IP Library Granted Patent US 7,699,059
Granted Patent B2
US 7,699,059 · App. 10/054,671 · Granted Apr 20, 2010

Implantable wireless sensor

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Quick Facts
Patent No.
US 7,699,059
App. No.
10/054,671
Granted
Apr 20, 2010
Kind
B2
Abstract

The progress of a endovascular aneurysm repair can be monitored by inserting a pressure transducer sensor using a catheter into the sac during endovascular aneurysm repair and then using a small, hand-held read out device to measure pressure easily, safely, inexpensively and accurately. In one aspect a sensor is introduced into the body by the steps of folding or rolling the sensor into a cylinder, loading it into a catheter, and deploying into the aneurysm sac by allowing it to unroll or unfold, either by itself or facilitated by the incorporation of a super-elastic alloy component.

Claims (59)

1. A flexible sensor for wirelessly determining a physical property of a patient, which sensor comprises a self-contained resonant circuit comprising a capacitor and an inductor, and

wherein the circuit is variable in response to the physical property of the patient,

wherein the sensor is comprised of biocompatible materials,

wherein the sensor is sufficiently flexible to be folded for delivery percutaneously,

wherein the sensor is disk-shaped, and

wherein the sensor has an anchoring system attached to a flat surface of the sensor.

2. The sensor of claim 1 , wherein the capacitor is variable in response to the physical property of the patient.

3. The sensor of claim 1 , wherein the inductor is adapted to allow inductance of a current in the resonant circuit when the sensor is subjected to a time-varying electromagnetic field.

4. The sensor of claim 1 , wherein the physical property is pressure or temperature.

5. The sensor of claim 4 , wherein the physical property is pressure.

6. The sensor of claim 5 , wherein sensor is designed to respond to a range of pressure corresponding to a range of pressure normally found within a vascular aneurysm.

7. The sensor of claim 5 , wherein the sensor is designed to respond to a range of pressure corresponding to a range of pressure normally found in a chamber of the patient's heart.

8. The sensor of claim 1 , wherein the sensor has one or more metallic members attached to a flat surface of the sensor.

9. The sensor of claim 1 , wherein the sensor has one or more metallic members layered within the sensor.

10. The sensor of claim 1 , wherein the sensor has a metallic ring surrounding a portion of the edge of the sensor.

11. The sensor of claim 1 , wherein the anchoring system is a coil.

12. The sensor of claim 1 , wherein the anchoring system has radial projections in an umbrella shape.

13. The sensor of claim 1 , wherein the sensor has at least one cutout to facilitate folding.

14. The sensor of claim 1 , wherein the sensor is capable of being folded into a Z-shape.

15. The sensor of claim 1 , wherein the sensor is capable of being folded into a U-shape.

16. The sensor of claim 1 , wherein a safety wire is attached to one surface of the sensor.

17. The sensor of claim 16 , wherein the safety wire has a sheath.

18. The sensor of claim 17 , wherein the sheath is capable of being slid distally to free the safety wire from the sensor.

19. The sensor of claim 16 , wherein the safety wire is attached to the sensor at an adhesive point.

20. The sensor of claim 19 , wherein the adhesive point comprises an epoxy or a cyanoacrylate material.

21. The sensor of claim 1 , wherein the primary material of construction is flexible, biocompatible polymer or co-polymer.

22. The sensor of claim 21 , wherein the polymer or co-polymer is selected from the group consisting of polyamide, polyethylene teraphthalate, polytetrafluoroethlyene, and co-polymers thereof.

23. The sensor of claim 1 , wherein there are no conductive connections or via holes to provide a direct electrical conduit between an upper inductor coil and a lower inductor coil.

24. The sensor of claim 1 , further comprising a non-linear element that responds in a non-linear manner to an excitation signal.

25. The sensor of claim 1 , wherein the capacitor comprises an array of smaller capacitors.

26. The sensor of claim 1 , wherein the sensor has a loading tab member.

27. The sensor of claim 1 , wherein the sensor is capable of being folded so that a middle section remains substantially flat and the outer edges or surfaces are at substantially a 90° angle to said middle section.

28. The sensor of claim 27 , wherein the sensor is substantially daisy-shaped.

29. A sensor delivery system comprising:

a sensor comprising a self contained resonant circuit comprising a capacitor and an inductor, wherein the circuit is variable in response to the physical property of the patient, and wherein the sensor is sufficiently flexible to be folded for delivery percutaneously, and

a delivery catheter comprising an inner tubular member having an outer surface and an outer tubular member having an inner surface, the outer surface of the inner tubular member and the inner surface of the outer tubular member defining an annular space therebetween;

wherein the sensor is contained within said annular space.

