IP Library Patent Application 12025350
Patent Application
App. No. 12/025,350

BLOOD ACESS APPARATUS AND METHOD

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Quick Facts
Patent No.
US None
App. No.
12/025,350
Abstract

A blood access for dialysis includes a radially distensible support structure having an open lattice structure defining a support wall having interstitial open areas and defining exterior and luminal wall surfaces; a first porous polymeric portion having a plurality of pores, the first porous polymeric portion being securably disposed over at least a portion of the exterior wall portion of the support structure; a second porous polymeric portion having a plurality of pores, the second porous polymeric portion being securably disposed over at least a portion of the luminal portion of the support structure; and a biodegradable and/or bioabsorbable material disposed within the pores of the first polymeric portion and/or pores of the second polymeric portion.

Claims (80)

1 . A blood access device comprising:

a radially distensible support structure having an open lattice structure defining a support wall having interstitial open areas and defining exterior and luminal wall surfaces; and

a first porous polymeric portion having a plurality of pores, the first porous polymeric portion being securably disposed over at least a portion of the exterior wall portion of the support structure.

2 . The blood access device of claim 1 , further comprising:

a second porous polymeric portion having a plurality of pores, the second porous polymeric portion being securably disposed over at least a portion of the luminal portion of the support structure.

3 . The blood access device of claim 1 , wherein the first porous polymeric portion and the second porous polymeric portion are a unitary porous polymeric portion.

4 . The blood access device of claim 2 , wherein the first and/or the second polymeric portions encapsulate the support structure.

5 . The blood access device of claim 2 , wherein the first polymeric portion and/or the second polymeric portion are disposed within interstitial open areas of the support structure.

6 . The blood access device of claim 2 , further comprising:

a biodegradable and/or bioabsorbable material disposed within the pores of the first polymeric portion and/or pores of the second polymeric portion.

7 . The blood access device of claim 2 , further comprising a porous layer or coating of expanded polytetrafluoroethylene disposed over a luminal surface of the second polymeric portion.

8 . The blood access device of claim 1 , wherein the support structure is a self-expanding support structure.

9 . The blood access device of claim 1 , wherein the support structure is selected from the group consisting of a filament-based structure, an open slotted structure, a mesh or fenestrated structure, and combinations thereof.

10 . The blood access device of claim 9 , wherein the filament based structure is selected from the group consisting of a braided structure, a knitted structure, a wound structure, a helical structure, a zig-zag structure, and combinations thereof.

11 . The blood access device of claim 1 , wherein the support structure comprises nitinol, stainless steel, cobalt-based alloy such as Elgiloy®, platinum, gold, titanium, tantalum, niobium, polymeric materials and combinations thereof.

12 . The blood access device of claim 1 , wherein the support structure comprises nitinol.

13 . The blood access device of claim 1 , wherein the support structure comprises vapor deposited nitinol.

14 . The blood access device of claim 1 , wherein the first polymeric portion comprises an elastomeric material.

15 . The blood access device of claim 2 , wherein the second polymeric portion comprises an elastomeric material.

16 . The blood access device of claim 2 , wherein the first and second polymeric portions comprise an elastomeric material.

17 . The blood access device of claim 16 , wherein the elastomeric material of the first polymeric portion is the same as the elastomeric material of the second polymeric portion.

18 . The blood access device of claim 16 , wherein the elastomeric material of the first polymeric portion is different from the elastomeric material of the second polymeric portion.

19 . The blood access device of claim 14 , wherein the elastomeric material is selected from the group consisting of styrene isobutylene styrenes, natural rubbers, silicones, polyurethanes, and combinations, co-polymers, block polymers and random polymers thereof.

20 . The blood access device of claim 14 , wherein the elastomeric material comprises styrene isobutylene styrene polymer and co-polymers, block polymers and random polymers thereof.

21 . The blood access device of claim 2 , wherein the first and second polymeric portions comprise textile portions, non-textile portions, and combinations thereof.

22 . The blood access device of claim 2 , wherein the first and second polymeric portions comprise filament spun portions, wherein the filaments comprise an elastomeric material.

23 . The blood access device of claim 22 , wherein the elastomeric material comprises styrene isobutylene styrene polymer and co-polymers, block polymers and random polymers thereof.

24 . The blood access device of claim 2 , further comprising a therapeutic agent disposed within the pores of the first polymeric portion and/or pores of the second polymeric portion.

25 . The blood access device of claim 2 , wherein the pores of the first polymeric portion and/or the second polymeric portion have a pore size from about 40 microns to about 150 microns.

26 . The blood access device of claim 2 , wherein the wall of the support structure has a thickness from about 0.0005 inches (0.01 mm) to about 0.008 inches (0.2 mm).

27 . The blood access device of claim 2 , wherein the wall of the support structure has a thickness from about 0.001 inches (0.03 nm) to about 0.004 inches (0.1 mm).

28 . The blood access device of claim 2 , wherein the first and second polymeric portions have an individual or combined thickness from about 0.002 inches (50 microns) to about 0.06 inches (1.5 mm).

