首页> 外文期刊>Cell motility and the cytoskeleton >Listeria's right-handed helical rocket-tail trajectories: mechanistic implications for force generation in actin-based motility.
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Listeria's right-handed helical rocket-tail trajectories: mechanistic implications for force generation in actin-based motility.

机译:李斯特菌的右手螺旋形火箭尾巴轨迹:在基于肌动蛋白的动力中产生力的力学意义。

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摘要

Listeria monocytogenes forms right-handed helical rocket tail trajectories during actin-based motility in cell-free extracts, and this stereochemical feature is consistent with actoclampin's affinity-modulated, clamped-filament elongation model [Dickinson and Purich, 2002: Biophys J 82:605-617]. In that mechanism, right-handed torque is generated by an end-tracking molecular motor, each comprised of a filament barbed end and clamping protein that processively traces the right-handed helix of its filament partner. By contrast, torque is not a predicted property of those models (e.g., elastic propulsion, elastic Brownian ratchet, tethered ratchet, and insertional polymerization models) requiring filament barbed ends to depart/detach from the motile object's surface during/after each monomer-addition step. Helical trajectories also explain why Listeria undergoes longitudinal-axis rotation on a length-scale matching the helical periodicity of Listeria's rocket tails.
机译:单核细胞增生性李斯特菌在无细胞提取物中基于肌动蛋白的运动过程中形成右旋螺旋形火箭尾巴轨迹,并且这种立体化学特征与肌动蛋白的亲和力调节,钳位丝伸长模型一致[Dickinson and Purich,2002:Biophys J 82:605 -617]。在这种机制中,右旋转矩是由末端跟踪分子电动机产生的,每个分子电动机由一个长丝倒刺的末端和夹紧蛋白组成,该蛋白依次追踪其长丝伴侣的右旋螺旋。相比之下,扭矩不是那些模型的预测属性(例如,弹性推进,弹性布朗棘轮,束缚棘轮和插入聚合模型),要求在每次添加单体期间/之后,长丝倒刺的末端从活动对象的表面脱离/分离,这些模型(例如,弹性推进,弹性布朗棘轮,系留棘轮和插入聚合模型)步。螺旋形轨迹也解释了为什么李斯特菌以与李斯特菌的火箭尾部的螺旋周期相匹配的长度尺度进行纵轴旋转。

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