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使用RGD功能化聚合物操纵细胞黏附与动力学

Manipulation of cell adhesion and dynamics using RGD functionalized polymers.

作者信息

Li Juyi, Yu Yingjie, Myungwoong Kim, Li Kao, Mikhail John, Zhang Linxi, Chang Chung-Chueh, Gersappe Dilip, Simon Marcia, Ober Christopher, Rafailovich Miriam

机构信息

Department of Materials Science & Chemical Engineering, Stony Brook University, Stony Brook, NY 11794, USA.

出版信息

J Mater Chem B. 2017 Aug 21;5(31):6307-6316. doi: 10.1039/c7tb01209h. Epub 2017 Jul 27.

Abstract

We have successfully synthesized an ABA tri-block co-polymer of poly(methacrylic acid)-block-poly(2-hydroxyethyl methacrylate)-block-poly(methacrylic acid), having M = 100k and 272k where we were able to insert RDG or RGD peptide sequences using thiol-acrylate Michael addition. A soft silicone stamp was then used to imprint a 0.4-micron wide grating of the copolymer with a period of 10 microns. The samples were then examined with atomic force microscopy after application of an external electric field and the pattern was observed to stretch by a factor of five. Cells plated onto these substrates showed clear preference for the striped patterns formed under the influence of the external field, and no preferential attachment to the patterns formed in the absence of the field. Cell migration experiments, using the agarose droplet method, performed on spun cast copolymer films showed minimal migration and adhesion on the substrates without peptides or those with only with the RDG peptide, while good adhesion and significant outward migration was observed for cells plated on the copolymers with the RGD sequence. Taken together these results confirmed our hypothesis that a smart biomimetic polymer substrate could be constructed where functional domains could be revealed selectively allowing us to mimic the natural design of engineered tissue constructs.

摘要

我们成功合成了一种聚(甲基丙烯酸)-嵌段-聚(甲基丙烯酸2-羟乙酯)-嵌段-聚(甲基丙烯酸)的ABA三嵌段共聚物,其分子量分别为100k和272k,通过硫醇-丙烯酸酯迈克尔加成反应,我们能够在其中插入RDG或RGD肽序列。然后使用软硅胶印章在共聚物上压印出周期为10微米、宽度为0.4微米的光栅。在施加外部电场后,用原子力显微镜对样品进行检查,观察到图案拉伸了五倍。接种在这些基质上的细胞对在外部电场影响下形成的条纹图案表现出明显的偏好,而对在无电场情况下形成的图案没有优先附着。使用琼脂糖滴法在旋铸共聚物薄膜上进行的细胞迁移实验表明,在没有肽或仅含有RDG肽的基质上,细胞迁移和粘附极少,而接种在含有RGD序列的共聚物上的细胞则表现出良好的粘附和显著的向外迁移。综合这些结果证实了我们的假设,即可以构建一种智能仿生聚合物基质,在其中可以选择性地揭示功能域,从而使我们能够模仿工程组织构建体的自然设计。

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