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通过水溶性树枝状聚乙二醇甲基丙烯酸酯的表面引发原子转移自由基聚合对 PDMS 进行表面改性。

Surface modification of PDMS by surface-initiated atom transfer radical polymerization of water-soluble dendronized PEG methacrylate.

机构信息

Colleges of Science and Veterinary Medicine, Northwest A&F University, Yangling, Shaanxi, PR China.

出版信息

Colloids Surf B Biointerfaces. 2011 Nov 1;88(1):85-92. doi: 10.1016/j.colsurfb.2011.06.019. Epub 2011 Jun 22.

DOI:10.1016/j.colsurfb.2011.06.019
PMID:21752608
Abstract

The current paper reports the synthesis of a highly hydrophilic, antifouling dendronized poly(3,4,5-tris(2-(2-(2-hydroxylethoxy)ethoxy)ethoxy)benzyl methacrylate) (PolyPEG) brush using surface initiated atom transfer radical polymerization (SI-ATRP) on PDMS substrates. The PDMS substrates were first oxidized in H(2)SO(4)/H(2)O(2) solution to transform the Si-CH(3) groups on their surfaces into Si-OH groups. Subsequently, a surface initiator for ATRP was immobilized onto the PDMS surface, and PolyPEG was finally grafted onto the PDMS surface via copper-mediated ATRP. Various characterization techniques, including contact angle measurements, attenuated total reflection infrared spectroscopy, and X-ray photoelectron spectroscopy, were used to ascertain the successful grafting of the PolyPEG brush onto the PDMS surface. Furthermore, the wettability and stability of the PDMS-PolyPEG surface were examined by contact angle measurements. Anti-adhesion properties were investigated via protein adsorption, as well as bacterial and cell adhesion studies. The results suggest that the PDMS-PolyPEG surface exhibited durable wettability and stability, as well as significantly anti-adhesion properties, compared with native PDMS surfaces. Additionally, our results present possible uses for the PDMS-PolyPEG surface as adhesion barriers and anti-fouling or functional surfaces in biomedical applications.

摘要

本文报道了一种高度亲水、抗污的树枝状聚(3,4,5-三(2-(2-(2-羟乙氧基)乙氧基)乙氧基)苄基甲基丙烯酸酯)(PolyPEG)刷的合成,该刷是通过在 PDMS 基底上进行表面引发原子转移自由基聚合(SI-ATRP)得到的。PDMS 基底首先在 H(2)SO(4)/H(2)O(2)溶液中氧化,将其表面上的 Si-CH(3)基团转化为 Si-OH 基团。随后,将 ATRP 的表面引发剂固定在 PDMS 表面上,最后通过铜介导的 ATRP 将 PolyPEG 接枝到 PDMS 表面上。各种表征技术,包括接触角测量、衰减全反射红外光谱和 X 射线光电子能谱,用于确定 PolyPEG 刷成功接枝到 PDMS 表面上。此外,通过接触角测量来检查 PDMS-PolyPEG 表面的润湿性和稳定性。通过蛋白质吸附以及细菌和细胞粘附研究来研究抗粘附性能。结果表明,与天然 PDMS 表面相比,PDMS-PolyPEG 表面具有持久的润湿性和稳定性,以及显著的抗粘附性能。此外,我们的结果表明,PDMS-PolyPEG 表面在生物医学应用中作为粘附屏障和抗污或功能表面具有潜在的用途。

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