Cargando…

Cardiac-Adaptive Conductive Hydrogel Patch Enabling Construction of Mechanical–Electrical Anisotropic Microenvironment for Heart Repair

The biomimetic construction of a microstructural–mechanical–electrical anisotropic microenvironment adaptive to the native cardiac tissue is essential to repair myocardial infarction (MI). Inspired by the 3D anisotropic characteristic of the natural fish swim bladder (FSB), a novel flexible, anisotr...

Descripción completa

Detalles Bibliográficos
Autores principales: Song, Xiaoping, Zhang, Jifeng, Shen, Si, Liu, Dan, Zhang, Jie, Yin, Wenming, Ye, Genlan, Wang, Leyu, Cai, Liu, Hou, Honghao, Qiu, Xiaozhong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10250027/
https://www.ncbi.nlm.nih.gov/pubmed/37303598
http://dx.doi.org/10.34133/research.0161
_version_ 1785055665421549568
author Song, Xiaoping
Zhang, Jifeng
Shen, Si
Liu, Dan
Zhang, Jie
Yin, Wenming
Ye, Genlan
Wang, Leyu
Cai, Liu
Hou, Honghao
Qiu, Xiaozhong
author_facet Song, Xiaoping
Zhang, Jifeng
Shen, Si
Liu, Dan
Zhang, Jie
Yin, Wenming
Ye, Genlan
Wang, Leyu
Cai, Liu
Hou, Honghao
Qiu, Xiaozhong
author_sort Song, Xiaoping
collection PubMed
description The biomimetic construction of a microstructural–mechanical–electrical anisotropic microenvironment adaptive to the native cardiac tissue is essential to repair myocardial infarction (MI). Inspired by the 3D anisotropic characteristic of the natural fish swim bladder (FSB), a novel flexible, anisotropic, and conductive hydrogel was developed for tissue-specific adaptation to the anisotropic structural, conductive, and mechanical features of the native cardiac extracellular matrix. The results revealed that the originally stiff, homogeneous FSB film was tailored to a highly flexible anisotropic hydrogel, enabling its potential as a functional engineered cardiac patch (ECP). In vitro and in vivo experiments demonstrated the enhanced electrophysiological activity, maturation, elongation, and orientation of cardiomyocytes (CMs), and marked MI repair performance with reduced CM apoptosis and myocardial fibrosis, thereby promoting cell retention, myogenesis, and vascularization, as well as improving electrical integration. Our findings offer a potential strategy for functional ECP and provides a novel strategy to bionically simulate the complex cardiac repair environment.
format Online
Article
Text
id pubmed-10250027
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher AAAS
record_format MEDLINE/PubMed
spelling pubmed-102500272023-06-09 Cardiac-Adaptive Conductive Hydrogel Patch Enabling Construction of Mechanical–Electrical Anisotropic Microenvironment for Heart Repair Song, Xiaoping Zhang, Jifeng Shen, Si Liu, Dan Zhang, Jie Yin, Wenming Ye, Genlan Wang, Leyu Cai, Liu Hou, Honghao Qiu, Xiaozhong Research (Wash D C) Research Article The biomimetic construction of a microstructural–mechanical–electrical anisotropic microenvironment adaptive to the native cardiac tissue is essential to repair myocardial infarction (MI). Inspired by the 3D anisotropic characteristic of the natural fish swim bladder (FSB), a novel flexible, anisotropic, and conductive hydrogel was developed for tissue-specific adaptation to the anisotropic structural, conductive, and mechanical features of the native cardiac extracellular matrix. The results revealed that the originally stiff, homogeneous FSB film was tailored to a highly flexible anisotropic hydrogel, enabling its potential as a functional engineered cardiac patch (ECP). In vitro and in vivo experiments demonstrated the enhanced electrophysiological