Tension anisotropy drives fibroblast phenotypic transition by self-reinforcing cell-extracellular matrix mechanical feedback.

张力各向异性通过细胞-细胞外基质的自我增强机械反馈驱动成纤维细胞表型转变

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作者:Alisafaei Farid, Shakiba Delaram, Hong Yuan, Ramahdita Ghiska, Huang Yuxuan, Iannucci Leanne E, Davidson Matthew D, Jafari Mohammad, Qian Jin, Qu Chengqing, Ju David, Flory Dashiell R, Huang Yin-Yuan, Gupta Prashant, Jiang Shumeng, Mujahid Aliza, Singamaneni Srikanth, Pryse Kenneth M, Chao Pen-Hsiu Grace, Burdick Jason A, Lake Spencer P, Elson Elliot L, Huebsch Nathaniel, Shenoy Vivek B, Genin Guy M
Mechanical factors such as stress in the extracellular environment affect the phenotypic commitment of cells. Stress fields experienced by cells in tissues are multiaxial, but how cells integrate such information is largely unknown. Here we report that the anisotropy of stress fields is a critical factor triggering a phenotypic transition in fibroblast cells, outweighing the role of stress amplitude, a factor previously described to modulate such a transition. Combining experimental and computational approaches, we identified a self-reinforcing mechanism in which cellular protrusions interact with collagen fibres to establish tension anisotropy. This anisotropy, in turn, stabilizes the protrusions and enhances their contractile forces. Disruption of this self-reinforcing process, either by reducing tension anisotropy or by inhibiting contractile protrusions, prevents the phenotypic conversion of fibroblasts to contractile myofibroblasts. Overall, our findings support stress anisotropy as a factor modulating cellular responses, expanding our understanding of the role of mechanical forces in biological processes.

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