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聚乙二醇化 PNIPAm 微凝胶中血清蛋白吸附的温度依赖性。

Temperature dependence of serum protein adsorption in PEGylated PNIPAm microgels.

机构信息

Department of Plastics Engineering and NSF Center for High-Rate Nanomanufacturing, University of Massachusetts, Lowell, MA 01854, United States.

出版信息

Colloids Surf B Biointerfaces. 2013 Mar 1;103:244-52. doi: 10.1016/j.colsurfb.2012.10.053. Epub 2012 Nov 9.

Abstract

The effect of PEGylation on the thermal response and protein adsorption resistance of crosslinked PNIPAm microgels was investigated. It was found that the presence of PEG, its molecular weight (M(n) 300 and 1100 g/mol) and its concentration (10, 20, and 30 wt.%) each significantly influenced both the value and breadth of the volume phase transition temperature (VPTT) and the adsorption of bovine serum albumin (BSA) on the surface of the microgels. Specifically, as the degree of PEGylation increased, the value and breadth of the VPTT increased, and the adsorption of BSA decreased significantly. The critical concentration that minimizes protein adsorption on PNIPAm-co-PEGMa microgels was found to be 20 wt.% of PEGMa. This critical concentration was confirmed qualitatively using laser scanning confocal microscopy (LSCM). Evidence for the effect of the molecular weight of PEG on the structure of PNIPAm-co-PEGMa microgels was provided by thermal analysis using differential scanning calorimetry. The VPTT study revealed significant differences in the composition of the microgels when PEGMa samples with two different molecular weights were used as comonomers with PNIPAm. It was determined that the molecular weight and concentration of PEGMa controls the structure of the microgels, which in turn influences their temperature response and protein adsorption resistance properties of the microgels. Our work establishes specific design concepts for controlling the molecular architecture of the hydrogels in order to tune their temperature response and biocompatibility for use in a variety of biomedical applications such as, cell encapsulation, drug delivery and tissue engineering applications.

摘要

研究了 PEG 化对交联 PNIPAm 微凝胶的热响应和蛋白质抗吸附性的影响。结果表明,PEG 的存在、其分子量(300 和 1100 g/mol)及其浓度(10、20 和 30 wt.%)都显著影响微凝胶的体积相转变温度(VPTT)的值和宽度,以及牛血清白蛋白(BSA)在微凝胶表面的吸附。具体而言,随着 PEG 化程度的增加,VPTT 的值和宽度增加,BSA 的吸附显著降低。发现最小化 PNIPAm-co-PEGMa 微凝胶上蛋白质吸附的临界浓度为 20 wt.% 的 PEGMa。这一临界浓度使用激光扫描共聚焦显微镜(LSCM)进行了定性确认。使用差示扫描量热法进行热分析为 PEG 分子量对 PNIPAm-co-PEGMa 微凝胶结构的影响提供了证据。VPTT 研究表明,当使用两种不同分子量的 PEGMa 作为与 PNIPAm 的共聚单体时,微凝胶的组成有显著差异。结果表明,PEGMa 的分子量和浓度控制着微凝胶的结构,进而影响其温度响应和蛋白质抗吸附性。我们的工作为控制水凝胶的分子结构建立了具体的设计概念,以调节其温度响应和生物相容性,从而在各种生物医学应用中得到应用,如细胞封装、药物输送和组织工程应用。

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