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首页> 外文期刊>Philosophical Transactions of the Royal Society of London, Series B. Biological Sciences >Synchrony and symmetry-breaking in active flagellar coordination
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Synchrony and symmetry-breaking in active flagellar coordination

机译:主动鞭毛协调中的同步与对称性

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Living creatures exhibit a remarkable diversity of locomotion mechanisms, evolving structures specialized for interacting with their environment. In the vast majority of cases, locomotor behaviours such as flying, crawling and running are orchestrated by nervous systems. Surprisingly, microorganisms can enact analogous movement gaits for swimming using multiple, fast-moving cellular protrusions called cilia and flagella. Here, I demonstrate intermittency, reversible rhythmogenesis and gait mechanosensitivity in algal flagella, to reveal the active nature of locomotor patterning. In addition to maintaining free-swimming gaits, I show that the algal flagellar apparatus functions as a central pattern generator that encodes the beating of each flagellum in a network in a distinguishable manner. The latter provides a novel symmetry-breaking mechanism for cell reorientation. These findings imply that the capacity to generate and coordinate complex locomotor patterns does not require neural circuitry but rather the minimal ingredients are present in simple unicellular organisms. This article is part of the Theo Murphy meeting issue 'Unity and diversity of cilia in locomotion and transport'.
机译:生活生物表现出显着的机器机制多样性,不断发展的结构,专门用于与其环境进行互动。在绝大多数情况下,由神经系统策划飞行,爬行和运行等运动行为。令人惊讶的是,微生物可以制定类似于使用多个快速移动的蜂窝突起的游泳的类似运动Gaits,称为Cilia和鞭毛。在这里,我证明了藻鞭毛中的间歇性,可逆节律发生和步态机械敏感性,以揭示运动器图案的主动性质。除了维持自由游泳Gait之外,我还表明藻鞭形装置用作中央图案发生器,其以可区分方式编码网络中每个鞭毛的跳动。后者为细胞重新定向提供了一种新的对称性破坏机制。这些发现意味着产生和坐标复杂的运动模式的容量不需要神经电路,而是在简单的单细胞生物中存在最小成分。本文是Theo Murphy会议问题的一部分,在机动和运输中智利的慈善团结和多样性。

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