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Flagellar number governs bacterial spreading and transport efficiency

机译:鞭毛数决定细菌的传播和运输效率

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Peritrichous bacteria synchronize and bundle their flagella to actively swim, while disruption of the bundle leads to a slow motility phase with a weak propulsion. It is still not known whether the number of flagella represents an evolutionary adaptation toward optimizing bacterial navigation. We study the swimming dynamics of differentially flagellated Bacillus subtilis strains in a quasi–two-dimensional system. We find that decreasing the number of flagella Nf reduces the average turning angle between two successive run phases and enhances the run time and the directional persistence of the run phase. As a result, having fewer flagella is beneficial for long-distance transport and fast spreading, while having a lot of flagella is advantageous for the processes that require a slower spreading, such as biofilm formation. We develop a two-state random walk model that incorporates spontaneous switchings between the states and yields exact analytical expressions for transport properties, in remarkable agreement with experiments. The results of numerical simulations based on our two-state model suggest that the efficiency of searching and exploring the environment is optimized at intermediate values of Nf. The optimal choice of Nf, for which the search time is minimized, decreases with increasing the size of the environment in which the bacteria swim.
机译:周围的细菌将其鞭毛同步化并捆绑在一起以活跃地游动,而捆绑的破坏会导致运动缓慢,推进力弱。鞭毛的数目是否代表了对优化细菌导航的进化适应性仍是未知的。我们研究了准二维系统中不同鞭毛枯草芽孢杆菌菌株的游泳动力学。我们发现减少鞭毛Nf的数量会减少两个连续运行阶段之间的平均转向角,并增加运行时间和运行阶段的方向持久性。结果,具有较少的鞭毛有利于长距离运输和快速传播,而具有大量的鞭毛则有利于要求较慢传播的过程,例如生物膜形成。我们开发了两种状态的随机游走模型,该模型结合了状态之间的自发切换,并得出了与运输性质完全一致的精确分析表达式,与实验结果相符。基于我们的两态模型的数值模拟结果表明,在Nf的中间值下,搜索和探索环境的效率得到了优化。 Nf的最佳选择(搜索时间最短)随着细菌在其中游泳的环境规模的增大而减小。

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