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本文引用的文献

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Association of dysfunctional synapse defective 1 (SYDE1) with restricted fetal growth - SYDE1 regulates placental cell migration and invasion.突触功能障碍缺陷 1 (SYDE1) 与胎儿生长受限的关联-SYDE1 调节胎盘细胞迁移和侵袭。
J Pathol. 2017 Feb;241(3):324-336. doi: 10.1002/path.4835. Epub 2016 Dec 15.
2
RIM-binding protein 2 regulates release probability by fine-tuning calcium channel localization at murine hippocampal synapses.RIM结合蛋白2通过微调钙通道在小鼠海马突触处的定位来调节释放概率。
Proc Natl Acad Sci U S A. 2016 Oct 11;113(41):11615-11620. doi: 10.1073/pnas.1605256113. Epub 2016 Sep 26.
3
Liprin-α1 and ERC1 control cell edge dynamics by promoting focal adhesion turnover.脂磷素-α1和ERC1通过促进粘着斑周转来控制细胞边缘动力学。
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4
Fusion Competent Synaptic Vesicles Persist upon Active Zone Disruption and Loss of Vesicle Docking.具有融合能力的突触小泡在活性区破坏和小泡对接丧失后仍持续存在。
Neuron. 2016 Aug 17;91(4):777-791. doi: 10.1016/j.neuron.2016.07.005.
5
Active zone scaffolds differentially accumulate Unc13 isoforms to tune Ca(2+) channel-vesicle coupling.活性区支架差异积累 Unc13 异构体以调节钙 (Ca(2+)) 通道-囊泡偶联。
Nat Neurosci. 2016 Oct;19(10):1311-20. doi: 10.1038/nn.4364. Epub 2016 Aug 15.
6
A trans-synaptic nanocolumn aligns neurotransmitter release to receptors.一个跨突触纳米柱将神经递质释放与受体对齐。
Nature. 2016 Aug 11;536(7615):210-4. doi: 10.1038/nature19058. Epub 2016 Jul 27.
7
The morphological and molecular nature of synaptic vesicle priming at presynaptic active zones.突触小泡引发的形态和分子本质在突触前活性区。
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mSYD1A, a mammalian synapse-defective-1 protein, regulates synaptogenic signaling and vesicle docking.mSYD1A,一种哺乳动物突触缺陷蛋白 1,调节突触发生信号和囊泡对接。
Neuron. 2013 Jun 19;78(6):1012-23. doi: 10.1016/j.neuron.2013.05.010.
9
Liprin-α2 promotes the presynaptic recruitment and turnover of RIM1/CASK to facilitate synaptic transmission.脂质连接蛋白-α2 促进 RIM1/CASK 在前突触的募集和周转,从而促进突触传递。
J Cell Biol. 2013 Jun 10;201(6):915-28. doi: 10.1083/jcb.201301011.
10
Intramolecular regulation of presynaptic scaffold protein SYD-2/liprin-α.SYD-2/liprin-α 突触前支架蛋白的分子内调节。
Mol Cell Neurosci. 2013 Sep;56:76-84. doi: 10.1016/j.mcn.2013.03.004. Epub 2013 Mar 27.

脂质连接蛋白-α3 控制海马突触活性区囊泡的 docking 和胞吐作用。

Liprin-α3 controls vesicle docking and exocytosis at the active zone of hippocampal synapses.

机构信息

Department of Neurobiology, Harvard Medical School, Boston, MA 02115.

Department of Pharmacology and Toxicology, University of Kansas, Lawrence, KS 66045.

出版信息

Proc Natl Acad Sci U S A. 2018 Feb 27;115(9):2234-2239. doi: 10.1073/pnas.1719012115. Epub 2018 Feb 8.

DOI:10.1073/pnas.1719012115
PMID:29439199
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5834710/
Abstract

The presynaptic active zone provides sites for vesicle docking and release at central nervous synapses and is essential for speed and accuracy of synaptic transmission. Liprin-α binds to several active zone proteins, and loss-of-function studies in invertebrates established important roles for Liprin-α in neurodevelopment and active zone assembly. However, Liprin-α localization and functions in vertebrates have remained unclear. We used stimulated emission depletion superresolution microscopy to systematically determine the localization of Liprin-α2 and Liprin-α3, the two predominant Liprin-α proteins in the vertebrate brain, relative to other active-zone proteins. Both proteins were widely distributed in hippocampal nerve terminals, and Liprin-α3, but not Liprin-α2, had a prominent component that colocalized with the active-zone proteins Bassoon, RIM, Munc13, RIM-BP, and ELKS. To assess Liprin-α3 functions, we generated Liprin-α3-KO mice by using CRISPR/Cas9 gene editing. We found reduced synaptic vesicle tethering and docking in hippocampal neurons of Liprin-α3-KO mice, and synaptic vesicle exocytosis was impaired. Liprin-α3 KO also led to mild alterations in active zone structure, accompanied by translocation of Liprin-α2 to active zones. These findings establish important roles for Liprin-α3 in active-zone assembly and function, and suggest that interplay between various Liprin-α proteins controls their active-zone localization.

摘要

突触前活性区为中枢神经系统突触提供囊泡停靠和释放的位点,对突触传递的速度和准确性至关重要。Liprin-α 与几种活性区蛋白结合,在无脊椎动物中的功能丧失研究确立了 Liprin-α 在神经发育和活性区组装中的重要作用。然而,Liprin-α 在脊椎动物中的定位和功能仍不清楚。我们使用受激发射损耗超分辨率显微镜系统地确定了在脊椎动物脑中占主导地位的两种 Liprin-α 蛋白 Liprin-α2 和 Liprin-α3 相对于其他活性区蛋白的定位。这两种蛋白在海马神经末梢广泛分布,而 Liprin-α3(而不是 Liprin-α2)有一个突出的成分与活性区蛋白 Bassoon、RIM、Munc13、RIM-BP 和 ELKS 共定位。为了评估 Liprin-α3 的功能,我们使用 CRISPR/Cas9 基因编辑生成了 Liprin-α3-KO 小鼠。我们发现 Liprin-α3-KO 小鼠海马神经元中的突触囊泡连接和停靠减少,突触囊泡胞吐作用受损。Liprin-α3 KO 还导致活性区结构的轻微改变,同时 Liprin-α2 易位到活性区。这些发现确立了 Liprin-α3 在活性区组装和功能中的重要作用,并表明各种 Liprin-α 蛋白之间的相互作用控制它们在活性区的定位。