29 . A blood access for dialysis comprising:

a radially distensible support structure having an open lattice structure defining a support wall having interstitial open areas and defining exterior and luminal wall surfaces;

a first porous polymeric portion having a plurality of pores, the first porous polymeric portion being securably disposed over at least a portion of the exterior wall portion of the support structure;

a second porous polymeric portion having a plurality of pores, the second porous polymeric portion being securably disposed over at least a portion of the luminal portion of the support structure; and

a biodegradable and/or bioabsorbable material disposed within the pores of the first polymeric portion and/or pores of the second polymeric portion.

30 . The device of claim 29 , wherein the support structure comprises nitinol.

31 . The device of claim 29 , wherein the first and the second polymeric portions comprises elastomeric styrene-isobutylene-styrene.

32 . A system for providing blood access for dialysis, comprising:

a radially distensible support structure having an open lattice structure defining a support wall having interstitial open areas and defining exterior and luminal wall surfaces;

a first porous polymeric portion having a plurality of pores, the first porous polymeric portion being securably disposed over at least a portion of the exterior wall portion of the support structure;

a second porous polymeric portion having a plurality of pores, the second porous polymeric portion being securably disposed over at least a portion of the luminal portion of the support structure;

a biodegradable and/or bioabsorbable material disposed within the pores of the first polymeric portion and/or pores of the second polymeric portion; and

a delivery device for transluminally delivering the blood access within a bodily lumen.

33 . A method of reducing arteriovenous fistula maturation comprising:

cutting or severing a vein into a first and a second portion, each portion having open ends;

ligating the open end of the first vein portion;

inserting a blood access device through the open end of the second vein portion; and

anastomosing the open end of the second vein to an artery.

34 . The method of claim 33 , wherein the blood access device comprises:

a radially distensible support structure having an open lattice structure defining a support wall having interstitial open areas and defining exterior and luminal wall surfaces;

a first porous polymeric portion having a plurality of pores, the first porous polymeric portion being securably disposed over at least a portion of the exterior wall portion of the support structure;

a second porous polymeric portion having a plurality of pores, the second porous polymeric portion being securably disposed over at least a portion of the luminal portion of the support structure; and

a biodegradable and/or bioabsorbable material disposed within the pores of the first polymeric portion and/or pores of the second polymeric portion.

35 . The method of claim 33 , wherein the blood access device is useable prior to complete maturation of the arteriovenous fistula.

36 . The method of claim 35 , wherein the blood access device is useable within about one week after being implanted.

37 . A method of creating an arteriovenous fistula comprising:

cutting or severing a vein into a first and a second portion, each portion having open ends;

ligating the open end of the first vein portion;

inserting a blood access device through the open end of the second vein portion; and

anastomosing the open end of the second vein to an artery.

38 . The method of claim 37 , wherein the blood access device comprises:

a radially distensible support structure having an open lattice structure defining a support wall having interstitial open areas and defining exterior and luminal wall surfaces;

a first porous polymeric portion having a plurality of pores, the first porous polymeric portion being securably disposed over at least a portion of the exterior wall portion of the support structure;

a second porous polymeric portion having a plurality of pores, the second porous polymeric portion being securably disposed over at least a portion of the luminal portion of the support structure; and

a biodegradable and/or bioabsorbable material disposed within the pores of the first polymeric portion and/or pores of the second polymeric portion.

39 . The method of claim 38 , wherein the blood access device is useable prior to complete maturation of the arteriovenous fistula.

40 . The method of claim 39 , wherein the blood access device is useable within about one week after being implanted.

41 . The method of claim 37 , wherein the support structure tends to limit the expansion or an internal diameter of the vein proximal to the site of implantation of the blood access device.

42 . The method of claim 37 , wherein the blood access device encompasses a minor portion of the second vein portion.

43 . The method of claim 37 , wherein the blood access device encompasses a major portion of the second vein portion.

44 . A method for making a blood access device for use in dialysis, comprising:

providing a porous polymeric substrate;

disposing a radially distensible support structure over the porous polymeric structure,

providing another porous polymeric substrate over the support structure; and

securing the substrates to one and the other anchor to the support structure.

45 . The method of claim 44 , where the steps of providing the porous polymeric substrates further comprise providing an elastomeric material.

46 . The method of claim 45 , further comprising the step of spinning or spraying filaments of the elastomeric material.

47 . The method of claim 46 , wherein the elastomeric material styrene isobutylene styrene polymer and co-polymers, block polymers and random polymers thereof.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 3, 2013
From: ACACIA RESEARCH GROUP LLC
To: LIFESHIELD SCIENCES LLC
Reel/Frame 030740/0225 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 26, 2013
From: BOSTON SCIENTIFIC SCIMED, INC.
To: ACACIA RESEARCH GROUP LLC
Reel/Frame 030694/0461 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 26, 2008
From: JENSON, MARK L.; DRASLER, WILLIAM J.; HILL, JASON P.; KOKATE, JAYDEEP; SOGARD, DAVID J.; HAVERKOST, PAT
To: BOSTON SCIENTIFIC SCIMED, INC.
Reel/Frame 021440/0541 →