Forward locomotion of the nematode C. elegans is achieved through modulation of a single gait.

Hfsp Journal Pub Date : 2009-06-01 Epub Date: 2009-03-26 DOI:10.2976/1.3082260
Stefano Berri, Jordan H Boyle, Manlio Tassieri, Ian A Hope, Netta Cohen
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引用次数: 137

Abstract

The ability of an animal to locomote through its environment depends crucially on the interplay between its active endogenous control and the physics of its interactions with the environment. The nematode worm Caenorhabditis elegans serves as an ideal model system for studying the respective roles of neural control and biomechanics, as well as the interaction between them. With only 302 neurons in a hard-wired neural circuit, the worm's apparent anatomical simplicity belies its behavioural complexity. Indeed, C. elegans exhibits a rich repertoire of complex behaviors, the majority of which are mediated by its adaptive undulatory locomotion. The conventional wisdom is that two kinematically distinct C. elegans locomotion behaviors-swimming in liquids and crawling on dense gel-like media-correspond to distinct locomotory gaits. Here we analyze the worm's motion through a series of different media and reveal a smooth transition from swimming to crawling, marked by a linear relationship between key locomotion metrics. These results point to a single locomotory gait, governed by the same underlying control mechanism. We further show that environmental forces play only a small role in determining the shape of the worm, placing conditions on the minimal pattern of internal forces driving locomotion.

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秀丽隐杆线虫的向前运动是通过调节单一步态实现的。
动物在其环境中移动的能力主要取决于其主动内源性控制和其与环境相互作用的物理学之间的相互作用。秀丽隐杆线虫(Caenorhabditis elegans)是研究神经控制和生物力学各自作用及其相互作用的理想模型系统。蛔虫的神经回路只有302个神经元,表面上解剖结构的简单掩盖了其行为的复杂性。事实上,秀丽隐杆线虫表现出丰富的复杂行为,其中大部分是由其适应性波动运动介导的。传统观点认为,秀丽隐杆线虫的两种运动行为——在液体中游泳和在密集的凝胶状介质上爬行——对应着不同的运动步态。在这里,我们通过一系列不同的媒介分析了蠕虫的运动,并揭示了从游泳到爬行的平滑过渡,以关键运动指标之间的线性关系为标志。这些结果表明,一个单一的运动步态,由相同的潜在控制机制。我们进一步表明,环境力量在决定蠕虫形状方面只起很小的作用,将条件置于驱动运动的内力的最小模式上。
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Hfsp Journal
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