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细胞环境的分子工程:细胞与纳米数字表面的粘附

Molecular engineering of cellular environments: cell adhesion to nano-digital surfaces.

作者信息

Spatz Joachim P, Geiger Benjamin

机构信息

Department of New Materials and Biosystems, Max Planck Institute for Metals Research, Stuttgart, Germany.

出版信息

Methods Cell Biol. 2007;83:89-111. doi: 10.1016/S0091-679X(07)83005-6.

Abstract

Engineering of the cellular microenvironment has become a valuable means to guide cellular activities such as spreading, motility, differentiation, proliferation, or apoptosis. This chapter summarizes recent approaches to surface patterning such as topography and chemical patterning from the micrometer to the nanometer scale, and illustrates their application to cellular studies. Particular attention is devoted to nanolithography with self-assembled diblock copolymer micelles that are biofunctionalized with peptide ligands-a method that offers unsurpassed spatial resolution for the positioning of signaling molecules over extended surface areas. Such interfaces are defined here as "nano-digital surfaces," since they enable the counting of individual signaling complexes separated by a biologically inert background. The approach enables the testing of cellular responses to individual signaling molecules as well as their spatial ordering. Detailed consideration is also given to the fact that protein clusters such as those found at focal adhesion sites represent, to a large extent, hierarchically organized cooperativity among various proteins.

摘要

细胞微环境工程已成为引导细胞活动(如铺展、运动、分化、增殖或凋亡)的一种有价值的手段。本章总结了从微米尺度到纳米尺度的表面图案化的最新方法,如形貌和化学图案化,并阐述了它们在细胞研究中的应用。特别关注的是用肽配体进行生物功能化的自组装二嵌段共聚物胶束的纳米光刻技术——这种方法在大面积表面上定位信号分子方面提供了无与伦比的空间分辨率。这种界面在这里被定义为“纳米数字表面”,因为它们能够对由生物惰性背景分隔的单个信号复合物进行计数。该方法能够测试细胞对单个信号分子的反应及其空间排列。还详细考虑了这样一个事实,即诸如在粘着斑位点发现的蛋白质簇在很大程度上代表了各种蛋白质之间的层次组织协同作用。

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