IP Library › Granted Patent US 12,383,659
Granted Patent B2
US 12,383,659 · App. 17/944,966 · Granted Aug 12, 2025

High strength porous materials incorporating water soluble polymers

Inventors: Michael Bassett (Hampton, NH); James F. Biggins (Waltham, MA); Daniel T. Donahue (Cambridge, MA); Matthew M. Mannarino (Burlington, MA)
Assignee: Access Vascular, Inc.
A61L29/126A61L29/049A61L29/145C08J9/28C08K3/16C08K3/22C08K3/32C08K3/38C08K5/053C08L29/04C08L33/10C08L33/26C08L85/02A61L2400/18C08J2329/04C08K2003/321C08K2003/387C08L2203/02C08L2205/22
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Quick Facts
Patent No.
US 12,383,659
App. No.
17/944,966
Granted
Aug 12, 2025
Kind
B2
Abstract

High strength biomedical materials and processes for making the same are disclosed. Included in the disclosure are nanoporous hydrophilic solids that can be extruded with a high aspect ratio to make high strength medical catheters and other devices with lubricious and biocompatible surfaces. Polymers may be entrapped in pores of materials to provide a durable modification of the materials.

Claims (29)

1. An article, comprising:

a polymeric material comprising a first water soluble polymer having a plurality of pores;

a second water soluble polymer, same as the first water soluble polymer and positioned within at least a portion of the plurality of pores;

an osmotic agent present in the polymeric material, and

wherein the polymeric material has a Young's elastic modulus of greater than or equal to 500 MPa in a dehydrated state and a Young's elastic modulus of less than or equal to 300 MPa and greater than or equal to 5 MPa at an equilibrium water content state.

2. An article as in claim 1 , wherein the plurality of pores have a mean pore size of less than or equal to 500 nm and greater than or equal to 10 nm.

3. An article as in claim 1 , wherein at least 50% of the plurality of pores have a diameter of less than or equal to 1 μm.

4. An article as in claim 1 , wherein the article has a porosity of greater than or equal to 5% and less than or equal to 50% in a dehydrated state.

5. An article as in claim 1 , wherein the article is configured to swell in an amount greater than or equal to 5 w/w % and less than or equal to 50 w/w % from a dehydrated state to an equilibrium water content state.

6. An article as in claim 5 , wherein swelling occurs in less than or equal to 60 minutes in water.

7. An article as in claim 5 , wherein swelling occurs in less than or equal to 60 minutes in standard normal saline.

8. An article as in claim 1 , wherein the article has a Young's elastic modulus of greater than or equal to 1 GPa in a dehydrated state.

9. An article as in claim 1 , wherein the article has a Young's elastic modulus of less than or equal to 100 MPa and greater than or equal to 5 MPa at an equilibrium water content state.

10. An article as in claim 1 , wherein the article is substantially lubricious at an equilibrium water content state.

11. An article as in claim 1 , wherein the article has an average surface roughness (Ra) of less than or equal to 500 nm at an equilibrium water content state.

12. An article as in claim 1 , wherein the article has a coefficient of friction of less than or equal to 0.10 at an equilibrium water content state.

13. An article as in claim 1 , wherein the article comprises an osmotic agent present in the polymeric material in an amount greater than or equal to 0.05 w/w % and less than or equal to 2 w/w % versus the total article weight.

14. An article as in claim 1 , wherein the osmotic agent is selected from the group consisting of phosphates, borates, sodium chloride, citrates, ethylenediaminetetraacetates, sulfites, sulfates, hyposulfites, metal oxides, selenium dioxide, selenium trioxide, selenous acid, selenic acid, nitrates, silicates, and botanic acid.

15. An article as in claim 1 , wherein the first water soluble polymer is present in the article in an amount of greater than or equal to 20 w/w % and less than or equal to 95 w/w % at an equilibrium water content state.

