Department of Molecular Spectroscopy, Max Planck Institute for Polymer Research, Mainz, 55128, Germany.
Department of Biomedical Engineering, University of Texas at Austin, Austin, TX, 78712, USA.
Adv Biosyst. 2020 Nov;4(11):e2000111. doi: 10.1002/adbi.202000111. Epub 2020 Nov 1.
Intermediate filament (IF) proteins are a class of proteins that constitute different filamentous structures in mammalian cells. As such, IF proteins are part of the load-bearing cytoskeleton and support the nuclear envelope. Molecular dynamics simulations show that IF proteins undergo secondary structural changes to compensate mechanical loads, which is confirmed by experimental in vitro studies on IF hydrogels. However, the structural response of intracellular IF to mechanical load is yet to be elucidated in cellulo. Here, in situ nonlinear Raman imaging combined with multivariate data analysis is used to quantify the intracellular secondary structure of the IF cytoskeletal protein vimentin under different states of cellular tension. It is found that cells under native cellular tension contain more unfolded vimentin than chemically or physically relaxed specimens. This indicates that the unfolding of IF proteins occurs intracellularly when sufficient forces are applied, suggesting that IF structures act as local force sensors in the cell to mark locations under large mechanical tension.
中间丝(IF)蛋白是构成哺乳动物细胞中不同丝状结构的一类蛋白质。因此,IF 蛋白是承重细胞骨架的一部分,为核膜提供支撑。分子动力学模拟表明,IF 蛋白会发生二级结构变化以补偿机械负荷,这一现象已通过 IF 水凝胶的体外实验研究得到证实。然而,细胞内 IF 对机械负荷的结构响应在细胞内还尚未阐明。在这里,利用原位非线性拉曼成像结合多元数据分析,定量研究了细胞张力不同状态下,细胞骨架蛋白波形蛋白的细胞内二级结构。结果发现,在天然细胞张力下的细胞中,未折叠的波形蛋白比化学或物理松弛的标本多。这表明,当施加足够的力时,IF 蛋白在细胞内会发生展开,这表明 IF 结构在细胞内充当局部力传感器,以标记在较大机械张力下的位置。