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控制巯基-马来酰亚胺迈克尔加成凝胶动力学,以生成均一的聚(乙二醇)水凝胶。

Controlling the kinetics of thiol-maleimide Michael-type addition gelation kinetics for the generation of homogenous poly(ethylene glycol) hydrogels.

机构信息

Chemical and Biomolecular Engineering Department, University of California Los Angeles, 420 Westwood Plaza, Los Angeles, CA 90095, USA.

Chemical and Biomolecular Engineering Department, University of California Los Angeles, 420 Westwood Plaza, Los Angeles, CA 90095, USA.

出版信息

Biomaterials. 2016 Sep;101:199-206. doi: 10.1016/j.biomaterials.2016.05.053. Epub 2016 Jun 2.

Abstract

The development of synthetic hydrogels analogs for the extracellular matrix has proven a useful and important tool to study the role of specific signals on biological outcomes in vitro and to serve as scaffolds for tissue repair. Although the importance of physical properties (e.g. microstructure and stiffness) in the micro and nano scale on cell fate has been widely reported, bulk modulus measurements are typically used to characterize hydrogels. Thus, the physical properties of hydrogels have not been widely tested for their controlled physical properties in the nano and micron scales. In this report, we show that although fast Michael-type addition crosslinked hydrogels appear uniform by bulk modulus readings and visual inspection, they are non-uniform in the micron scale, with high and low crosslinking regions. Further, we show that these regions of high and low crosslinking result in differences in cellular behavior. Since these regions are random in density and shape, this leads to misleading cellular responses. These inconsistences are most widely observed when the gel forms faster than the material can be mixed. This study slows the gelation rate of thiol-maleimide cross-linked hydrogels in order to overcome the cellular response variability between batches.

摘要

合成水凝胶类似物的发展已被证明是一种有用且重要的工具,可用于研究特定信号在体外对生物结果的作用,并可作为组织修复的支架。尽管微纳米尺度上物理性质(例如微观结构和硬度)对细胞命运的重要性已被广泛报道,但通常使用体积弹性模量测量来表征水凝胶。因此,水凝胶的物理性质尚未在纳米和微米尺度上针对其可控物理性质进行广泛测试。在本报告中,我们表明,尽管快速迈克尔型加成交联水凝胶通过体积弹性模量读数和目视检查看起来是均匀的,但在微米尺度上却是不均匀的,存在高交联和低交联区域。此外,我们表明,这些高交联和低交联区域会导致细胞行为的差异。由于这些区域的密度和形状是随机的,因此会导致误导性的细胞反应。当凝胶形成速度快于材料混合速度时,这种不一致性最为明显。本研究通过降低巯基-马来酰亚胺交联水凝胶的凝胶化速率,以克服批次间细胞反应的可变性。

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