said motor, said guide wire and said longitudinal bore of said motor sized and adapted to impart friction between said friction area of said motor and said guide wire in an amount sufficient to permit said motor to change position relative to said guide wire by crawling against said guide wire when said motor is energized.
9. The apparatus of claim 8, further comprising a biasing means to bias said guide wire against said friction area.
10. The apparatus of claim 9, wherein said biasing means is a leaf spring.
11. A method of disposing a stent in the target area of a lumen, comprising the steps of:
- a) constructing an apparatus comprising: a catheter having a proximal end, a distal end, a longitudinal bore therethrough, and an expandable balloon disposed at said distal end; a cylindrically shaped motor disposed at said distal end of said catheter distal to said balloon, said motor having a longitudinal bore communicating with said longitudinal bore of said catheter, said motor provided with a motor friction area disposed within said longitudinal bore of said motor, a guide wire disposed within said longitudinal bore of said catheter and said longitudinal bore of said motor, said guide wire and said longitudinal bore of said motor sized and adapted to impart friction between said friction area of said motor and said guide wire in an amount sufficient to permit said motor to change position relative to said guide wire by crawling against said guide wire when said motor is energized;
- b) advancing said guide wire to said target area;
- c) securing said guide wire;
- d) energizing said motor so that it advances along said guide wire to said target area to dispose said stent in said target area of said lumen;
- e) inflating said balloon to secure said stent in said target area of said lumen;
- f) deflating the balloon; and
- g) withdrawing said guide wire, motor, and catheter from said lumen.
12. A method of disposing a stent in an obstructed target area of a lumen, comprising the steps of:
- a) constructing an apparatus comprising: a catheter having a proximal end, a distal end, a longitudinal bore therethrough, and an expandable balloon disposed at said distal end; a cylindrically shaped motor disposed at said distal end of said catheter distal to said balloon, said motor having a longitudinal bore communicating with said longitudinal bore of said catheter, said motor provided with a motor friction area disposed within said longitudinal bore, a guide wire disposed within said longitudinal bore of said catheter and said longitudinal bore of said motor, said guide wire and said longitudinal bore of said motor sized and adapted to impart friction between said friction area of said motor and said guide wire in an amount sufficient to permit said motor to change position relative to said guide wire by crawling against said guide wire when said motor is energized;
- b) advancing said guide wire to said target area;
- c) securing said guide wire;
- d) energizing said motor so that said motor advances along said guide wire to said obstructed target area;
- e) securing said catheter;
- f) energizing said motor so that said guide wire advances through said longitudinal bore of said motor and into said obstructed target area of said lumen;
- g) securing said guide wire;
- h) energizing said motor so that said motor advances along said guide wire and disposes said stent in said target area of said lumen;
- i) inflating said balloon to secure said stent in said target area of said lumen;
- j) deflating the balloon; and
- k) withdrawing said guide wire, motor, and catheter from said lumen.
13. A method comprising:
- a) inserting a guide wire into of a catheter to which a micro-motor is attached, the guide wire passing through the catheter and operatively coupled to the micro-motor, into a lumen;
- b) advancing the guide wire to a target area;
- c) securing the guide wire;
- d) energizing the micro-motor so that the micro-motor advances along the guide wire to target area, carrying with it the attached catheter.
14. The method according to claim 13 and further including:
- e) withdrawing the guide wire, micro-motor, and catheter from the lumen.
15. The method according to claim 14 wherein a balloon is disposed on the distal end of the catheter and further including, prior to withdrawing the guide wire, micro-motor, and catheter from the lumen:
- a) inflating the balloon in the target area of the lumen; and
- b) deflating the balloon.
16. The method according to claim 15 wherein a stent is disposed over the balloon and the inflating of the balloon in the target area of the lumen expands the stent to dispose it in the target area.
