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独特的SAP102和PSD-95纳米组织在单个突触处定义了多种类型的突触支架蛋白结构域。

Distinct SAP102 and PSD-95 nano-organization defines multiple types of synaptic scaffold protein domains at single synapses.

作者信息

Metzbower Sarah R, Dharmasri Poorna A, Levy Aaron D, Anderson Michael C, Blanpied Thomas A

机构信息

Department of Physiology, University of Maryland School of Medicine, Baltimore, MD 21201.

Program in Neuroscience, University of Maryland School of Medicine, Baltimore, MD 21201.

出版信息

bioRxiv. 2023 Sep 13:2023.09.12.557372. doi: 10.1101/2023.09.12.557372.

Abstract

The MAGUK family of scaffold proteins plays a central role in maintaining and modulating synaptic signaling, providing a framework to retain and position receptors, signaling molecules, and other synaptic components. Of these scaffold proteins, SAP102 and PSD-95 are essential for synaptic function at distinct developmental timepoints and perform overlapping as well as unique roles. While their similar structures allow for common binding partners, SAP102 is expressed earlier in synapse development and is required for synaptogenesis, whereas PSD-95 expression peaks later in development and is associated with synapse maturation. PSD-95 and other key synaptic proteins organize into subsynaptic nanodomains that have a significant impact on synaptic transmission, but the nanoscale organization of SAP102 is unknown. How SAP102 is organized within the synapse, and how it relates spatially to PSD-95 on a nanometer scale, could impact how SAP102 clusters synaptic proteins and underlie its ability to perform its unique functions. Here we used DNA-PAINT super-resolution microscopy to measure SAP102 nano-organization and its spatial relationship to PSD-95 at individual synapses. We found that like PSD-95, SAP102 accumulates in high-density subsynaptic nanoclusters. However, SAP102 nanoclusters were smaller and denser than PSD-95 nanoclusters across development. Additionally, only a subset of SAP102 nanoclusters co-organized with PSD-95, revealing that within individual synapses there are nanodomains that contain either one or both proteins. This organization into both shared and distinct subsynaptic nanodomains may underlie the ability of SAP102 and PSD-95 to perform both common and unique synaptic functions.

摘要

支架蛋白的MAGUK家族在维持和调节突触信号中起核心作用,为保留和定位受体、信号分子及其他突触成分提供框架。在这些支架蛋白中,SAP102和PSD - 95在不同发育时间点对突触功能至关重要,发挥着重叠及独特的作用。虽然它们相似的结构允许有共同的结合伙伴,但SAP102在突触发育中表达较早,是突触形成所必需的,而PSD - 95的表达在发育后期达到峰值,与突触成熟相关。PSD - 95和其他关键突触蛋白组织成亚突触纳米结构域,对突触传递有重大影响,但SAP102的纳米级组织尚不清楚。SAP102在突触内如何组织,以及在纳米尺度上它与PSD - 95在空间上如何关联,可能会影响SAP102聚集突触蛋白的方式,并成为其执行独特功能能力的基础。在这里,我们使用DNA - PAINT超分辨率显微镜来测量单个突触处SAP102的纳米组织及其与PSD - 95的空间关系。我们发现,与PSD - 95一样,SAP102聚集在高密度的亚突触纳米簇中。然而,在整个发育过程中,SAP102纳米簇比PSD - 95纳米簇更小且更密集。此外,只有一部分SAP102纳米簇与PSD - 95共同组织,这表明在单个突触内存在包含一种或两种蛋白质的纳米结构域。这种组织成共享和不同的亚突触纳米结构域的方式可能是SAP102和PSD - 95执行共同和独特突触功能能力的基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69ed/10515860/254f82cdac11/nihpp-2023.09.12.557372v1-f0001.jpg

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