Department of Pharmacology, Vanderbilt University, Nashville, TN 37240-7933, U.S.A.
Vanderbilt Brain Institute, Vanderbilt University, Nashville, TN 37240-7933, U.S.A.
Biochem Soc Trans. 2024 Jun 26;52(3):1459-1471. doi: 10.1042/BST20231385.
Recent studies suggest an exquisite structural nano-organization within single synapses, where sites of evoked fusion - marked by clustering of synaptic vesicles, active zone proteins and voltage-gated calcium channels - are directly juxtaposed to postsynaptic receptor clusters within nanocolumns. This direct nanometer scale alignment between presynaptic fusion apparatus and postsynaptic receptors is thought to ensure the fidelity of synaptic signaling and possibly allow multiple distinct signals to occur without interference from each other within a single active zone. The functional specificity of this organization is made possible by the inherent nano-organization of calcium signals, where all the different calcium sources such as voltage-gated calcium channels, intracellular stores and store-operated calcium entry have dedicated local targets within their nanodomain to ensure precision of action. Here, we discuss synaptic nano-organization from the perspective of calcium signals, where some of the principal findings from early work in the 1980s continue to inspire current studies that exploit new genetic tools and super-resolution imaging technologies.
最近的研究表明,在单个突触内存在着精细的结构纳米组织,其中诱发融合的部位——突触小泡、活性区蛋白和电压门控钙通道的聚集——与纳米柱内的突触后受体簇直接并置。这种在突触前融合装置和突触后受体之间的直接纳米级对准被认为可以确保突触信号的保真度,并可能允许在单个活性区内的多个不同信号互不干扰地发生。这种组织的功能特异性是由钙信号的固有纳米组织所实现的,其中所有不同的钙源,如电压门控钙通道、细胞内储存库和储存操作钙进入,都在其纳米域内有专门的局部靶点,以确保动作的精度。在这里,我们从钙信号的角度讨论突触的纳米组织,其中 20 世纪 80 年代早期的一些主要发现继续激发着当前利用新的遗传工具和超分辨率成像技术的研究。