Materials and Design Approaches for a Fully Bioresorbable, Electrically Conductive and Mechanically Compliant Cardiac Patch Technology

Author:

Ryu Hanjun12ORCID,Wang Xinlong34,Xie Zhaoqian567,Kim Jihye8,Liu Yugang34,Bai Wubin9,Song Zhen56,Song Joseph W.34,Zhao Zichen56,Kim Joohee8,Yang Quansan8,Xie Janice Jie34,Keate Rebecca34,Wang Huifeng34,Huang Yonggang10,Efimov Igor R.81112,Ameer Guillermo Antonio3481314,Rogers John A.3481516

Affiliation:

1. Department of Advanced Materials Engineering Chung‐Ang University Anseong 17546 Republic of Korea

2. Department of Intelligence Energy and Industry Chung‐Ang University Seoul 06974 Republic of Korea

3. Department of Biomedical Engineering Northwestern University Evanston IL 60208 USA

4. Center for Advanced Regenerative Engineering Northwestern University Evanston IL 60208 USA

5. State Key Laboratory of Structural Analysis Optimization and CAE Software for Industrial Equipment Dalian University of Technology Dalian 116024 P. R. China

6. Department of Engineering Mechanics Dalian University of Technology Dalian 116024 P. R. China

7. DUT‐BSU Joint Institute Dalian University of Technology Dalian 116024 P. R. China

8. Querrey Simpson Institute for Bioelectronics Northwestern University Evanston IL 60208 USA

9. Department of Applied Physical Sciences University of North Carolina at Chapel Hill Chapel Hill NC 27599 USA

10. Departments of Civil and Environmental Engineering, Mechanical Engineering, and Materials Science and Engineering Center for Bio‐integrated Electronics Northwestern University Evanston IL 60208 USA

11. Department of Biomedical Engineering Northwestern University Chicago IL 60611 USA

12. Department of Medicine Northwestern University Chicago IL 60611 USA

13. Department of Surgery Feinberg School of Medicine Northwestern University Chicago IL 60611 USA

14. Chemistry of Life Processes Institute Northwestern University Evanston IL 60208 USA

15. Department of Mechanical Engineering Northwestern University Evanston IL 60208 USA

16. Department of Materials Science and Engineering Northwestern University Evanston IL 60208 USA

Abstract

AbstractMyocardial infarction (MI) is one of the leading causes of death and disability. Recently developed cardiac patches provide mechanical support and additional conductive paths to promote electrical signal propagation in the MI area to synchronize cardiac excitation and contraction. Cardiac patches based on conductive polymers offer attractive features; however, the modest levels of elasticity and high impedance interfaces limit their mechanical and electrical performance. These structures also operate as permanent implants, even in cases where their utility is limited to the healing period of tissue damaged by the MI. The work presented here introduces a highly conductive cardiac patch that combines bioresorbable metals and polymers together in a hybrid material structure configured in a thin serpentine geometry that yields elastic mechanical properties. Finite element analysis guides optimized choices of layouts in these systems. Regular and synchronous contraction of human induced pluripotent stem cell‐derived cardiomyocytes on the cardiac patch and ex vivo studies offer insights into the essential properties and the bio‐interface. These results provide additional options in the design of cardiac patches to treat MI and other cardiac disorders.

Funder

National Research Foundation of Korea

American Heart Association

National Natural Science Foundation of China

National Science Foundation

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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