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Single Molecule Force Measurements in Living Cells Reveal a Minimally Tensioned Integrin State

机译:活细胞中的单分子力测量揭示了最小张力的整联蛋白状态

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摘要

Integrins mediate cell adhesion to the extracellular matrix and enable the construction of complex, multicellular organisms, yet fundamental aspects of integrin-based adhesion remain poorly understood. Notably, the magnitude of the mechanical load experienced by individual integrins within living cells is unclear, due principally to limitations inherent to existing techniques. Here we use FRET-based molecular tension sensors (MTSs) to directly measure the distribution of loads experienced by individual integrins in living cells. We find that a large fraction of integrins bear modest loads of 1–3 pN, while subpopulations bearing higher loads are enriched within adhesions. Further, our data indicate that integrin engagement with the fibronectin synergy site, a secondary binding site specifically for α5β1 integrin, leads to increased levels of α5β1 integrin recruitment to adhesions but not to an increase in overall cellular traction generation. The presence of the synergy site does, however, increase cells’ resistance to detachment by externally applied loads. We suggest that a substantial population of integrins experiencing loads well below their peak capacities can provide cells and tissues with mechanical integrity in the presence of widely varying mechanical loads.
机译:整联蛋白介导细胞对细胞外基质的粘附并能构建复杂的多细胞生物,但对基于整联蛋白的粘附的基本方面仍知之甚少。值得注意的是,主要由于现有技术固有的局限性,尚不清楚活细胞内各个整合素所承受的机械负荷的大小。在这里,我们使用基于FRET的分子张力传感器(MTS)直接测量活细胞中单个整合素所承受的载荷分布。我们发现,整联蛋白中有很大一部分承受1-3 pN的适度负荷,而承受较高负荷的亚群则在粘着剂中富集。此外,我们的数据表明整联蛋白与纤连蛋白协同位点的结合,这是专门针对α5β1整联蛋白的次级结合位点,导致α5β1整联蛋白募集到粘连的水平增加,但不会增加总的细胞牵引力。但是,协同作用位点的存在确实增加了细胞抵抗外部施加的负荷而产生的分离的能力。我们建议大量整合素的负载远低于其峰值容量,可以在存在广泛变化的机械负载的情况下为细胞和组织提供机械完整性。

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