(M)Unc13s in Active Zone Diversity: A Drosophila Perspective.

IF 4.1 4区 医学 Q2 NEUROSCIENCES
Frontiers in Synaptic Neuroscience Pub Date : 2022-01-03 eCollection Date: 2021-01-01 DOI:10.3389/fnsyn.2021.798204
Chengji Piao, Stephan J Sigrist
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引用次数: 3

Abstract

The so-called active zones at pre-synaptic terminals are the ultimate filtering devices, which couple between action potential frequency and shape, and the information transferred to the post-synaptic neurons, finally tuning behaviors. Within active zones, the release of the synaptic vesicle operates from specialized "release sites." The (M)Unc13 class of proteins is meant to define release sites topologically and biochemically, and diversity between Unc13-type release factor isoforms is suspected to steer diversity at active zones. The two major Unc13-type isoforms, namely, Unc13A and Unc13B, have recently been described from the molecular to the behavioral level, exploiting Drosophila being uniquely suited to causally link between these levels. The exact nanoscale distribution of voltage-gated Ca2+ channels relative to release sites ("coupling") at pre-synaptic active zones fundamentally steers the release of the synaptic vesicle. Unc13A and B were found to be either tightly or loosely coupled across Drosophila synapses. In this review, we reported recent findings on diverse aspects of Drosophila Unc13A and B, importantly, their nano-topological distribution at active zones and their roles in release site generation, active zone assembly, and pre-synaptic homeostatic plasticity. We compared their stoichiometric composition at different synapse types, reviewing the correlation between nanoscale distribution of these two isoforms and release physiology and, finally, discuss how isoform-specific release components might drive the functional heterogeneity of synapses and encode discrete behavior.

Abstract Image

(M)活跃区多样性研究:果蝇的视角。
所谓突触前末端的活动区是最终的过滤装置,它将动作电位频率和形状耦合,并将信息传递给突触后神经元,最终调节行为。在活动区域内,突触囊泡的释放从专门的“释放位点”进行。(M)Unc13类蛋白旨在从拓扑和生化角度定义释放位点,而Unc13型释放因子异构体之间的多样性被怀疑引导了活性区域的多样性。两个主要的unc13型亚型,即Unc13A和Unc13B,最近从分子到行为水平被描述,利用果蝇独特的适合于这些水平之间的因果联系。电压门控Ca2+通道相对于突触前活性区的释放位点(“耦合”)的精确纳米级分布从根本上控制了突触囊泡的释放。研究发现,un13a和B在果蝇突触上紧密或松散耦合。在这篇综述中,我们报道了果蝇Unc13A和B在活性区的纳米拓扑分布及其在释放位点产生、活性区组装和突触前稳态可塑性中的作用。我们比较了它们在不同突触类型中的化学计量组成,回顾了这两种同种异构体的纳米级分布与释放生理学之间的相关性,最后讨论了同种异构体特异性释放成分如何驱动突触的功能异质性和编码离散行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.10
自引率
2.70%
发文量
74
审稿时长
14 weeks
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