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Review

Advances in Conductive Biomaterials for Cardiac Tissue Engineering: Design, Fabrication, and Functional Integration

1
Department of Engineering Management, College of Engineering, Prince Sultan University, Riyadh 12435, Saudi Arabia
2
Department of Physics, KPR Institute of Engineering and Technology, Coimbatore 641 407, Tamil Nadu, India
3
Department of Physics, Kongunadu Arts and Science College, Coimbatore 641 029, Tamil Nadu, India
4
Department of Mechanical Design and Production Engineering, Faculty of Engineering, Zagazig University, Zagazig 44519, Sharkia, Egypt
*
Authors to whom correspondence should be addressed.
Polymers 2025, 17(5), 620; https://doi.org/10.3390/polym17050620
Submission received: 31 January 2025 / Revised: 18 February 2025 / Accepted: 20 February 2025 / Published: 26 February 2025

Abstract

Heart failure functions as one of the leading global causes of death because it falls under the cardiovascular disease categories. Cardiac tissue engineering advances by developing new tissues to rebuild heart functions in individuals with damaged heart structures as it gives medical treatment possibilities to patients reaching their final stage. Most of the heart tissue consists of cardiomyocytes which make up between 80 to 90 percent of the total organ space. The cardiomyocytes retain their specialized cell structure which includes elongation, but they align to produce contractions as they span into length. After myocardial infarction, doctors need elastic soft platforms to heal the heart tissue because they mimic its natural attributes. Special consideration must be paid to the material selection for appropriate mechanical properties, given that different substances have separate qualities. Stem cell survival becomes higher, and cell differentiation develops more efficiently when a proper scaffold design is implemented, thus enabling tissue repair. Conductive biomaterials demonstrate the best candidate status for cardiac tissue engineering due to their ability to both convey electrical signals and boost biological actions as well as promote cellular communication. Scientists conduct life science research on stem cells because the cells present unique characteristics. Biomaterials with conductive properties within cardiac tissue engineering help the body recover heart tissue while improving the functionality of damaged structures in the myocardium. This article analyzes various conductive biomaterials used in biomedical practices for cardiac tissue healing applications.
Keywords: biomaterials; cardiac tissue; functional integration; heart failure; design and fabrication biomaterials; cardiac tissue; functional integration; heart failure; design and fabrication

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MDPI and ACS Style

Khan, T.; Vadivel, G.; Ayyasamy, K.; Murugesan, G.; Sebaey, T.A. Advances in Conductive Biomaterials for Cardiac Tissue Engineering: Design, Fabrication, and Functional Integration. Polymers 2025, 17, 620. https://doi.org/10.3390/polym17050620

AMA Style

Khan T, Vadivel G, Ayyasamy K, Murugesan G, Sebaey TA. Advances in Conductive Biomaterials for Cardiac Tissue Engineering: Design, Fabrication, and Functional Integration. Polymers. 2025; 17(5):620. https://doi.org/10.3390/polym17050620

Chicago/Turabian Style

Khan, Tabrej, Gayathri Vadivel, Kalaivani Ayyasamy, Gowtham Murugesan, and Tamer A. Sebaey. 2025. "Advances in Conductive Biomaterials for Cardiac Tissue Engineering: Design, Fabrication, and Functional Integration" Polymers 17, no. 5: 620. https://doi.org/10.3390/polym17050620

APA Style

Khan, T., Vadivel, G., Ayyasamy, K., Murugesan, G., & Sebaey, T. A. (2025). Advances in Conductive Biomaterials for Cardiac Tissue Engineering: Design, Fabrication, and Functional Integration. Polymers, 17(5), 620. https://doi.org/10.3390/polym17050620

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