| Literature DB >> 36190461 |
Chaojie Yu1,2, Zhiwei Yue3, Mingyue Shi1, Lijie Jiang3, Shuang Chen1, Mengmeng Yao1, Qingyu Yu1, Xiaojun Wu1, Hong Zhang1, Fanglian Yao1,2, Changyong Wang4, Hong Sun3, Junjie Li1,2.
Abstract
Although hydrogel-based patches have shown promising therapeutic efficacy in myocardial infarction (MI), synergistic mechanical, electrical, and biological cues are required to restore cardiac electrical conduction and diastolic-systolic function. Here, an injectable mechanical-electrical coupling hydrogel patch (MEHP) is developed via dynamic covalent/noncovalent cross-linking, appropriate for cell encapsulation and minimally invasive implantation into the pericardial cavity. Pericardial fixation and hydrogel self-adhesiveness properties enable the MEHP to highly compliant interfacial coupling with cyclically deformed myocardium. The self-adaptive MEHP inhibits ventricular dilation while assisting cardiac pulsatile function. The MEHP with the electrical conductivity and sensitivity to match myocardial tissue improves electrical connectivity between healthy and infarcted areas and increases electrical conduction velocity and synchronization. Overall, the MEHP combined with cell therapy effectively prevents ventricular fibrosis and remodeling, promotes neovascularization, and restores electrical propagation and synchronized pulsation, facilitating the clinical translation of cardiac tissue engineering.Entities:
Keywords: conducting polymer; injectable hydrogel; mechanical−electrical coupling; myocardial repair; tissue engineering
Year: 2022 PMID: 36190461 DOI: 10.1021/acsnano.2c05168
Source DB: PubMed Journal: ACS Nano ISSN: 1936-0851 Impact factor: 18.027