Claims
- 1. A deflection mechanism for delivery of devices and agents into a targeted area of the body, the deflection mechanism comprising:
a) a shaft with a shaft lumen and a shaft wall comprising a proximal section, a proximal end, and a distal section with a distal tip, the distal section being capable of deflection; b) a pull wire assembly comprising a pull wire running through the shaft lumen, said pull wire being attached to a spring connected to the distal section of the shaft lumen; and c) a handle disposed at the proximal end of said shaft lumen for manipulating said pull wire, the deflection mechanism capable of being removably inserted into a catheter lumen of an electrophysiology catheter and capable of deflecting the electrophysiology catheter.
- 2. The deflection mechanism of claim 1, wherein the shaft is capable of deflecting in a predetermined pattern defined by a series of notches in the shaft wall.
- 3. The deflection mechanism of claim 1, wherein the shaft is capable of deflecting in a predetermined pattern defined by reduced thickness of a portion of the shaft wall.
- 4. The deflection mechanism of claim 2, wherein shaft deflection is determined by a series of notches of progressively increasing depth from the proximal end to the distal tip.
- 5. The deflection mechanism of claim 3, wherein shaft deflection is determined by reduced thickness of the shaft wall as a function of length, circumferential position, or length and circumferential position.
- 6. The deflection mechanism of claim 1, wherein the electrophysiology catheter is an ablation catheter.
- 7. The deflection mechanism of claim 1, wherein the electrophysiology catheter is an RF ablation catheter.
- 8. A system for mammalian intraluminal visualization and delivery, said system comprising:
a) a sheath comprising an elongate member defining a lumen, said sheath comprising a proximal section and a distal portion with a distal end; b) a balloon catheter comprising an inner balloon catheter lumen, an elongated shaft with a flexible distal shaft section and a proximal shaft section, a proximal port, a distal port in fluid communication with the catheter lumen, and an occlusion balloon axially disposed about the distal shaft section, said deflectable balloon catheter capable of being removably inserted into the sheath; c) a deflection mechanism capable of being inserted into the inner balloon catheter lumen and deflecting the distal shaft section of the balloon catheter; d) an electrophysiology catheter comprising an elongate member defining an electrophysiology catheter lumen, a flexible tip disposed distally on the elongate member, and an electrode disposed on an outer surface of the tip, the electrophysiology catheter capable of being removably inserted into the sheath; and e) a microdeflection device capable of being inserted into the electrophysiology catheter lumen and deflecting the tip of the electrophysiology catheter.
- 9. The system of claim 8, wherein the electrophysiology catheter is an ablation catheter.
- 10. The system of claim 9, wherein the sheath distal portion is more flexible than the sheath proximal section and wherein the sheath distal portion is radiopaque.
- 11. The system of claim 8, wherein the deflection mechanism is a second steerable catheter.
- 12. The system of claim 11, wherein the second steerable catheter is an electrophysiology catheter.
- 13. A method for mammalian intraluminal visualization and delivery, said method comprising:
a) providing a sheath comprising an elongate member defining a sheath lumen; b) inserting a deflectable balloon catheter into the sheath lumen, said deflectable balloon catheter comprising an inner balloon catheter lumen, an elongated balloon catheter shaft with a flexible distal shaft section disposing a distal balloon catheter tip and a proximal shaft section, a proximal port, a distal port in fluid communication with the catheter lumen, and a balloon axially disposed about the distal shaft section; c) advancing a deflection mechanism into the inner balloon catheter lumen through the proximal port to form a sheath/catheter/deflection mechanism system; d) navigating the sheath/catheter/deflection mechanism to a target tissue of the target organ; e) removing the deflection balloon catheter and associated deflection mechanism from the sheath; f) advancing an electrophysiology catheter with an electrode and associated with a removably inserted microdeflection mechanism into the shaft lumen to form a electrophysiology catheter/microdeflection device/shaft mechanism, g) activating the microdeflection mechanism to steer the electrophysiology catheter/microdeflection device/shaft mechanism to the target tissue; and h) transmitting an electrical signal to the electrode.
