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Cell dipole behaviour revealed by ECM sub-cellular geometry

机译:通过ECM亚细胞几何揭示细胞偶极行为

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摘要

Cells sense and respond to their mechanical environment by exerting forces on their surroundings. The way forces are modulated by extra-cellular matrix (ECM) properties plays a key role in tissue homoeostasis. Using highly resolved micropatterns that constrain cells into the same square envelope but vary the adhesive geometry, here we investigate how the adhesive micro-environment affects the architecture of actin cytoskeleton and the orientation of traction forces. Our data demonstrate that local adhesive changes can trigger orientational ordering of stress fibres throughout the cell, suggesting that cells are capable of integrating information on ECM geometry at the whole-cell level. Finally, we show that cells tend to generate highly polarized force pattern, that is, unidirectional pinching, in response to adequate adhesive conditions. Hence, the geometry of adhesive environment can induce cellular orientation, a process which may have significant implications for the formation and mechanical properties of tissues.
机译:细胞通过向周围环境施加力来感知并响应其机械环境。通过细胞外基质(ECM)特性调节力的方式在组织稳态中起关键作用。使用高度解析的微模式将细胞限制在相同的正方形包膜中,但改变粘合剂的几何形状,在这里我们研究粘合剂的微环境如何影响肌动蛋白细胞骨架的结构和牵引力的方向。我们的数据表明局部粘合剂的变化可以触发整个细胞内应力纤维的定向排列,表明细胞能够在整个细胞水平上整合有关ECM几何形状的信息。最后,我们表明,在适当的粘合条件下,细胞倾向于产生高度极化的力模式,即单向收缩。因此,粘附环境的几何形状可以诱导细胞取向,该过程可能对组织的形成和机械性质具有重要意义。

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