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Mussel‐Inspired Conductive Cryogel as Cardiac Tissue Patch to Repair Myocardial Infarction by Migration of Conductive Nanoparticles
Authors:Leyu Wang  Junzi Jiang  Wenxi Hua  Ali Darabi  Xiaoping Song  Chen Song  Wen Zhong  Malcolm M. Q. Xing  Xiaozhong Qiu
Affiliation:1. Department of Anatomy, Guangdong Provincial Key Laboratory of Construction and Detection in Tissue Engineering, Southern Medical University, Guangdong, Guangzhou, P. R. China;2. Department of Mechanical Engineering, Faculty of Engineering, Department of Biochemistry & Biomedical Genetics, Faculty of Medicine, University of Manitoba, Winnipeg, Manitoba, Canada;3. Children's Hospital Research Institute of Manitoba, Winnipeg, Manitoba, Canada;4. Department of Biosystem Engineering, Faculty of Engineering, University of Manitoba, Winnipeg, Manitoba, Canada
Abstract:The engineered cardiac patch (ECP) is a promising strategy to repair infarct myocardium and restore the cardiac function. An ideal ECP should be able to mimic the primary attributes of native myocardium, which includes a high resilience, good cardiomyocyte adhesion, and synchronous contraction. Here, a mussel‐inspired dopamine crosslinker is used to integrate polypyrrole (Ppy) nanoparticles, gelatin‐methyacrylate, and poly(ethylene glycol) diacrylate into a cryogel form. The dopamine crosslinker and Ppy nanoparticles are coordinated to obtain optimal mechanical and superelastic properties for the ECP. The dopamine facilitates the uniform distribution of the Ppy nanoparticles, which migrate and fuse from the scaffold to the surface of the cardiomyocytes, revealing a potential mechanism for restoring infarct myocardium. The incorporated Ppy nanoparticles thus significantly enhance the functionalization of the cardiomyocytes, resulting in excellent synchronous contraction by increasing the expression of α‐actinin and CX‐43. Cardiomyocytes‐loaded ECP can improve the cardiac function in myocardial‐infarction (MI) affected rat models. The results show that the fractional shortening and ejection fraction are elevated by about 50% and that the infarct size is reduced by 42.6%. Collectively, this study highlights an effective cardiac patch based on mussel‐inspired conductive particle adhesion and a superelastic cryogel promising for the restoration of infarcted myocardium.
Keywords:highly compressible cryogels  mussel‐inspired hydrogel  conductive nanoparticles  cardiac tissue patch
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