- 14. The method of claim 13, wherein method d.) further includes the methods of:
i) engaging the target tissue with sheath/catheter/deflection mechanism; ii) inflating the balloon; iii) injecting contrast fluid into the target tissue; iv) visualizing the target tissue; and v) deflating the balloon.
- 15. The method of claim 13, wherein the electrophysiology catheter is an ablation catheter.
- 16. The method of claim 13, wherein the electrophysiology catheter is an RF ablation catheter.
- 17. A method of placing an implantable medical device within a body comprising the methods of:
a.) providing an assembly including a sheath having a sheath inner lumen, a guide catheter having an catheter inner lumen and disposed within the sheath inner lumen, and a deflection mechanism adapted to navigate the coronary sinus and being disposed within the catheter inner lumen; b.) navigating the assembly into the heart; c.) advancing the guide catheter and sheath beyond the distal end of the sheath inner lumen and into the coronary sinus; d.) advancing the sheath into the coronary sinus over the guide catheter; e.) withdrawing the guide catheter and deflection mechanism from the sheath inner lumen; f.) providing a second assembly including an implantable medical device (IMD) having an elongated structure and an IMD inner lumen, the second assembly further including a microdeflection mechanism disposed within the IMD inner lumen; g.) advancing the second assembly into the sheath inner lumen and into the coronary sinus; h.) utilizing the microdeflection mechanism to place the IMD; and i.) withdrawing the microdeflection mechanism and sheath from the body.
- 18. The method of claim 17, wherein the guide catheter includes an inflatable member and a port for injecting contrast fluid, and wherein method c.) includes the methods of:
inflating the inflatable member; injecting contrast fluid from the port; obtaining an image of the body in the vicinity of the injected contrast fluid; and deflating the inflatable member.
- 19. The method of claim 17, wherein the deflection mechanism is a steerable catheter.
- 20. The method of claim 19, wherein the deflection mechanism is a electrophysiology steerable catheter.
- 21. The method of claim 17, wherein the IMD of method f.) is a medical electrical lead.
- 22. The method of claim 17, wherein method h.) includes the method of utilizing the microdeflection mechanism to subselect a branch vein from within the coronary sinus.
- 23. A system for delivering an implantable medical device (IMD) to a body, comprising:
a.) a sheath having an inner lumen; b.) a catheter having an inflation member and adapted to be slidably inserted within the sheath, the catheter having a catheter inner lumen; c.) a deflection mechanism adapted to be slidably inserted within the catheter and to cannulate the coronary sinus; and d.) an assembly adapted to be slidably disposed within the sheath when the sheath is positioned within the coronary sinus, the assembly comprising an IMD having an inner lumen and a microdeflection mechanism disposed within the IMD inner lumen, the microdeflection mechanism having a cutaway portion defining a preferred bending direction and being adapted to navigate the IMD within the coronary sinus.
- 24. The system of claim 23, wherein the IMD is a medical electrical lead.
- 25. The system of claim 24, wherein the deflection mechanism is an electrophysiology (EP) catheter.
- 26. The system of claim 25, wherein the cutaway portion of the microdeflection mechanism comprises multiple notches.
- 27. The system of claim 26, wherein the notches are equally-spaced.
- 28. The system of claim 27, wherein ones of the multiple notches each include an associated secondary notch.
- 29. The system of claim 28, wherein each of the ones of the multiple notches are substantially perpendicular to the associated secondary notch.
- 30. The system of claim 26, wherein the notches are substantially aligned along a longitudinal axis of the microdeflection mechanism.
- 31. The system of claim 26, wherein the notches have a similar shape with respect to one another.
- 32. The system of claim 26, wherein ones of the notches have a shape that is different from other ones of the notches.
- 33. The system of claim 23, wherein the microdeflection mechanism has a beveled distal end to provide strain relief.
- 34. The system of claim 23, wherein the sheath is splittable.
RELATED APPLICATIONS
[0001] This application is related to, and claims the benefit of, provisionally-filed U.S. patent application Ser. No. 60/193,695 filed Mar.31, 2000, and entitled “Intraluminal Visualization System with Deflectable Mechanism”, which is incorporated herein by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60193695 |
Mar 2000 |
US |