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模块化聚乙二醇支架提供了分离刚度和蛋白质浓度对 PC12 细胞影响的能力。

Modular poly(ethylene glycol) scaffolds provide the ability to decouple the effects of stiffness and protein concentration on PC12 cells.

机构信息

Department of Biomedical Engineering, Saint Louis University, St. Louis, MO 63103, USA.

出版信息

Acta Biomater. 2011 Nov;7(11):3841-9. doi: 10.1016/j.actbio.2011.06.054. Epub 2011 Jul 13.

Abstract

This research focused on developing a modular poly(ethylene glycol) (PEG) scaffold, assembled from PEG microgels and collagen I, to provide an environment to decouple the chemical and mechanical cues within a three-dimensional scaffold. We first characterized the microgel fabrication process, examining the size, polydispersity, swelling ratio, mesh size and storage modulus of the polymer particles. The resulting microgels had a low polydispersity index, PDI=1.08, and a diameter of ~1.6 μm. The mesh size of the microgels, calculated from the swelling ratio, was 47.53 Å. Modular hydrogels (modugels) were then formed by compacting N-(3-dimethylaminopropyl)-N'-ethylcarbodiimide hydrochloride/N-hydroxysuccinimidyl group-activated microgels with PEG-4arm-amine and 0, 1, 10, or 100 μg ml(-1) collagen. The stiffness (G(∗)) of the modugels was not significantly altered with the addition of collagen, allowing for modification of the chemical environment independent from the mechanical properties of the scaffold. PC12 cell aggregation increased in modugels as collagen concentrations increased and cell viability in modugels was improved over bulk PEG hydrogels. Overall, these results indicate that further exploration of modular scaffolds formed from microgels could allow for a better understanding of the relationship between the chemical and mechanical properties and cellular behavior.

摘要

本研究专注于开发一种由聚乙二醇 (PEG) 微凝胶和 I 型胶原组装而成的模块化 PEG 支架,以提供一种环境,从而使三维支架内的化学和机械线索解耦。我们首先对微凝胶的制造工艺进行了表征,考察了聚合物颗粒的粒径、多分散性、溶胀比、网格尺寸和储能模量。所得微凝胶的多分散指数 PDl=1.08,直径约为 1.6μm。根据溶胀比计算出的微凝胶的网格尺寸为 47.53Å。然后,通过将 N-(3-二甲基氨基丙基)-N'-乙基碳二亚胺盐酸盐/N-羟基琥珀酰亚胺基团活化的微凝胶与 PEG-4 臂-胺以及 0、1、10 或 100μg ml(-1)的胶原压缩,形成模块化水凝胶(modugels)。随着胶原的加入,modugels 的硬度(G(∗))没有明显改变,从而可以独立于支架的机械性能来改变化学环境。随着胶原浓度的增加,PC12 细胞在 modugels 中的聚集增加,并且 modugels 中的细胞活力优于大块 PEG 水凝胶。总的来说,这些结果表明,对由微凝胶形成的模块化支架的进一步探索可以更好地理解化学和机械性能与细胞行为之间的关系。

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