IP Library Granted Patent US 10,591,458
Granted Patent B2
US 10,591,458 · App. 15/116,258 · Granted Mar 17, 2020

Anisotropic muscular tissue devices with integrated electrical force readouts

Inventors: Kevin Kit Parker (Cambridge, MA); Johan Ulrik Lind (Boston, MA); Jennifer Ann Lewis (Cambridge, MA); Joost Johan Vlassak (Lexington, MA); Hongyan Yuan (Cangzhou, CN); Travis Alexander Busbee (Somerville, MA); Ian Perkins (Bridgewater, MA); Christophe Chantre (Cambridge, MA)
Assignee: President and Fellows of Harvard College
G01N33/4833A61B5/053A61B5/4519
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Quick Facts
Patent No.
US 10,591,458
App. No.
15/116,258
Granted
Mar 17, 2020
Kind
B2
Abstract

Embodiments described herein are directed to devices for supporting growth of anisotropic muscle tissue layers and in vitro readout and quantification of force generated by the tissue layers using one or more strain-sensing elements integrated into the device. Embodiments also include multiplexed apparatuses of multiple independent devices, methods of fabricating the devices and apparatuses, and methods of using the devices and apparatuses.

Claims (23)

1. A method of measuring a contraction of a muscle tissue, the method comprising:

providing a muscle tissue layer adhered to an underlying flexible substrate comprising one or more strain-sensitive electrical elements configured to have a change in resistance in response to strain in the flexible substrate;

providing a stimulus to the muscle tissue layer under conditions such that the muscle tissue layer contracts causing strain in the flexible substrate and in the one or more strain-sensitive electrical elements; and

measuring a change in resistance of the one or more strain-sensitive electrical elements and relating the measured change in resistance to a force exerted on the flexible substrate by contraction of the muscle tissue layer.

2. The method of claim 1 , wherein the flexible substrate further comprises a hydrogel layer at least partially overlying the one or more strain-sensitive electrical elements.

3. The method of claim 1 , wherein the contraction of the muscle tissue layer causes the strain in the flexible substrate and out of plane bending of the flexible substrate.

4. The method of claim 1 , further comprising:

contacting the muscle tissue layer with a candidate compound; and

measuring a second change in resistance of the one or more strain-sensitive electrical elements in the presence of the candidate compound when a contraction stimulus is applied, wherein a difference between the change in resistance in the absence of the candidate compound and the second change in resistance in the presence of the candidate compound indicates the candidate compound modulates contraction of the muscle tissue layer.

5. The method of claim 1 , wherein the strain in the flexible substrate is in-plane strain of the flexible substrate due to contractions of the muscle tissue layer without out of plane deflection of the flexible substrate.

6. The method of claim 1 , wherein one or more strain-sensitive electrical elements comprise wires embedded in the flexible substrate.

7. The method of claim 1 , wherein one or more strain sensitive electrical elements comprise particles embedded in the flexible substrate.

8. A method of measuring a contraction of a muscle tissue, the method comprising:

providing an actively contractile muscle tissue layer adhered to an underlying flexible substrate comprising one or more strain-sensitive electrical elements configured to have a change in resistance in response to strain in the flexible substrate, wherein the actively contractile muscle tissue layer causes strain in the flexible substrate layer and in the one or more strain-sensitive electrical elements; and

measuring a change in resistance of the one or more strain-sensitive electrical elements and relating the measured change in resistance to a force exerted on the flexible substrate by contraction of the actively contractile muscle tissue layer.

9. The method of claim 8 , wherein the flexible substrate further comprises a hydrogel layer at least partially overlying the one or more strain-sensitive electrical elements.

10. The method of claim 8 , wherein the contraction of the actively contractile muscle tissue layer causes the strain in the flexible substrate and out of plane bending of the flexible substrate.

11. The method of claim 8 , wherein the strain in the flexible substrate is in-plane strain of the flexible substrate layer due to contractions of the actively contractile muscle tissue layer without out of plane deflection of the flexible substrate.

12. The method of claim 8 , further comprising:

contacting the muscle tissue layer with a candidate compound; and

measuring a second change in resistance of the one or more of strain-sensitive electrical elements in the presence of the candidate compound when a contraction stimulus is applied, a difference between the change in resistance in the absence of the candidate compound and the second change in resistance in the presence of the candidate compound indicates the candidate compound modulates contraction of the muscle tissue layer.

13. The method of claim 8 , wherein the one or more strain-sensitive electrical elements comprise wires embedded in the flexible substrate.

14. The method of claim 8 , wherein the one or more strain sensitive electrical elements comprise particles embedded in the flexible substrate.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 6, 2017
From: BUSBEE, TRAVIS ALEXANDER; CHANTRE, CHRISTOPHE; LEWIS, JENNIFER A.; LIND, JOHAN ULRIK; PARKER, KEVIN KIT; PERKINS, IAN; VLASSAK, JOOST J.; YUAN, HONGYAN
To: PRESIDENT AND FELLOWS OF HARVARD COLLEGE
Reel/Frame 041181/0164 →
CONFIRMATORY LICENSE Recorded Aug 18, 2016
From: HARVARD UNIVERSITY
To: NATIONAL INSTITUTES OF HEALTH (NIH), U.S. DEPT. OF HEALTH AND HUMAN SERVICES (DHHS), U.S. GOVERNMENT
Reel/Frame 039735/0825 →
Continuity (2)
Provisional Application 61941119 · Feb 18, 2014
Related Publication 20170016875A1 · Jan 19, 2017
Cited By (2)
US 12,480,848 US 12,668,768