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细胞间和细胞与细胞外基质黏附的空间分布在维持细胞对中E-钙黏蛋白分子张力的同时调节力平衡。

Spatial distribution of cell-cell and cell-ECM adhesions regulates force balance while main-taining E-cadherin molecular tension in cell pairs.

作者信息

Sim Joo Yong, Moeller Jens, Hart Kevin C, Ramallo Diego, Vogel Viola, Dunn Alex R, Nelson W James, Pruitt Beth L

机构信息

Department of Mechanical Engineering, Stanford University, Stanford, CA 94305.

Department of Biology, Stanford University, Stanford, CA 94305.

出版信息

Mol Biol Cell. 2015 Jul 1;26(13):2456-65. doi: 10.1091/mbc.E14-12-1618. Epub 2015 May 13.

Abstract

Mechanical linkage between cell-cell and cell-extracellular matrix (ECM) adhesions regulates cell shape changes during embryonic development and tissue homoeostasis. We examined how the force balance between cell-cell and cell-ECM adhesions changes with cell spread area and aspect ratio in pairs of MDCK cells. We used ECM micropatterning to drive different cytoskeleton strain energy states and cell-generated traction forces and used a Förster resonance energy transfer tension biosensor to ask whether changes in forces across cell-cell junctions correlated with E-cadherin molecular tension. We found that continuous peripheral ECM adhesions resulted in increased cell-cell and cell-ECM forces with increasing spread area. In contrast, confining ECM adhesions to the distal ends of cell-cell pairs resulted in shorter junction lengths and constant cell-cell forces. Of interest, each cell within a cell pair generated higher strain energies than isolated single cells of the same spread area. Surprisingly, E-cadherin molecular tension remained constant regardless of changes in cell-cell forces and was evenly distributed along cell-cell junctions independent of cell spread area and total traction forces. Taken together, our results showed that cell pairs maintained constant E-cadherin molecular tension and regulated total forces relative to cell spread area and shape but independently of total focal adhesion area.

摘要

细胞间和细胞与细胞外基质(ECM)黏附之间的机械连接在胚胎发育和组织稳态过程中调节细胞形状变化。我们研究了MDCK细胞对中细胞间和细胞与ECM黏附之间的力平衡如何随细胞铺展面积和纵横比而变化。我们使用ECM微图案化来驱动不同的细胞骨架应变能状态和细胞产生的牵引力,并使用Förster共振能量转移张力生物传感器来询问跨细胞间连接的力的变化是否与E-钙黏蛋白分子张力相关。我们发现,连续的外周ECM黏附导致细胞间和细胞与ECM的力随着铺展面积的增加而增加。相比之下,将ECM黏附限制在细胞对的远端会导致连接长度缩短和细胞间力恒定。有趣的是,细胞对内的每个细胞产生的应变能都比相同铺展面积的孤立单细胞更高。令人惊讶的是,无论细胞间力如何变化,E-钙黏蛋白分子张力都保持恒定,并且沿着细胞间连接均匀分布,与细胞铺展面积和总牵引力无关。综上所述,我们的结果表明,细胞对维持恒定的E-钙黏蛋白分子张力,并相对于细胞铺展面积和形状调节总力,但与总黏着斑面积无关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a64/4571300/8a75a39caebe/2456fig1.jpg

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