activity, maturation, elongation, and orientation of cardiomyocytes (CMs), and marked MI repair performance with reduced CM apoptosis and myocardial fibrosis, thereby promoting cell retention, myogenesis, and vascularization, as well as improving electrical integration. Our findings offer a potential strategy for functional ECP and provides a novel strategy to bionically simulate the complex cardiac repair environment. AAAS 2023-06-08 /pmc/articles/PMC10250027/ /pubmed/37303598 http://dx.doi.org/10.34133/research.0161 Text en Copyright © 2023 Xiaoping Song et al. https://creativecommons.org/licenses/by/4.0/Exclusive licensee Science and Technology Review Publishing House. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution License 4.0 (CC BY 4.0) (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Song, Xiaoping
Zhang, Jifeng
Shen, Si
Liu, Dan
Zhang, Jie
Yin, Wenming
Ye, Genlan
Wang, Leyu
Cai, Liu
Hou, Honghao
Qiu, Xiaozhong
Cardiac-Adaptive Conductive Hydrogel Patch Enabling Construction of Mechanical–Electrical Anisotropic Microenvironment for Heart Repair
title Cardiac-Adaptive Conductive Hydrogel Patch Enabling Construction of Mechanical–Electrical Anisotropic Microenvironment for Heart Repair
title_full Cardiac-Adaptive Conductive Hydrogel Patch Enabling Construction of Mechanical–Electrical Anisotropic Microenvironment for Heart Repair
title_fullStr Cardiac-Adaptive Conductive Hydrogel Patch Enabling Construction of Mechanical–Electrical Anisotropic Microenvironment for Heart Repair
title_full_unstemmed Cardiac-Adaptive Conductive Hydrogel Patch Enabling Construction of Mechanical–Electrical Anisotropic Microenvironment for Heart Repair
title_short Cardiac-Adaptive Conductive Hydrogel Patch Enabling Construction of Mechanical–Electrical Anisotropic Microenvironment for Heart Repair
title_sort cardiac-adaptive conductive hydrogel patch enabling construction of mechanical–electrical anisotropic microenvironment for heart repair
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10250027/
https://www.ncbi.nlm.nih.gov/pubmed/37303598
http://dx.doi.org/10.34133/research.0161
work_keys_str_mv AT songxiaoping cardiacadaptiveconductivehydrogelpatchenablingconstructionofmechanicalelectricalanisotropicmicroenvironmentforheartrepair
AT zhangjifeng cardiacadaptiveconductivehydrogelpatchenablingconstructionofmechanicalelectricalanisotropicmicroenvironmentforheartrepair
AT shensi cardiacadaptiveconductivehydrogelpatchenablingconstructionofmechanicalelectricalanisotropicmicroenvironmentforheartrepair
AT liudan cardiacadaptiveconductivehydrogelpatchenablingconstructionofmechanicalelectricalanisotropicmicroenvironmentforheartrepair
AT zhangjie cardiacadaptiveconductivehydrogelpatchenablingconstructionofmechanicalelectricalanisotropicmicroenvironmentforheartrepair
AT yinwenming cardiacadaptiveconductivehydrogelpatchenablingconstructionofmechanicalelectricalanisotropicmicroenvironmentforheartrepair
AT yegenlan cardiacadaptiveconductivehydrogelpatchenablingconstructionofmechanicalelectricalanisotropicmicroenvironmentforheartrepair
AT wangleyu cardiacadaptiveconductivehydrogelpatchenablingconstructionofmechanicalelectricalanisotropicmicroenvironmentforheartrepair
AT cailiu cardiacadaptiveconductivehydrogelpatchenablingconstructionofmechanicalelectricalanisotropicmicroenvironmentforheartrepair
AT houhonghao cardiacadaptiveconductivehydrogelpatchenablingconstructionofmechanicalelectricalanisotropicmicroenvironmentforheartrepair
AT qiuxiaozhong cardiacadaptiveconductivehydrogelpatchenablingconstructionofmechanicalelectricalanisotropicmicroenvironmentforheartrepair