IP Library Granted Patent US 11,819,277
Granted Patent B2
US 11,819,277 · App. 17/051,051 · Granted Nov 21, 2023

Intraocular pressure sensing material, devices, and uses thereof

Inventors: Mark B. Sherwood (Gainesville, FL); Peng Jiang (Gainesville, FL); Aaron David Webel (Columbia, MO)
Assignee: University of Florida Research Foundation, Inc.
A61B3/16A61B5/0075A61B5/686A61F2/16A61F9/00781A61F2250/0081A61M25/0045A61M2205/584
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Quick Facts
Patent No.
US 11,819,277
App. No.
17/051,051
Granted
Nov 21, 2023
Kind
B2
Abstract

Described herein are eye implants that can include a pressure-responsive material that can be capable of changing color in response to pressure exerted on it. Also described here are methods of implanting and using the eye implants described herein to monitor intraocular pressure in a subject. The pressure-responsive material can be used to diagnose and monitor human or animal subjects.

Claims (27)

1. An intraocular implant comprising:

a pressure-responsive material, the pressure-responsive material comprising chromogenic photonic crystals, wherein the chromogenic photonic crystals change conformation resulting in a change of color of the pressure-responsive material in response to an amount of pressure exerted on the shape-memory chromogenic photonic crystals and wherein the chromogenic photonic crystal comprise smart shape memory polymers (SMPs), the SMPs comprising polyester/polyether-based urethane acrylates blended with tripropylene glycol diacrylate, wherein the implant is an intraocular lens.

2. The intraocular implant of claim 1 , wherein the pressure-responsive material is a first color at a normal physiologic intraocular pressure of about 10 to about 20 mm Hg, wherein the first color ranges from about 500 nm to 550 nm corresponding to a green color.

3. The intraocular implant of claim 2 , wherein the pressure-responsive material is a second color at an elevated intraocular pressure of greater than about 20 mm Hg, wherein the second color ranges from about 400 nm to 450 nm corresponding to a blue color.

4. The intraocular implant of claim 3 , wherein the pressure-responsive material is a third color at a reduced intraocular pressure of less than about 10 mm Hg, wherein the third color ranges from about 600 nm to 650 nm corresponding to a red color.

5. A method comprising:

implanting into the eye of a subject in need thereof an implant as in claim 1 , wherein the subject in need thereof is a human or a canine.

6. The method of claim 5 , further comprising detecting the color of the pressure-responsive material of the implant without contacting the eye and quantitatively measuring the color of the pressure-responsive material of the implant using a spectrometer.

7. The method of claim 5 , wherein the subject in need thereof has or is at risk for ocular hypertension or wherein the subject in need thereof has glaucoma.

8. A method of measuring intraocular pressure in a subject having an implant as in claim 1 , the method comprising:

detecting the color of the pressure-responsive material of the implant without contacting the eye.

9. The method of claim 8 , wherein the subject is a human or a canine, and wherein the subject has or is at risk for ocular hypertension or wherein the subject in need thereof has glaucoma.

10. The method of claim 8 , further comprising quantitatively measuring the color of the pressure-responsive material of the implant using a spectrometer.

11. An intraocular implant comprising:

a pressure-responsive material, the pressure-responsive material comprising chromogenic photonic crystals, wherein the chromogenic photonic crystals change conformation resulting in a change of color of the pressure-responsive material in response to an amount of pressure exerted on the shape-memory chromogenic photonic crystals and wherein the chromogenic photonic crystal comprise smart shape memory polymers (SMPs), the SMPs comprising polyester/polyether-based urethane acrylates blended with tripropylene glycol diacrylate, wherein the implant is a glaucoma drainage device.

12. The intraocular implant of claim 11 , wherein the pressure responsive material is coated on a surface of a drainage tube of the glaucoma drainage device.

13. The intraocular implant of claim 12 , wherein the surface is an outer surface of the drainage tube.

14. The intraocular implant of claim 12 , wherein the surface is an inner surface of the drainage tube.

15. An intraocular implant comprising:

a pressure-responsive material, the pressure-responsive material comprising chromogenic photonic crystals, wherein the chromogenic photonic crystals change conformation resulting in a change of color of the pressure-responsive material in response to an amount of pressure exerted on the shape-memory chromogenic photonic crystals and wherein the chromogenic photonic crystal comprise smart shape memory polymers (SMPs), the SMPs comprising polyester/polyether-based urethane acrylates blended with tripropylene glycol diacrylate, wherein the implant comprises one or more layers of the pressure-responsive material embedded in all or part of a surface of the implant or component thereof.

16. An intraocular implant comprising:

a pressure-responsive material, the pressure-responsive material comprising chromogenic photonic crystals, wherein the chromogenic photonic crystals change conformation resulting in a change of color of the pressure-responsive material in response to an amount of pressure exerted on the shape-memory chromogenic photonic crystals and wherein the chromogenic photonic crystal comprise smart shape memory polymers (SMPs), the SMPs comprising polyester/polyether-based urethane acrylates blended with tripropylene glycol diacrylate, wherein the implant comprises one or more layers of the pressure-responsive material coated on all or part of a surface of the implant or component thereof.

17. The intraocular implant of claim 16 , wherein each of the one or more layers is about 0.5 mm to about 3 mm thick.

18. An intraocular implant comprising:

a pressure-responsive material, the pressure-responsive material comprising chromogenic photonic crystals, wherein the chromogenic photonic crystals change conformation resulting in a change of color of the pressure-responsive material in response to an amount of pressure exerted on the shape-memory chromogenic photonic crystals and wherein the chromogenic photonic crystal comprise smart shape memory polymers (SMPs), the SMPs comprising polyester/polyether-based urethane acrylates blended with tripropylene glycol diacrylate, wherein the pressure-responsive material is integrated with a component of the implant.

19. An intraocular implant comprising:

a pressure-responsive material, the pressure-responsive material comprising chromogenic photonic crystals, wherein the chromogenic photonic crystals change conformation resulting in a change of color of the pressure-responsive material in response to an amount of pressure exerted on the shape-memory chromogenic photonic crystals and wherein the chromogenic photonic crystal comprise smart shape memory polymers (SMPs), the SMPs comprising polyester/polyether-based urethane acrylates blended with tripropylene glycol diacrylate, wherein the pressure-responsive material comprises a hydrogel.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 16, 2021
From: SHERWOOD, MARK B.; JIANG, PENG; WEBEL, AARON DAVID
To: UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INC.
Reel/Frame 056557/0745 →
CONFIRMATORY LICENSE Recorded Apr 26, 2021
From: FLORIDA, UNIVERSITY OF
To: DEFENSE THREAT REDUCTION AGENCY, US DOD
Reel/Frame 056046/0251 →
Continuity (2)
Provisional Application 62687614 · Jun 20, 2018
Related Publication 20210186326A1 · Jun 24, 2021
Cited By (1)
US 12,611,144