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Coupling the Structural and Functional Assembly of Synaptic Release Sites

机译:耦合突触释放部位的结构和功能组装。

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摘要

Information processing in our brains depends on the exact timing of calcium (Ca2+)-activated exocytosis of synaptic vesicles (SVs) from unique release sites embedded within the presynaptic active zones (AZs). While AZ scaffolding proteins obviously provide an efficient environment for release site function, the molecular design creating such release sites had remained unknown for a long time. Recent advances in visualizing the ultrastructure and topology of presynaptic protein architectures have started to elucidate how scaffold proteins establish “nanodomains” that connect voltage-gated Ca2+ channels (VGCCs) physically and functionally with release-ready SVs. Scaffold proteins here seem to operate as “molecular rulers or spacers,” regulating SV-VGCC physical distances within tens of nanometers and, thus, influence the probability and plasticity of SV release. A number of recent studies at Drosophila and mammalian synapses show that the stable positioning of discrete clusters of obligate release factor (M)Unc13 defines the position of SV release sites, and the differential expression of (M)Unc13 isoforms at synapses can regulate SV-VGCC coupling. We here review the organization of matured AZ scaffolds concerning their intrinsic organization and role for release site formation. Moreover, we also discuss insights into the developmental sequence of AZ assembly, which often entails a tightening between VGCCs and SV release sites. The findings discussed here are retrieved from vertebrate and invertebrate preparations and include a spectrum of methods ranging from cell biology, super-resolution light and electron microscopy to biophysical and electrophysiological analysis. Our understanding of how the structural and functional organization of presynaptic AZs are coupled has matured, as these processes are crucial for the understanding of synapse maturation and plasticity, and, thus, accurate information transfer and storage at chemical synapses.
机译:我们大脑中的信息处理取决于钙(Ca 2 + )激活的突触囊泡(SVs)从突触前活动区(AZs)中嵌入的独特释放位点的胞吐作用的确切时机。尽管AZ支架蛋白显然为释放位点提供了有效的环境,但是创建此类释放位点的分子设计长期以来仍然未知。可视化突触前蛋白结构的超微结构和拓扑结构的最新进展已开始阐明支架蛋白如何建立“纳米域”,从而将电压门控的Ca 2 + 通道(VGCC)物理上和功能上与可释放的SV连接起来。这里的支架蛋白似乎起着“分子尺或间隔子”的作用,将SV-VGCC的物理距离调节在几十纳米之内,从而影响SV释放的可能性和可塑性。在果蝇和哺乳动物突触上的许多最新研究表明,专性释放因子(M)Unc13离散簇的稳定定位决定了SV释放位点的位置,并且(M)Unc13亚型在突触中的差异表达可以调节SV- VGCC耦合。我们在这里回顾了成熟的AZ支架的组织有关其内在的组织和释放位点形成的作用。此外,我们还讨论了对AZ组装的开发顺序的见解,这通常需要在VGCC和SV发布站点之间加强。这里讨论的发现是从脊椎动物和无脊椎动物的制剂中获得的,包括从细胞生物学,超分辨率光学和电子显微镜到生物物理和电生理分析的一系列方法。我们对突触前AZ的结构和功能组织如何耦合的理解已经成熟,因为这些过程对于理解突触成熟和可塑性以及因此在化学突触中进行准确的信息传递和存储至关重要。

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