首页> 外文期刊>Philosophical Transactions of the Royal Society of London, Series B. Biological Sciences >From damage response to action potentials: early evolution of neural and contractile modules in stem eukaryotes
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From damage response to action potentials: early evolution of neural and contractile modules in stem eukaryotes

机译:从损伤反应到动作电位:真核生物中神经和收缩模块的早期进化

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Eukaryotic cells convert external stimuli into membrane depolarization, which in turn triggers effector responses such as secretion and contraction. Here, we put forward an evolutionary hypothesis for the origin of the depolarization-contraction-secretion (DCS) coupling, the functional core of animal neuromuscular circuits. We propose that DCS coupling evolved in unicellular stem eukaryotes as part of an 'emergency response' to calcium influx upon membrane rupture. We detail how this initial response was subsequently modified into an ancient mechanosensory-effector arc, present in the last eukaryotic common ancestor, which enabled contractile amoeboid movement that is widespread in extant eukaryotes. Elaborating on calcium-triggered membrane depolarization, we reason that the first action potentials evolved alongside the membrane of sensory-motile cilia, with the first voltage-sensitive sodium/ calcium channels (Nav/Cav) enabling a fast and coordinated response of the entire cilium to mechanosensory stimuli. From the cilium, action potentials then spread across the entire cell, enabling global cellular responses such as concerted contraction in several independent eukaryote lineages. In animals, this process led to the invention of mechanosensory contractile cells. These gave rise to mechanosensory receptor cells, neurons and muscle cells by division of labour and can be regarded as the founder cell type of the nervous system.
机译:真核细胞将外部刺激转化为膜去极化,进而触发效应器反应,例如分泌和收缩。在这里,我们提出了去极化,收缩,分泌(DCS)耦合(动物神经肌肉回路的功能核心)起源的进化假设。我们建议DCS耦合在单细胞干真核生物中进化,作为对膜破裂后钙流入的“紧急反应”的一部分。我们详细介绍了最初的反应如何随后被修饰成古老的机械感官效应弧,该弧存在于最后一个真核生物的祖先中,从而使可收缩的变形虫运动在现存的真核生物中广泛存在。详细介绍钙触发的膜去极化,我们认为第一动作电位与感觉运动性纤毛的膜一起发展,第一条电压敏感的钠/钙通道(Nav / Cav)可使整个纤毛快速而协调地响应机械感觉的刺激。然后,动作电位从纤毛上散布到整个细胞中,从而实现整体细胞反应,例如在几个独立的真核生物谱系中的协同收缩。在动物中,该过程导致了机械感觉收缩细胞的发明。这些通过分工产生了机械感觉受体细胞,神经元和肌肉细胞,可以被认为是神经系统的基础细胞类型。

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