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Cell-body rocking is a dominant mechanism for flagellar synchronization in a swimming alga

机译:细胞体摇摆是游泳藻类鞭毛同步的主要机制。

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摘要

The unicellular green alga Chlamydomonas swims with two flagella that can synchronize their beat. Synchronized beating is required to swim both fast and straight. A long-standing hypothesis proposes that synchronization of flagella results from hydrodynamic coupling, but the details are not understood. Here, we present realistic hydrodynamic computations and high-speed tracking experiments of swimming cells that show how a perturbation from the synchronized state causes rotational motion of the cell body. This rotation feeds back on the flagellar dynamics via hydrodynamic friction forces and rapidly restores the synchronized state in our theory. We calculate that this “cell-body rocking” provides the dominant contribution to synchronization in swimming cells, whereas direct hydrodynamic interactions between the flagella contribute negligibly. We experimentally confirmed the two-way coupling between flagellar beating and cell-body rocking predicted by our theory.
机译:单细胞绿藻衣藻与两个鞭毛一起游泳,可以使它们的节拍同步。同步游泳需要快速和直线游泳。长期存在的假说提出鞭毛的同步化是由流体动力耦合引起的,但细节尚不清楚。在这里,我们介绍游泳细胞的逼真的流体力学计算和高速跟踪实验,这些实验显示了来自同步状态的扰动如何导致细胞体的旋转运动。这种旋转通过流体动力摩擦力反馈鞭毛动力学,并迅速恢复我们理论中的同步状态。我们计算出,这种“细胞-身体摇摆”为游泳细胞的同步化提供了主要的贡献,而鞭毛之间的直接水动力相互作用的贡献则微不足道。我们通过实验证实了鞭毛跳动与我们理论所预测的细胞体摇摆之间的双向耦合。

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