30. The delivery system of claim 29 , wherein the outer tubular member is slidable in the proximal direction to release the sensor.

31. The delivery system of claim 29 , wherein the delivery catheter has an atraumatic tip.

32. The delivery system of claim 31 , wherein the atraumatic tip is attached to the distal end of the inner tubular member.

33. The delivery system of claim 29 , comprising an annular stop proximal to the sensor in the annular space.

34. The delivery system of claim 29 , wherein the annular space in the delivery catheter is configured such that several sensors can be contained within the catheter.

35. The delivery system of claim 29 , wherein the sensor has a safety wire attached thereto and said safety wire extends proximally in a longitudinally extending groove in the inner surface of the outer catheter, the outer surface of the inner catheter, or both.

36. The delivery system of claim 29 , wherein the sensor is one of a plurality of sensors, and wherein each of said plurality of sensors is tuned to operate at a different resonant frequency.

37. The delivery system of claim 36 , wherein said plurality of sensors comprises two sensors.

38. The delivery system of claim 36 , wherein said plurality of sensors comprises three sensors.

39. The delivery system of claim 29 , wherein the sensor is in a curved configuration within the delivery catheter.

40. The delivery system of claim 29 , wherein the sensor is in a Z-shaped configuration within the delivery catheter.

41. The delivery system of claim 29 , wherein the sensor is in a U-shaped configuration within the delivery catheter.

42. The delivery system of claim 29 , wherein the inner catheter has a longitudinally extending lumen so that the delivery system is capable of being slidably positioned over a guidewire.

43. A sensor delivery system comprising:

a sensor comprising a self-contained resonant circuit comprising a capacitor and an inductor, wherein the circuit is variable in response to the physical property of the patient, and wherein the sensor is sufficiently flexible to be folded for delivery percutaneously; and

a delivery catheter comprising an inner tubular member having an outer surface and an outer tubular member having an inner surface, the outer surface of the inner tubular member and the inner surface of the outer tubular member defining an annular space therebetween;

wherein the sensor is contained within the annular space,

wherein the sensor has a tab member that engages a reciprocal slot in the inner tubular member,

wherein the outer tubular member has a slit, and

wherein rotation of the inner tubular member causes the sensor to advance through the slit.

44. The delivery system of claim 43 ,

wherein the inner catheter has a longitudinally extending lumen so that the delivery system is capable of being slidably positioned over a guidewire.

Assignments (7)
CORRECTIVE ASSIGNMENT TO CORRECT THE INCORRECT PATENT NO. 8360098 PREVIOUSLY RECORDED AT REEL: 034812 FRAME: 0034. ASSIGNOR(S) HEREBY CONFIRMS THE CHANGE OF NAME. Recorded Mar 4, 2015
From: CARDIOMEMS INC
To: CARDIOMEMS LLC
Reel/Frame 035225/0040 →
CORRECTIVE ASSIGNMENT TO CORRECT THE TO DELETE INCORRECT US PATENT NO. 8360098 AND REPLACE WITH CORRECT PATENT NO. -- USP 8360984 PREVIOUSLY RECORDED ON REEL 034826 FRAME 0967. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Mar 3, 2015
From: CARDIOMEMS LLC
To: ST. JUDE MEDICAL LUXEMBOURG HOLDINGS II S.A.R.L. ("SJM LUX II")
Reel/Frame 035089/0490 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 27, 2015
From: CARDIOMEMS LLC
To: ST. JUDE MEDICAL LUXEMBOURG HOLDINGS II S.A.R.L. ("SJM LUX II")
Reel/Frame 034826/0967 →
CHANGE OF NAME Recorded Jan 26, 2015
From: CARDIOMEMS INC.
To: CARDIOMEMS LLC
Reel/Frame 034812/0034 →
SECURITY AGREEMENT Recorded Mar 4, 2013
From: CARDIOMEMS, INC.
To: ST. JUDE MEDICAL, INC.
Reel/Frame 029915/0501 →
SECURITY AGREEMENT Recorded Jan 16, 2006
From: CARDIOMEMS, INC.
To: MEDTRONIC, INC.
Reel/Frame 017015/0529 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 7, 2004
From: FONSECA, MARK; ALLEN, MARK; STERN, DAVID; WHITE, JASON; KROH, JASON
To: CARDIOMEMS, INC.
Reel/Frame 015430/0391 →