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三维鞭毛拍打控制螺旋导航。

Control of Helical Navigation by Three-Dimensional Flagellar Beating.

机构信息

Living Systems Institute and College of Engineering, Mathematics and Physical Sciences, University of Exeter, Exeter EX4 4QD, United Kingdom.

出版信息

Phys Rev Lett. 2021 Feb 26;126(8):088003. doi: 10.1103/PhysRevLett.126.088003.

Abstract

Helical swimming is a ubiquitous strategy for motile cells to generate self-gradients for environmental sensing. The model biflagellate Chlamydomonas reinhardtii rotates at a constant 1-2 Hz as it swims, but the mechanism is unclear. Here, we show unequivocally that the rolling motion derives from a persistent, nonplanar flagellar beat pattern. This is revealed by high-speed imaging and micromanipulation of live cells. We construct a fully 3D model to relate flagellar beating directly to the free-swimming trajectories. For realistic geometries, the model reproduces both the sense and magnitude of the axial rotation of live cells. We show that helical swimming requires further symmetry breaking between the two flagella. These functional differences underlie all tactic responses, particularly phototaxis. We propose a control strategy by which cells steer toward or away from light by modulating the sign of biflagellar dominance.

摘要

螺旋游动是运动细胞产生环境感应自梯度的一种普遍策略。模式双鞭毛生物衣藻以 1-2 Hz 的恒定频率游动,但机制尚不清楚。在这里,我们明确地表明,滚动运动源自于持久的、非平面的鞭毛拍打模式。这是通过高速成像和对活细胞的微操作揭示的。我们构建了一个完全的 3D 模型,将鞭毛的拍打直接与自由游动轨迹联系起来。对于现实的几何形状,该模型再现了活细胞轴向旋转的方向和幅度。我们表明,螺旋游动需要在两个鞭毛之间进一步打破对称性。这些功能差异是所有策略反应的基础,特别是趋光性。我们提出了一种控制策略,通过调节双鞭毛优势的符号,细胞可以朝着或远离光的方向转向。

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