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Polymer brushes and self-assembled monolayers: Versatile platforms to control cell adhesion to biomaterials (Review)

机译:聚合物刷和自组装单层膜:多功能平台,可控制细胞与生物材料的粘附(综述)

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This review focuses on the surface modification of substrates with self-assembled monolayers (SAMs) and polymer brushes to tailor interactions with biological systems and to thereby enhance their performance in bioapplications. Surface modification of biomedical implants promotes improved biocompatibility and enhanced implant integration with the host. While SAMs of alkanethiols on gold substrates successfully prevent nonspecific protein adsorption in vitro and can further be modified to tether ligands to control in vitro cell adhesion, extracellular matrix assembly, and cellular differentiation, this model system suffers from lack of stability in vivo. To overcome this limitation, highly tuned polymer brushes have been used as more robust coatings on a greater variety of biologically relevant substrates, including titanium, the current orthopedic clinical standard. In order to improve implant-bone integration, the authors modified titanium implants with a robust SAM on which surface-initiated atom transfer radical polymerization was performed, yielding oligo(ethylene glycol) methacrylate brushes. These brushes afforded the ability to tether bioactive ligands, which effectively promoted bone cell differentiation in vitro and supported significantly better in vivo functional implant integration.
机译:这篇综述着重于用自组装单分子膜(SAMs)和聚合物刷对基材进行表面改性,以调整与生物系统的相互作用,从而增强其在生物应用中的性能。生物医学植入物的表面改性可改善生物相容性,并增强植入物与宿主的整合。尽管在金基质上的链烷硫醇SAM在体外成功阻止了非特异性蛋白的吸附,并且可以进一步修饰成束缚配体以控制体外细胞粘附,细胞外基质装配和细胞分化,但该模型系统存在体内缺乏稳定性的问题。为了克服该限制,已将高度可调的聚合物刷用作更广泛的生物学相关基材(包括目前的骨科临床标准)上的更坚固的涂层。为了改善植入物与骨的结合,作者用坚固的SAM改性了钛植入物,并在其上进行了表面引发的原子转移自由基聚合,生成了低聚(乙二醇)甲基丙烯酸甲酯刷。这些刷子提供了束缚生物活性配体的能力,该配体有效地促进了体外的骨细胞分化并显着改善了体内功能性植入物的整合。

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