用于细胞工程的细胞外基质模拟物粘弹性水凝胶的设计与制备

Zi-Yuan Li, Tian-Yue Li, Hao-Chen Yang, Mu-Hua Ding, Lin-Jie Chen, Shi-Yun Yu, Xiang-Sen Meng, Jia-Jun Jin, Shi-Zhe Sun, Junji Zhang* and He Tian, 
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摘要

细胞外基质(ECM)既可以作为静态支架,也可以作为动态粘弹性环境,积极参与细胞信号传导和机械反馈回路。近年来,具有可调粘弹性特性的生物材料已被用于组织工程和再生医学领域模拟天然ECM。这些材料可以被设计成支持细胞附着、增殖和分化,促进受损组织的修复或替换。此外,ECM模仿的粘弹性调节有助于开发涉及组织机械特性改变的疾病(如纤维化或癌症)的治疗策略。因此,生物材料粘弹性的研究与广泛的生物学和医学学科交叉,为改善人类健康提供了基础细胞生物学和实际解决方案的见解。本文综述了粘弹性水凝胶的设计和制造策略,特别关注两个主要的粘弹性参数,机械强度和应力松弛,以及水凝胶力学如何影响活细胞与周围微环境之间的相互作用。同时,本文讨论了当前水凝胶-细胞力学研究中的瓶颈,重点介绍了粘弹性参数解耦、粘弹性微环境的长期稳定维护以及测试标准和转换协议的普遍适用性等方面的挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design and Fabrication of Viscoelastic Hydrogels as Extracellular Matrix Mimicry for Cell Engineering

The extracellular matrix (ECM) performs both as a static scaffold and as a dynamic, viscoelastic milieu that actively participates in cell signaling and mechanical feedback loops. Recently, biomaterials with tunable viscoelastic properties have been utilized to mimic the native ECM in the fields of tissue engineering and regenerative medicines. These materials can be designed to support cell attachment, proliferation, and differentiation, facilitating the repair or replacement of damaged tissues. Moreover, viscoelasticity modulation of ECM mimicry helps to develop therapeutic strategies for diseases involving altered mechanical properties of tissues such as fibrosis or cancer. The study of biomaterial viscoelasticity thus intersects with a broad spectrum of biological and medical disciplines, offering insights into fundamental cell biology and practical solutions for improving human health. This review delves into the design and fabrication strategies of viscoelastic hydrogels, focusing particularly on two major viscoelastic parameters, mechanical strength and stress relaxation, and how the hydrogel mechanics influence the interactions between living cells and surrounding microenvironments. Meanwhile, this review discusses current bottlenecks in hydrogel-cell mechanics studies, highlighting the challenges in viscoelastic parameter decoupling, long-term stable maintenance of viscoelastic microenvironment, and the general applicability of testing standards and conversion protocols.

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