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具有高弹性可调性的智能水凝胶作为仿生细胞载体。

Smart hydrogels with high tunability of stiffness as a biomimetic cell carrier.

机构信息

Hefei National Laboratory for Physical Sciences at the Microscale, School of Life Sciences, University of Science and Technology of China, Hefei, China.

Department of Cardiovascular Surgery, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, China.

出版信息

Cell Biol Int. 2019 Feb;43(2):84-97. doi: 10.1002/cbin.11091.

Abstract

Human tissues are sophisticated ensembles of various distinct cell types encapsulated in the biomechanical cues of the extracellular matrix. It has been known matrix stiffness plays a pivot role in cellular events and tissue-scale biological processes. Thus, materials that can mimic mechanical environments of tissues in vitro and possess wide, physiologically relevant elasticity are highly desirable. Hydrogels provide a good cell platform to mimic native cellular environment. However, the limited stiffness tunability, and hinders the efforts to reproduce the biomechanical microenvironment of many in vivo progresses. These problems have been addressed by the recently emerged great quantity of exquisitely designed smart hydrogels. Smart hydrogels that respond sensitively to external stimuli are good choices due to the convenience in regulating their mechanical properties. In this review, we summarize the latest progress in the development of stimuli-responsive hydrogels as a cell carrier (platform for cell culture) which spans a wide range of stiffness. Different kinds of smart hydrogels corresponding to various stimuli, including pH, temperature, light, metal ions, and forces, are introduced and their stiffness modulation through physicochemical procedures are reported.

摘要

人体组织是各种不同细胞类型的复杂组合,被包裹在细胞外基质的生物力学线索中。众所周知,基质硬度在细胞事件和组织尺度的生物过程中起着关键作用。因此,能够在体外模拟组织力学环境且具有广泛的、生理相关弹性的材料是非常理想的。水凝胶为模拟天然细胞环境提供了良好的细胞平台。然而,其有限的硬度可调性限制了对许多体内进展的生物力学微环境的再现。最近出现的大量精心设计的智能水凝胶解决了这些问题。由于方便调节其机械性能,对外部刺激敏感响应的智能水凝胶是很好的选择。在本文中,我们总结了作为细胞载体(细胞培养平台)的响应型水凝胶的最新进展,这些水凝胶的硬度跨度很大。介绍了对应各种刺激(包括 pH 值、温度、光、金属离子和力)的不同种类的智能水凝胶,并报道了通过物理化学方法对其硬度的调节。

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