Department of Chemical Engineering, University of Massachusetts, Amherst, Massachusetts 01003, United States.
Biomacromolecules. 2013 Jul 8;14(7):2294-304. doi: 10.1021/bm400418g. Epub 2013 Jun 24.
We report here the synthesis of a new class of hydrogels with an extremely wide range of mechanical properties suitable for cell studies. Mechanobiology has emerged as an important field in bioengineering, in part due to the development of synthetic polymer gels and fibrous protein biomaterials to control and quantify how cells sense and respond to mechanical forces in their microenvironment. To address the problem of limited availability of biomaterials, in terms of both mechanical range and optical clarity, we have prepared hydrogels that combine poly(ethylene glycol) (PEG) and phosphorylcholine (PC) zwitterions. Our goal was to create a hydrogel platform that exceeds the range of Young's moduli reported for similar hydrogels, while being simple to synthesize and manipulate. The Young's modulus of these "PEG-PC" hydrogels can be tuned over 4 orders of magnitude, much greater than commonly used hydrogels such as PEG-diacrylate, PEG-dimethacrylate, and polyacrylamide, with smaller average mesh sizes and optical clarity. We prepared PEG-PC hydrogels to study how substrate mechanical properties influence cell morphology, focal adhesion structure, and proliferation across multiple mammalian cell lines, as a proof of concept. These novel PEG-PC biomaterials represent a new and useful class of mechanically tunable hydrogels for mechanobiology.
我们在此报告一类新型水凝胶的合成,其具有极宽的机械性能范围,适合细胞研究。机械生物学已成为生物工程中的一个重要领域,部分原因是合成聚合物凝胶和纤维状蛋白质生物材料的发展,这些材料可控制和量化细胞如何感知和响应其微环境中的机械力。为了解决生物材料在机械范围和光学透明度方面的有限可用性问题,我们制备了结合聚乙二醇(PEG)和磷酸胆碱(PC)两性离子的水凝胶。我们的目标是创建一种水凝胶平台,其杨氏模量范围超过类似水凝胶报道的范围,同时易于合成和操作。这些“PEG-PC”水凝胶的杨氏模量可在 4 个数量级范围内进行调节,远远超过常用的水凝胶,如 PEG-二丙烯酸酯、PEG-二甲基丙烯酸酯和聚丙烯酰胺,其平均网格尺寸更小,光学透明度更高。我们制备了 PEG-PC 水凝胶,以研究基质机械性能如何影响多种哺乳动物细胞系的细胞形态、焦点黏附结构和增殖,以此作为概念验证。这些新型 PEG-PC 生物材料代表了一类新的、有用的机械可调谐水凝胶,可用于机械生物学。