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Asymmetry in the clockwise and counterclockwise rotation of the bacterial flagellar motor

机译:细菌鞭毛马达顺时针和逆时针旋转的不对称性

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摘要

Cells of Escherichia coli are able to swim up gradients of chemical attractants by modulating the direction of rotation of their flagellar motors, which spin alternately clockwise (CW) and counterclockwise (CCW). Rotation in either direction has been thought to be symmetric and exhibit the same torques and speeds. The relationship between torque and speed is one of the most important measurable characteristics of the motor, used to distinguish specific mechanisms of motor rotation. Previous measurements of the torque–speed relationship have been made with cells lacking the response regulator CheY that spin their motors exclusively CCW. In this case, the torque declines slightly up to an intermediate speed called the “knee speed” after which it falls rapidly to zero. This result is consistent with a “power-stroke” mechanism for torque generation. Here, we measure the torque–speed relationship for cells that express large amounts of CheY and only spin their motors CW. We find that the torque decreases linearly with speed, a result remarkably different from that for CCW rotation. We obtain similar results for wild-type cells by reexamining data collected in previous work. We speculate that CCW rotation might be optimized for runs, with higher speeds increasing the ability of cells to sense spatial gradients, whereas CW rotation might be optimized for tumbles, where the object is to change cell trajectories. But why a linear torque–speed relationship might be optimum for the latter purpose we do not know.
机译:大肠杆菌细胞能够通过调节鞭毛马达的旋转方向来游动化学引诱剂的梯度,鞭毛马达的旋转方向是顺时针(CW)和逆时针(CCW)交替旋转。任一方向上的旋转都被认为是对称的,并且具有相同的扭矩和速度。转矩和速度之间的关系是电动机最重要的可测量特性之一,用于区分电动机旋转的特定机制。先前对转矩-速度关系的测量是在缺少响应调节器CheY的电池中进行的,该响应调节器CheY仅使电动机逆时针旋转。在这种情况下,扭矩会略微下降,直至达到称为“膝部速度”的中间速度,之后该扭矩迅速降至零。该结果与用于产生扭矩的“动力冲程”机制一致。在这里,我们测量表达大量CheY且仅使电动机顺时针旋转的电池的转矩-速度关系。我们发现转矩随速度线性降低,其结果与逆时针旋转明显不同。通过重新检查以前的工作中收集的数据,我们获得了野生型细胞类似的结果。我们推测CCW旋转可能会针对跑步进行优化,而更高的速度会提高细胞感测空间梯度的能力,而CW旋转可能针对滚落而进行优化,而滚转的目的是改变细胞的轨迹。但是为什么线性扭矩-速度关系对于后一个目的可能是最佳的,我们尚不清楚。

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