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A kinematic description of the trajectories of Listeria monocytogenes propelled by actin comet tails

机译:肌动蛋白彗星尾部推动的单核细胞增生李斯特菌轨迹的运动学描述

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摘要

The bacterial pathogen Listeria monocytogenes propels itself in the cytoplasm of the infected cells by forming a filamentous comet tail assembled by the polymerization of the cytoskeletal protein actin. Although a great deal is known about the molecular processes that lead to actin-based movement, most macroscale aspects of motion, including the nature of the trajectories traced out by the motile bacteria, are not well understood. Here, we present 2D trajectories of Listeria moving between a glass-slide and coverslip in a Xenopus frog egg extract motility assay. We observe that the bacteria move in a number of fascinating geometrical trajectories, including winding S curves, translating figure eights, small- and large-amplitude sine curves, serpentine shapes, circles, and a variety of spirals. We then develop a dynamic model that provides a unified description of these seemingly unrelated trajectories. A key ingredient of the model is a torque (not included in any microscopic models of which we are aware) that arises from the rotation of the propulsive force about the body axis of the bacterium. We show that a large variety of trajectories with a rich mathematical structure are obtained by varying the rate at which the propulsive force moves about the long axis. The trajectories of bacteria executing both steady and saltatory motion are found to be in excellent agreement with the predictions of our dynamic model. When the constraints that lead to planar motion are removed, our model predicts motion along regular helical trajectories, observed in recent experiments.
机译:细菌病原性单核细胞增生性李斯特菌通过形成由细胞骨架蛋白肌动蛋白聚合而成的丝状彗尾而在感染细胞的细胞质中自我推进。尽管对于导致基于肌动蛋白的运动的分子过程了解很多,但对运动的大多数宏观方面(包括运动菌所追踪的轨迹的性质)还没有很好的了解。在这里,我们展示了非洲爪蟾蛙卵提取物运动性试验中在玻片和盖玻片之间移动的李斯特菌的2D轨迹。我们观察到细菌在许多引人入胜的几何轨迹中运动,包括缠绕的S曲线,平移八字形,小振幅和大振幅正弦曲线,蛇形,圆形和各种螺旋形。然后,我们开发一个动态模型,为这些看似无关的轨迹提供统一的描述。该模型的关键要素是转矩(不包括在我们所知的任何微观模型中),该转矩是由推进力围绕细菌体轴的旋转引起的。我们表明,通过改变推进力绕长轴运动的速率,可以获得具有丰富数学结构的各种轨迹。发现执行平稳运动和咸运动的细菌的轨迹与我们的动力学模型的预测非常吻合。当消除导致平面运动的约束时,我们的模型将预测在最近的实验中观察到的沿着规则螺旋轨迹的运动。

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