A strategy for mechanically integrating robust hydrogel-tissue hybrid to promote the anti-calcification and endothelialization of bioprosthetic heart valve

Author:

Wu Haoshuang1,Chen Nuoya1,Zheng Tiantian1,Li Li2,Hu Mengyue3,Qin Yumei1,Guo Gaoyang1,Yang Li1,Wang Yunbing1

Affiliation:

1. National Engineering Research Center for Biomaterials, Sichuan University , Chengdu 610065, China

2. Institute of Clinical Pathology, West China Hospital of Sichuan University , Chengdu 610041, China

3. College of Polymer Science and Engineering, Sichuan University , Chengdu 610065, China

Abstract

Abstract Bioprosthetic heart valve (BHV) replacement has been the predominant treatment for severe heart valve diseases over decades. Most clinically available BHVs are crosslinked by glutaraldehyde (GLUT), while the high toxicity of residual GLUT could initiate calcification, severe thrombosis, and delayed endothelialization. Here, we construed a mechanically integrating robust hydrogel-tissue hybrid to improve the performance of BHVs. In particular, recombinant humanized collagen type III (rhCOLIII), which was precisely customized with anti-coagulant and pro-endothelialization bioactivity, was first incorporated into the polyvinyl alcohol (PVA)-based hydrogel via hydrogen bond interactions. Then, tannic acid was introduced to enhance the mechanical performance of PVA-based hydrogel and interfacial bonding between the hydrogel layer and bio-derived tissue due to the strong affinity for a wide range of substrates. In vitro and in vivo experimental results confirmed that the GLUT-crosslinked BHVs modified by the robust PVA-based hydrogel embedded rhCOLIII and TA possessed long-term anti-coagulant, accelerated endothelialization, mild inflammatory response and anti-calcification properties. Therefore, our mechanically integrating robust hydrogel-tissue hybrid strategy showed the potential to enhance the service function and prolong the service life of the BHVs after implantation.

Funder

National Key Research and Development Programs

National Natural Science Foundation of China

CAMS Innovation Fund for Medical Sciences

Publisher

Oxford University Press (OUP)

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