秀丽隐杆线虫突触前机制

Q4 Neuroscience Invertebrate Neuroscience Pub Date : 2018-03-12 DOI:10.1007/s10158-018-0207-5
Fernando Calahorro, Patricia G Izquierdo
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引用次数: 0

摘要

突触是介导神经元与其目标之间信息流的专门接触点。突触间重要的物理相互作用由突触粘附分子介导。这些粘附分子在发育过程中调节突触的形成,并在成熟的突触功能中发挥作用。重要的是,调控突触发生和轴突再生的基因在动物门类中是保守的。在线虫秀丽隐杆线虫(Caenorhabditis elegans)中进行的基因筛选发现了许多突触模式化和装配所需的分子。即使在神经元功能严重受损的情况下,秀丽隐杆线虫仍能存活。这与果蝇和小鼠的情况不同,在果蝇和小鼠中,复杂性的增加使它们对功能受损的耐受性降低。虽然这一事实可能反映了这些生物突触中同源蛋白功能的差异,但最有可能的解释是,这些成分中的许多对于突触传递同样重要,但并非绝对必要,以支持实验室饲养的秀丽隐杆线虫相对宽松的生活方式。在此,我们回顾了对参与草履虫突触前机制的主要突触蛋白群的研究,这些研究显示了高等生物之间的高度保守性,并强调了草履虫是如何在简单神经系统组织的基础上被用作解剖突触元件的信息工具的。
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The presynaptic machinery at the synapse of C. elegans.

Synapses are specialized contact sites that mediate information flow between neurons and their targets. Important physical interactions across the synapse are mediated by synaptic adhesion molecules. These adhesions regulate formation of synapses during development and play a role during mature synaptic function. Importantly, genes regulating synaptogenesis and axon regeneration are conserved across the animal phyla. Genetic screens in the nematode Caenorhabditis elegans have identified a number of molecules required for synapse patterning and assembly. C. elegans is able to survive even with its neuronal function severely compromised. This is in comparison with Drosophila and mice where increased complexity makes them less tolerant to impaired function. Although this fact may reflect differences in the function of the homologous proteins in the synapses between these organisms, the most likely interpretation is that many of these components are equally important, but not absolutely essential, for synaptic transmission to support the relatively undemanding life style of laboratory maintained C. elegans. Here, we review research on the major group of synaptic proteins, involved in the presynaptic machinery in C. elegans, showing a strong conservation between higher organisms and highlight how C. elegans can be used as an informative tool for dissecting synaptic components, based on a simple nervous system organization.

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来源期刊
Invertebrate Neuroscience
Invertebrate Neuroscience NEUROSCIENCES-
自引率
0.00%
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审稿时长
>12 weeks
期刊介绍: Invertebrate Neurosciences publishes peer-reviewed original articles, reviews and technical reports describing recent advances in the field of invertebrate neuroscience. The journal reports on research that exploits the simplicity and experimental tractability of the invertebrate preparations to underpin fundamental advances in neuroscience. Articles published in Invertebrate Neurosciences serve to highlight properties of signalling in the invertebrate nervous system that may be exploited in the field of antiparisitics, molluscicides and insecticides. Aspects of particular interest include: Functional analysis of the invertebrate nervous system; Molecular neuropharmacology and toxicology; Neurogenetics and genomics; Functional anatomy; Neurodevelopment; Neuronal networks; Molecular and cellular mechanisms of behavior and behavioural plasticity.
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