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Inter-Cellular Forces Orchestrate Contact Inhibition of Locomotion

机译:细胞间的力量协调运动的接触抑制。

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Contact inhibition of locomotion (CIL) is a multifaceted process that causes many cell types to repel each other upon collision. During development, this seemingly uncoordinated reaction is a critical driver of cellular dispersion within embryonic tissues. Here, we show that Drosophila hemocytes require a precisely orchestrated CIL response for their developmental dispersal. Hemocyte collision and subsequent repulsion involves a stereotyped sequence of kinematic stages that are modulated by global changes in cytoskeletal dynamics. Tracking actin retrograde flow within hemocytes in vivo reveals synchronous reorganization of colliding actin networks through engagement of an inter-cellular adhesion. This inter-cellular actin-clutch leads to a subsequent build-up in lamellar tension, triggering the development of a transient stress fiber, which orchestrates cellular repulsion. Our findings reveal that the physical coupling of the flowing actin networks during CIL acts as a mechanotransducer, allowing cells to haptically sense each other and coordinate their behaviors.
机译:运动的接触抑制(CIL)是一个多方面的过程,导致许多细胞类型在碰撞时相互排斥。在发育过程中,这种看似不协调的反应是胚胎组织内细胞分散的关键驱动力。在这里,我们显示果蝇血细胞需要为其发育分散精确地精心安排的CIL反应。血细胞碰撞和随后的排斥涉及运动阶段的定型序列,该阶段由细胞骨架动力学的整体变化调节。在体内追踪血细胞内肌动蛋白逆行流动揭示了通过细胞间粘附的参与,碰撞的肌动蛋白网络的同步重组。这种细胞间肌动蛋白离合器导致随后的层状张力增强,从而触发了瞬态应力纤维的发展,该纤维可以协调细胞排斥。我们的发现表明,在CIL期间,流动的肌动蛋白网络的物理耦合起着机械换能器的作用,从而使细胞能够在触觉上彼此感应并协调其行为。

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