IP Library Patent Application 11227691
Patent Application
App. No. 11/227,691

Shape memory thin film embolic protection device with frame

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Quick Facts
Patent No.
US None
App. No.
11/227,691
Abstract

A removable vascular filter system for capture and retrieval of emboli while allowing continuous perfusion of blood. This system is useful for any percutaneous angioplasty, stenting, thrombolysis or tissue ablation procedure. The system may minimize the incidence of stroke, myocardial infarction or other clinical complications that may be associated with these procedures.

Claims (48)

1 . A removable percutaneously delivered filter system comprising:

a delivery system, including a sheath;

a filter section operatively associated with the delivery system having a proximal end and a distal end, the proximal end having at least one opening allowing fluid to flow therethrough and the distal end having a multiplicity of pores for allowing fluid to flow therethrough and capturing particles of a predetermined size, the filter section being formed from a shape memory thin film material; and

a frame cooperatively associated with the filter section for adding radial strength.

2 . The removable percutaneously delivered filter system of claim 1 wherein the frame is fully within the filter.

3 . A vascular filter system comprising:

a catheter delivery system, including a sheath; and

a collapsible filter; and

a collapsible frame adjacent the filter providing radial support thereto.

4 . The vascular filter system of claim 2 wherein the frame is fully within the filter.

5 . The vascular filter system of claim 3 , wherein the filter further comprises:

a proximal end having at least one opening therein; and

a distal end having a plurality of openings therein, wherein blood flow enters the filter through the at least one opening and exits the filter through the plurality of openings while capturing embolic materials in the distal end of the filter.

6 . The vascular filter system of claim 5 , wherein a capture profile of the filter is determined according to a size of each of the plurality of openings at the distal end of the filter.

7 . The vascular filter system of claim 6 , wherein the size of each of the plurality of openings at the distal end of the filter ranges from 50 μm to 200 μm.

8 . The vascular filter system of claim 7 , wherein the filter is radiopaque.

9 . The vascular filter system of claim 8 , wherein increasing a surface area of the filter increases the radiopacity of the filter.

10 . The vascular filter system of claim 8 , wherein the filter is further comprised of a thin film.

11 . The vascular filter system of claim 10 , wherein the thin film is comprised of biocompatible Nitinol.

12 . The vascular filter system of claim 10 , wherein the thin film is comprised of any of the group of biocompatible materials consisting of metals, metal alloys, textiles, polymers and composites.

13 . The vascular filter system of claim 11 , wherein the filter is further comprised of a shape memory metal.

14 . The vascular filter system of claim 13 , wherein the filter is further comprised of a super eleastic or Martensitic shape memory metal.

15 . The vascular filter system of claim 14 , wherein the filter is comprised of a nickel titanium alloy with about 50 to 60 weight percent nickel.

16 . The vascular filter system of claim 13 , wherein the frame is comprised of the shape memory metal.

17 . The vascular filter system of claim 16 , wherein the filter slides over the frame.

18 . The vascular filter system of claim 16 , wherein the frame and filter are connected.

19 . The vascular filter system of claim 2 , wherein the filter and frame are attached to the catheter delivery system such that retracting the sheath deploys the filter and frame.

20 . The vascular filter system of claim 2 , wherein the catheter delivery system further comprises a frame guidewire having the frame at an end thereof, and a tubular filter guidewire with the filter at an end thereof, the frame guidewire nestable within the tubular filter guidewire as deployment of the filter and frame occurs.

21 . The vascular filter system of claim 20 , wherein the frame is withdrawable through the tubular filter guidewire after deployment of the frame and filter.

22 . The vascular filter system of claim 21 , wherein the filter is withdrawable through the tubular filter guidewire after withdrawal of the frame and capture of embolic material.

23 . A method of deploying a vascular filter system comprising:

attaching a vascular filter and frame to a catheter delivery device, the catheter delivery device including a sheath;

inserting the catheter delivery device to an intended site through the vasculature of a patient;

retracting the sheath to deploy the filter and the frame; and

capturing embolic material in the filter.

24 . The method of claim 23 , further comprising:

radially supporting the filter opposite walls of the intended site by deployment of the frame.

25 . The method of claim 24 , further comprising utilizing blood flow to support the filter opposite the walls of the intended site.

26 . The method of claim 24 , wherein the filter and frame are comprised of biocompatible shape memory materials.

27 . The method of claim 24 , wherein the filter is deployed first.

28 . The method of claim 24 , wherein the frame is deployed first.

29 . The method of claim 24 , further comprising:

providing a catheter delivery device having a frame guidewire with the frame at an end thereof, and a tubular filter guidewire with the filter at an end thereof, the frame guidewire nestable within the tubular filter guidewire;

inserting the catheter with nested frame and filter guidewires to the intended site;

retracting the sheath to deploy the filter and frame at the intended site;

withdrawing the frame and frame guidewire through the tubular filter guidewire;

capturing embolic material in the filter; and

withdrawing the filter and tubular filter guidewire.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 1, 2025
From: CARDINAL HEALTH SWITZERLAND 515 GMBH; CARDINAL HEALTH 529, LLC; CORDIS CORPORATION; FLEXIBLE STENTING SOLUTIONS, INC
To: CORDIS US CORP
Reel/Frame 072987/0675 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 22, 2018
From: VACTRONIX SCIENTIFIC, INC.
To: VACTRONIX SCIENTIFIC, LLC
Reel/Frame 046203/0682 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 3, 2018
From: ADVANCED BIO PROSTHETIC SURFACES, LTD., A WHOLLY OWNED SUBSIDIARY OF PALMAZ SCIENTIFIC, INC.
To: VACTRONIX SCIENTIFIC, INC.
Reel/Frame 045709/0913 →
MERGER Recorded Jul 9, 2014
From: NITINOL DEVELOPMENT CORPORATION
To: CORDIS CORPORATION
Reel/Frame 033269/0649 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 12, 2006
From: DINH, MINH Q.; RUSSELL, SCOTT M.
To: NITINOL DEVELOPMENT CORPORATION
Reel/Frame 017182/0691 →