17. The method according to claim 14 wherein a stent is provided at the distal end of the catheter and further comprising expanding the stent in the target area of the lumen to dispose it in the target area prior to withdrawing the guide wire, micro-motor, and catheter from the lumen.
18. A method comprising:
- a) inserting a guide wire into a catheter to which a micro-motor is attached, the guide wire operatively coupled to the micro-motor, into a lumen in which there is an obstruction;
- b) advancing the guide wire to a proximal end of the obstruction;
- c) securing the guide wire;
- d) energizing the micro-motor so that the micro-motor advances distally along the guide wire, carrying with it the attached catheter, toward the proximal end of the obstruction;
- e) securing the catheter;
- f) energizing the micro-motor so that the guide wire advances distally.
19. The method according to claim 18 wherein said energizing the micro-motor so that the guide wire advances distally comprises energizing in an oscillatory manner.
20. The method according to claim 19 wherein said micro-motor is a piezoelectric motor and said energizing comprises energizing with an AC voltage, thereby introducing a vibration to said guide wire.
21. The method according to claim 20 wherein said AC voltage has a frequency in the range of 20-100 kHz.
22. The method according to claim 19 wherein said micro-motor is a piezoelectric motor and said energizing comprises energizing with a pulsed DC voltage thereby imparting a pulsating motion to said guide wire.
23. The method according to claim 18 and further comprising disposing said guide wire within a bore in said motor.
24. The method according to claim 23 wherein said micro-motor is cylindrical with a bore, and said guide wire is passed through said bore of said micro-motor.
25. The method according to claim 18 wherein said step of energizing the motor so that the guide wire advances distally comprises repeatedly, until said guidewire and catheter pass substantially through said obstruction:
- a) securing the catheter;
- b) energizing the micro-motor so that the guide wire advances distally;
- c) securing the guide wire;
- d) energizing the micro-motor so that the micro-motor advances along the guide wire, carrying with it the attached catheter.
26. The method according to claim 25 wherein said steps b) and d) comprise energizing in an oscillatory manner.
27. The method according to claim 26 wherein said micro-motor is a piezoelectric motor and said energizing comprises energizing with an AC voltage, thereby introducing a vibration to said guide wire.
28. The method according to claim 27 wherein said AC voltage has a frequency in the range of 20-100 kHz.
29. The method according to claim 26 wherein said micro-motor is a piezoelectric motor and said energizing comprises energizing with an pulsed DC voltage thereby imparting a pulsating motion to said guide wire.
30. The method according to claim 25 and further including withdrawing the guide wire, motor, and catheter from the lumen.
31. The method according to claim 18 wherein said step of energizing the motor so that the guide wire advances distally comprises alternatively:
- a) energizing the motor so that the guide wire advances distally;
- b) energizing the motor so that the guide wire advances proximally; and
- c) repeating steps a) and b) a plurality of times.
32. The method according to claim 31 comprising repeating steps a) and b) until the guide wire has substantially cleared the obstruction.
33. The method according to claim 32 and further including withdrawing the guide wire, motor, and catheter from the lumen.
34. The method according to claim 33 wherein said obstruction is at or proximal to a target area of the lumen and wherein a balloon is disposed on the distal end of the catheter and further including, prior to withdrawing the guide wire, motor, and catheter from the lumen:
- a) inflating the balloon in the target area of the lumen; and
- b) deflating the balloon.
35. The method according to claim 34 wherein a stent is disposed over the balloon and the inflating of the balloon in the target area of the lumen expands the stent to dispose it in the target area.
36. The method according to claim 33 wherein a stent is provided at the distal end of the catheter and further comprising expanding the stent in the target area of the lumen to dispose it in the target area prior to withdrawing the guide wire, motor, and catheter from the lumen.
37. The method according to claim 31 wherein said steps a) and b) comprise energizing in an oscillatory manner.
38. The method according to claim 37 wherein said micro-motor is a piezoelectric motor and said energizing comprises energizing with an AC voltage, thereby introducing a vibration to said guide wire.
