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Dynamics of a tightly coupled mechanism for flagellar rotation. Bacterial motility chemiosmotic coupling protonmotive force.

机译:鞭毛旋转紧密耦合机制的动力学。细菌运动化学渗透耦合质子动力。

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摘要

The bacterial flagellar motor is a molecular engine that couples the flow of protons across the cytoplasmic membrane to rotation of the flagellar filament. We analyze the steady-state behavior of an explicit mechanical model in which a fixed number of protons carries the filament through one revolution. Predictions of this model are compared with experimentally determined relationships between protonmotive force, proton flux, torque, and speed. All such tightly coupled mechanisms produce the same torque when the motor is stalled but vary greatly in their behavior at high speed. The speed at zero load predicted by our model is limited by the rates of association and dissociation of protons at binding sites on the rotor and by the mobility of force generators containing transmembrane channels that interact with these sites. Our analysis suggests that more could be learned about the motor if it were driven by an externally applied torque backwards (at negative speed) or forwards at speeds greater than the zero-load speed.
机译:细菌鞭毛马达是一种分子引擎,它将质子流过细胞质膜与鞭毛丝的旋转耦合在一起。我们分析了一个明确的机械模型的稳态行为,其中固定数量的质子通过一圈使细丝带动细丝。将该模型的预测结果与实验确定的质子动力,质子通量,转矩和速度之间的关系进行比较。当电动机失速时,所有这些紧密耦合的机构都会产生相同的转矩,但在高速下其行为会发生很大变化。我们的模型预测的零负荷下的速度受到质子在转子结合位点的缔合和解离速率以及与这些位点相互作用的跨膜通道的力产生器的迁移率的限制。我们的分析表明,如果通过外部施加的扭矩向后(负速)或以大于零负载速度的速度向前驱动时,可以从中获得更多的信息。

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