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Mitochondrial trafficking and anchoring in neurons: New insight and implications.线粒体在神经元中的运输和锚定:新的见解和意义。
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2
Synaptic vesicle recycling: steps and principles.突触囊泡循环:步骤和原理。
EMBO J. 2014 Apr 16;33(8):788-822. doi: 10.1002/embj.201386357. Epub 2014 Mar 3.
3
Activity-driven local ATP synthesis is required for synaptic function.活动驱动的局部 ATP 合成对于突触功能是必需的。
Cell. 2014 Feb 13;156(4):825-35. doi: 10.1016/j.cell.2013.12.042.
4
SYN2 is an autism predisposing gene: loss-of-function mutations alter synaptic vesicle cycling and axon outgrowth.SYN2是一种自闭症易感基因:功能丧失突变会改变突触小泡循环和轴突生长。
Hum Mol Genet. 2014 Jan 1;23(1):90-103. doi: 10.1093/hmg/ddt401. Epub 2013 Aug 15.
5
Motile axonal mitochondria contribute to the variability of presynaptic strength.运动轴突线粒体有助于突触前强度的变异性。
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Potentiation of inhibitory synaptic transmission by extracellular ATP in rat suprachiasmatic nuclei.细胞外 ATP 增强大鼠视交叉上核抑制性突触传递。
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7
Synapsin II desynchronizes neurotransmitter release at inhibitory synapses by interacting with presynaptic calcium channels.突触素 II 通过与突触前钙离子通道相互作用,使抑制性突触释放的神经递质失同步。
Nat Commun. 2013;4:1512. doi: 10.1038/ncomms2515.
8
Epileptogenic Q555X SYN1 mutant triggers imbalances in release dynamics and short-term plasticity.致癫痫的 Q555X SYN1 突变体触发释放动力学和短期可塑性失衡。
Hum Mol Genet. 2013 Jun 1;22(11):2186-99. doi: 10.1093/hmg/ddt071. Epub 2013 Feb 12.
9
Autism-related behavioral abnormalities in synapsin knockout mice.突触结合蛋白敲除小鼠的自闭症相关行为异常。
Behav Brain Res. 2013 Aug 15;251:65-74. doi: 10.1016/j.bbr.2012.12.015. Epub 2012 Dec 29.
10
Synaptic energy use and supply.突触能量的利用和供应。
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ATP与突触结合蛋白I结合在突触小泡运输和释放动力学中的功能作用。

Functional role of ATP binding to synapsin I in synaptic vesicle trafficking and release dynamics.

作者信息

Orlando Marta, Lignani Gabriele, Maragliano Luca, Fassio Anna, Onofri Franco, Baldelli Pietro, Giovedí Silvia, Benfenati Fabio

机构信息

Department of Neuroscience and Brain Technologies, Istituto Italiano di Tecnologia, 16163 Genova, Italy, and.

Department of Neuroscience and Brain Technologies, Istituto Italiano di Tecnologia, 16163 Genova, Italy, and Department of Experimental Medicine, University of Genova, 16132, Genova, Italy.

出版信息

J Neurosci. 2014 Oct 29;34(44):14752-68. doi: 10.1523/JNEUROSCI.1093-14.2014.

DOI:10.1523/JNEUROSCI.1093-14.2014
PMID:25355227
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6608424/
Abstract

Synapsins (Syns) are synaptic vesicle (SV)-associated proteins involved in the regulation of synaptic transmission and plasticity, which display a highly conserved ATP binding site in the central C-domain, whose functional role is unknown. Using molecular dynamics simulations, we demonstrated that ATP binding to SynI is mediated by a conformational transition of a flexible loop that opens to make the binding site accessible; such transition, prevented in the K269Q mutant, is not significantly affected in the absence of Ca(2+) or by the E373K mutation that abolishes Ca(2+)-binding. Indeed, the ATP binding to SynI also occurred under Ca(2+)-free conditions and increased its association with purified rat SVs regardless of the presence of Ca(2+) and promoted SynI oligomerization. However, although under Ca(2+)-free conditions, SynI dimerization and SV clustering were enhanced, Ca(2+) favored the formation of tetramers at the expense of dimers and did not affect SV clustering, indicating a role of Ca(2+)-dependent dimer/tetramer transitions in the regulation of ATP-dependent SV clustering. To elucidate the role of ATP/SynI binding in synaptic physiology, mouse SynI knock-out hippocampal neurons were transduced with either wild-type or K269Q mutant SynI and inhibitory transmission was studied by patch-clamp and electron microscopy. K269Q-SynI expressing inhibitory synapses showed increased synaptic strength due to an increase in the release probability, an increased vulnerability to synaptic depression and a dysregulation of SV trafficking, when compared with wild-type SynI-expressing terminals. The results suggest that the ATP-SynI binding plays predocking and postdocking roles in the modulation of SV clustering and plasticity of inhibitory synapses.

摘要

突触素(Syns)是与突触小泡(SV)相关的蛋白质,参与突触传递和可塑性的调节,其在中央C结构域中显示出高度保守的ATP结合位点,其功能作用尚不清楚。通过分子动力学模拟,我们证明ATP与SynI的结合是由一个柔性环的构象转变介导的,该柔性环打开以使结合位点可及;这种转变在K269Q突变体中被阻止,在没有Ca(2+)的情况下或通过消除Ca(2+)结合的E373K突变不会受到显著影响。事实上,ATP与SynI的结合也在无Ca(2+)条件下发生,并且无论Ca(2+)是否存在,都增加了其与纯化的大鼠SV的结合,并促进了SynI寡聚化。然而,尽管在无Ca(2+)条件下,SynI二聚化和SV聚集增强,但Ca(2+)有利于四聚体的形成,以二聚体为代价,并且不影响SV聚集,表明Ca(2+)依赖性二聚体/四聚体转变在ATP依赖性SV聚集中的调节作用。为了阐明ATP/SynI结合在突触生理学中的作用,用野生型或K269Q突变体SynI转导小鼠SynI基因敲除的海马神经元,并通过膜片钳和电子显微镜研究抑制性传递。与表达野生型SynI的终末相比,表达K269Q-SynI的抑制性突触由于释放概率增加而显示出突触强度增加,对突触抑制的易感性增加以及SV运输失调。结果表明,ATP-SynI结合在抑制性突触的SV聚集和可塑性调节中起对接前和对接后的作用。