39. The method according to claim 38 wherein said AC voltage has a frequency in the range of 20-100 kHz.
40. The method according to claim 37 wherein said micro-motor is a piezoelectric motor and said energizing comprises energizing with an pulsed DC voltage thereby imparting a pulsating motion to said guide wire.
41. The method according to claim 18 wherein said step f) comprises energizing the motor so that the guide wire advances through the obstruction.
42. The method according to claim 41 wherein said energizing the micro-motor so that the guide wire advances through the obstruction comprises energizing in an oscillatory manner.
43. The method according to claim 42 wherein said micro-motor is a piezoelectric motor and said energizing comprises energizing with an AC voltage, thereby introducing a vibration to said guide wire.
44. The method according to claim 43 wherein said AC voltage has a frequency in the range of 20-100 kHz.
45. The method according to claim 42 wherein said micro-motor is a piezoelectric motor and said energizing comprises energizing with an pulsed DC voltage thereby imparting a pulsating motion to said guide wire.
46. The method according to claim 45 and further comprising disposing said guide wire within a bore in said motor.
47. The method according to claim 46 wherein said micro-motor is cylindrical with a bore, and said guide wire is passed through said bore of said micro-motor.
48. The method according to claim 41 and further including withdrawing the guide wire, motor, and catheter from the lumen.
49. The method according to claim 48 wherein said obstruction is at or proximal to a target area of the lumen and wherein a balloon is disposed on the distal end of the catheter and further including, prior to withdrawing the guide wire, motor, and catheter from the lumen:
- a) inflating the balloon in the target area of the lumen; and
- b) deflating the balloon.
50. The method according to claim 49 wherein a stent is disposed over the balloon and the inflating of the balloon in the target area of the lumen expands the stent to dispose it in the target area.
51. The method according to claim 48 wherein a stent is provided at the distal end of the catheter and further comprising expanding the stent in the target area of the lumen to dispose it in the target area prior to withdrawing the guide wire, motor, and catheter from the lumen.
52. An apparatus, comprising: a piezoelectric motor provided with a friction area; a cylindrical guide tube defining a longitudinal bore, said motor disposed within said bore in such a manner that said friction area presses against an inner surface of said cylindrical guide tube in such a manner as to impart friction between said friction area of said motor and said inner surface in an amount sufficient to permit said cylindrical motor to change position relative to said guide tube by crawling against said inner surface of said guide tube when said motor is energized.
53. The apparatus of claim 52, further comprising a biasing means to bias said inner surface of said guide tube against said friction area.
54. The apparatus of claim 53, wherein said biasing means is a leaf spring.
55. The apparatus of claim 52, further comprising a device to be placed in a lumen disposed within said guide tube and contacting said motor.
56. A method comprising using a piezoelectric micromotor to move a device to a target area in a lumen comprising attaching said micro-motor to a catheter, frictionally engaging a guide wire that passes through said catheter with said motor and energizing said motor to bring about relative motion between the wire and catheter.
57. The method according to claim 56 wherein said relative motion comprises first moving the wire to a target area in a lumen with the catheter fixed and then moving the catheter to the target area while holding the guide wire fixed.
58. The method according to claim 57 and further including delivering a balloon on the end of said catheter to said target area and expanding said balloon at the target area.
59. The method according to claim 57 and further including delivering a stent on the end of said catheter to said target area and expanding said stent at the target area.
60. A method comprising traversing an obstruction in a lumen by causing a guide wire driven by a piezoelectric micro-motor in a oscillatory manner to advance into the obstruction including moving a catheter to which the micro-motor is attached and the guide wire to the target area using the micro-motor, holding the catheter fixed, and driving said micro-motor to cause said guide wire to advance against said obstruction in an oscillatory manner.
61. The method of claim 60 wherein said guide wire advances through said obstruction.
62. The method of claim 61 comprising alternatively advancing the catheter and the guide wire until the catheter and guide wire are clear of the obstruction.
