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微地形在细胞力学转导中的作用。

The role of microtopography in cellular mechanotransduction.

机构信息

Centre for Cell Engineering, Institute of Molecular, Cell & Systems Biology, College of Medical, Veterinary and Life Sciences, Joseph Black Building, University of Glasgow, Glasgow G12 8QQ, UK.

出版信息

Biomaterials. 2012 Apr;33(10):2835-47. doi: 10.1016/j.biomaterials.2011.11.047. Epub 2012 Jan 16.

Abstract

Mechanotransduction is crucial for cellular processes including cell survival, growth and differentiation. Topographically patterned surfaces offer an invaluable non-invasive means of investigating the cell response to such cues, and greater understanding of mechanotransduction at the cell-material interface has the potential to advance development of tailored topographical substrates and new generation implantable devices. This study focuses on the effects of topographical modulation of cell morphology on chromosomal positioning and gene regulation, using a microgrooved substrate as a non-invasive mechanostimulus. Intra-nuclear reorganisation of the nuclear lamina was noted, and the lamina was required for chromosomal repositioning. It appears that larger chromosomes could be predisposed to such repositioning. Microarrays and a high sensitivity proteomic approach (saturation DiGE) were utilised to identify transcripts and proteins that were subject to mechanoregulated changes in abundance, including mediators of chromatin remodelling and DNA synthesis linked to the changes in nucleolar morphology and the nucleoskeleton.

摘要

力传递对于细胞过程至关重要,包括细胞存活、生长和分化。形貌图案化表面提供了一种非常有价值的非侵入性手段,可以研究细胞对这些信号的反应,并且更好地了解细胞-材料界面的力传递有可能推进定制形貌基底和新一代植入式设备的发展。本研究集中于形貌调制对细胞形态的影响对染色体定位和基因调控的影响,使用微槽基底作为非侵入性力刺激。注意到核层内的核内重组,并且核层对于染色体重定位是必需的。似乎更大的染色体可能更容易发生这种重定位。微阵列和高灵敏度蛋白质组学方法(饱和 DiGE)用于鉴定转录本和蛋白质,这些转录本和蛋白质的丰度受到机械调节的变化的影响,包括与核仁形态和核骨架的变化相关的染色质重塑和 DNA 合成的介质。

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