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通过硫醇-烯点击化学反应构建图案化聚合物刷用于控制细胞黏附和细胞阵列的形成。

Biofunctionalized Patterned Polymer Brushes via Thiol-Ene Coupling for the Control of Cell Adhesion and the Formation of Cell Arrays.

出版信息

Biomacromolecules. 2018 May 14;19(5):1445-1455. doi: 10.1021/acs.biomac.7b01436. Epub 2018 Feb 16.

Abstract

Thiol-ene radical coupling is increasingly used for the biofunctionalization of biomaterials. Thiol-ene chemistry presents interesting features that are particularly attractive for platforms requiring specific reactions with peptides or proteins and the patterning of cells, such as reactivity in physiological conditions and photoactivation. In this work, we synthesized alkene-functionalized (allyl and norbornene residues) antifouling polymer brushes (based on poly(oligoethylene glycol methacrylate)) and studied thiol-ene coupling with a series of thiols including cell adhesive peptides RGD and REDV. The adhesion of umbilical vein endothelial cells (HUVECs) to these interfaces was studied and highlighted the absence of specific integrin engagement to REDV, in contrast to the high level of cell spreading observed on RGD-functionalized polymer brushes. This revealed that αβ integrins (binding to REDV sequences) are not sufficient on their own to sustain HUVEC spreading, in contrast to αβ and αβ integrins. In addition, we photopatterned peptides at the surface of poly(oligoethylene glycol methacrylate) (POEGMA) brushes and characterized the quality of the resulting arrays by epifluorescence microscopy and atomic force microscopy (AFM). This allowed the formation of cell patterns and demonstrated the potential of thiol-ene based photopatterning for the design of cell microarrays.

摘要

硫醇-烯自由基偶联反应越来越多地用于生物材料的功能化。硫醇-烯化学具有有趣的特性,特别适用于需要与肽或蛋白质进行特定反应以及对细胞进行图案化的平台,例如在生理条件下的反应性和光活化性。在这项工作中,我们合成了烯基功能化的(烯丙基和降冰片烯残基)抗污聚合物刷(基于聚(聚乙二醇甲基丙烯酸酯)),并研究了一系列硫醇与硫醇-烯偶联,包括细胞黏附肽 RGD 和 REDV。研究了这些界面上脐静脉内皮细胞(HUVEC)的粘附,并强调了 REDV 没有特定整联蛋白结合,而在 RGD 功能化聚合物刷上观察到细胞铺展水平很高。这表明 αβ 整联蛋白(与 REDV 序列结合)本身不足以维持 HUVEC 的铺展,而 αβ 和 αβ 整联蛋白则不然。此外,我们在聚(聚乙二醇甲基丙烯酸酯)(POEGMA)刷的表面上光图案化了肽,并通过荧光显微镜和原子力显微镜(AFM)对所得阵列的质量进行了表征。这允许形成细胞图案,并证明了基于硫醇-烯的光图案化用于设计细胞微阵列的潜力。

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