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The force-velocity relationship for the actin-based motility of Listeria monocytogenes

机译:单核细胞增生性李斯特菌基于肌动蛋白的动力-速度关系

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The intracellular movement of the bacterial pathogen Listeria monocytogenes has helped identify key molecular constituents of actin-based motility (recent reviews [1-4]). However, biophysical as well as biochemical data are required to understand how these molecules generate the forces that extrude eukaryotic membranes. For molecular motors and for muscle, force-velocity curves have provided key biophysical data to distinguish between mechanistic theories. Here we manipulate and measure the viscoelastic properties of tissue extracts to provide the first force-velocity curve for Listeria monocytogenes. We find that the force-velocity relationship is highly curved, almost biphasic, suggesting a high cooperativity between biochemical catalysis and force generation. Using high-resolution motion tracking in low-noise extracts, we find long trajectories composed exclusively of molecular-sized steps. Robust statistics from these trajectories show a correlation between the duration of steps and macroscopic Listeria speed, but not between average step size and speed. Collectively, our data indicate how the molecular properties of the Listeria polymerization engine regulate speed, and that regulation occurs during molecular-scale pauses.
机译:细菌性单核细胞增多性李斯特氏菌病原菌的细胞内运动已帮助鉴定基于肌动蛋白的运动的关键分子成分(最近的综述[1-4])。但是,需要生物物理和生化数据来了解这些分子如何产生挤压真核细胞膜的力。对于分子马达和肌肉,力-速度曲线提供了关键的生物物理数据,以区分力学理论。在这里,我们操纵和测量组织提取物的粘弹性,以提供单核细胞增生李斯特氏菌的第一力-速度曲线。我们发现力-速度关系是高度弯曲的,几乎是两相的,表明生化催化和力产生之间的高协同性。在低噪声提取物中使用高分辨率运动跟踪,我们发现仅由分子大小的台阶组成的长轨迹。这些轨迹的稳健统计数据表明,步长与宏观李斯特菌速度之间存在相关性,但平均步长与速度之间没有相关性。总的来说,我们的数据表明李斯特菌聚合引擎的​​分子特性如何调节速度,并且这种调节发生在分子规模暂停期间。

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