63. The method according to claim 61 wherein said driving comprises energizing with an AC voltage, thereby introducing a vibration to said guide wire.
64. The method according to claim 63 wherein said AC voltage has a frequency in the range of 20-100 kHz.
65. The method according to claim 61 wherein said driving comprises energizing with an pulsed DC voltage thereby imparting a pulsating motion to said guide wire.
3760203 | September 1973 | Guntersdorfer et al. |
4389208 | June 21, 1983 | LeVeen et al. |
4747407 | May 31, 1988 | Liu et al. |
4854325 | August 8, 1989 | Stevens |
4886061 | December 12, 1989 | Fischell et al. |
4946466 | August 7, 1990 | Pinchuk et al. |
5243997 | September 14, 1993 | Uflacker et al. |
5287858 | February 22, 1994 | Hammerslag et al. |
5304115 | April 19, 1994 | Pflueger et al. |
5318541 | June 7, 1994 | Viera et al. |
5328471 | July 12, 1994 | Slepian |
5380273 | January 10, 1995 | Dubrul et al. |
5380274 | January 10, 1995 | Nita |
5389100 | February 14, 1995 | Bacich et al. |
5453653 | September 26, 1995 | Zumeris |
5498236 | March 12, 1996 | Dubrul et al. |
5499632 | March 19, 1996 | Hill, III et al. |
5501228 | March 26, 1996 | Lafontaine et al. |
5549119 | August 27, 1996 | Solar |
5571114 | November 5, 1996 | Devamabpuoma |
5628719 | May 13, 1997 | Hastings et al. |
5632755 | May 27, 1997 | Nordgren et al. |
5643297 | July 1, 1997 | Nordgren et al. |
5643298 | July 1, 1997 | Nordgren et al. |
5662587 | September 2, 1997 | Grundfest et al. |
5662609 | September 2, 1997 | Slepian |
5707376 | January 13, 1998 | Kavteladze et al. |
5713848 | February 3, 1998 | Dubrul et al. |
5746758 | May 5, 1998 | Nordgren et al. |
5776153 | July 7, 1998 | Rees |
5908395 | June 1, 1999 | Stalker et al. |
6001112 | December 14, 1999 | Taylor |
6183432 | February 6, 2001 | Milo |
6184609 | February 6, 2001 | Johansson et al. |
6228046 | May 8, 2001 | Brisken |
6238401 | May 29, 2001 | Richter |
6258052 | July 10, 2001 | Milo |
6287271 | September 11, 2001 | Dubrul et al. |
6290675 | September 18, 2001 | Vujanic et al. |
6302875 | October 16, 2001 | Makower et al. |
6348040 | February 19, 2002 | Stalker et al. |
4329162 | March 1995 | DE |
0541258 | May 1993 | EP |
2 328 877 | March 1999 | GB |
2328877 | March 1999 | GB |
2129193 | October 1990 | JP |
2-129193 | October 1990 | JP |
04-176770 | June 1992 | JP |
05084296 | April 1993 | JP |
5-58338 | August 1993 | JP |
6269185 | September 1994 | JP |
7156843 | June 1995 | JP |
8207755 | August 1996 | JP |
8216876 | August 1996 | JP |
9037571 | February 1997 | JP |
10-113396 | May 1998 | JP |
10113396 | May 1998 | JP |
10-165510 | June 1998 | JP |
95/32539 | November 1995 | WO |
98/30266 | July 1998 | WO |
Type: Grant
Filed: Sep 19, 2002
Date of Patent: May 6, 2008
Assignee: Zuli Holdings Ltd. (Ramat Hasharon)
Inventor: Jacob Richter (Ramat Hasharon)
Primary Examiner: Glenn K. Dawson
Attorney: Cadwalader Wickersham & Taft LLP
Application Number: 10/193,201
International Classification: A61M 31/00 (20060101);