16. An article as in claim 1 , wherein the polymeric material has a water contact angle of less than or equal to 45 degrees at an equilibrium water content state.

17. An article as in claim 1 , wherein the first water soluble polymer does not comprise covalent crosslinking agents.

18. An article as in claim 1 , wherein the first water soluble polymer is selected from the group consisting of poly(vinyl alcohol), poly(acrylic acid), polyethylene glycol, poly(vinyl pyrrolidone), poly(methacrylic sulfobetaine), poly(acrylic sulfobetaine), poly(methacrylic carboxybetaine), poly(acrylic carboxybetaine), povidone, polyacrylamide, poly(N-(2-hydroxypropyl) methacrylamide), polyoxazolines, polyphosphates, polyphosphazenes, polyvinyl acetate, polypropylene glycol, poly(N-isopropylacrylamide), poly(2-hydroxymethylmethacrylate), and combinations thereof.

19. An article as in claim 1 , wherein the polymeric material comprises a mixture comprising the first water soluble polymer and a third water soluble polymer.

20. An article as in claim 19 , wherein the third water soluble polymer is selected from the group consisting of poly(vinyl alcohol), poly(acrylic acid), polyethylene glycol, poly(vinyl pyrrolidone), poly(methacrylic sulfobetaine), poly(acrylic sulfobetaine), poly(methacrylic carboxybetaine), poly(acrylic carboxybetaine), povidone, polyacrylamide, poly(N-(2-hydroxypropyl) methacrylamide), polyoxazolines, polyphosphates, polyphosphazenes, polyvinyl acetate, polypropylene glycol, poly(N-isopropylacrylamide), poly(2-hydroxymethylmethacrylate), and combinations thereof.

21. An article as in claim 1 , wherein the second water soluble polymer is selected from the group consisting of poly(vinyl alcohol), poly(acrylic acid), polyethylene glycol, or poly(vinyl pyrrolidone), poly(methacrylic sulfobetaine), poly(acrylic sulfobetaine), poly(methacrylic carboxybetaine), poly(acrylic carboxybetaine), povidone polyacrylamide, poly(N-(2-hydroxypropyl) methacrylamide), polyoxazolines, polyphosphates, polyphosphazenes, polyvinyl acetate, polypropylene glycol, poly(N-isopropylacrylamide), poly(2-hydroxymethylmethacrylate), and combinations thereof.

22. An article as in claim 1 , wherein the article is configured for use with a medical device such as a catheter, a balloon, a shunt, a wound drain, an infusion port, a drug delivery device, a tube, a contraceptive device, a feminine hygiene device, an endoscope, a grafts, a pacemaker, an implantable cardioverter-defibrillator, a cardiac resynchronization device, a cardiovascular device lead, a ventricular assist device, an endotracheal tube, a tracheostomy tube, an implantable sensor, a ventilator pump, and an ophthalmic device.

23. An article as in claim 22 , wherein the catheter is selected from the group consisting of central venous catheters, peripheral central catheters, midline catheters, peripheral catheters, tunneled catheters, dialysis access catheters, urinary catheters, neurological catheters, percutaneous transluminal angioplasty catheters, and peritoneal catheters.

24. An article as in claim 1 , wherein the second water soluble polymer is positioned within the bulk of the first water soluble polymer.

25. An article as in claim 1 , wherein less than 0.5 w/w % sorption of a therapeutic agent to the bulk of the first water-soluble polymer occurs at equilibrium water content after flushing with 5× the volume of the article with water or normal saline.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 4, 2022
From: BASSETT, MICHAEL; BIGGINS, JAMES F.; DONAHUE, DANIEL; MANNARINO, MATTHEW M.
To: ACCESS VASCULAR
Reel/Frame 061297/0638 →
Continuity (3)
Continuation 16014886 · Jun 21, 2018
Provisional Application 62523100 · Jun 21, 2017
Related Publication 20230256141A1 · Aug 17, 2023
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