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本文引用的文献

1
PSD-95 is required to sustain the molecular organization of the postsynaptic density.PSD-95 对于维持突触后密度的分子结构是必需的。
J Neurosci. 2011 Apr 27;31(17):6329-38. doi: 10.1523/JNEUROSCI.5968-10.2011.
2
Rapid spine stabilization and synaptic enhancement at the onset of behavioural learning.行为学习开始时,脊柱迅速稳定和突触增强。
Nature. 2010 Feb 18;463(7283):948-52. doi: 10.1038/nature08759.
3
Rapid formation and selective stabilization of synapses for enduring motor memories.快速形成和选择性稳定用于持久运动记忆的突触。
Nature. 2009 Dec 17;462(7275):915-9. doi: 10.1038/nature08389. Epub 2009 Nov 29.
4
Stably maintained dendritic spines are associated with lifelong memories.稳定维持的树突棘与终身记忆有关。
Nature. 2009 Dec 17;462(7275):920-4. doi: 10.1038/nature08577. Epub 2009 Nov 29.
5
Regulated RalBP1 binding to RalA and PSD-95 controls AMPA receptor endocytosis and LTD.调节性 RalBP1 与 RalA 和 PSD-95 的结合控制 AMPA 受体内吞作用和 LTD。
PLoS Biol. 2009 Sep;7(9):e1000187. doi: 10.1371/journal.pbio.1000187. Epub 2009 Sep 8.
6
A critical role for PSD-95/AKAP interactions in endocytosis of synaptic AMPA receptors.PSD-95/AKAP相互作用在突触AMPA受体胞吞作用中的关键作用。
Nat Neurosci. 2009 Feb;12(2):172-81. doi: 10.1038/nn.2249. Epub 2009 Jan 25.
7
Destabilization of the postsynaptic density by PSD-95 serine 73 phosphorylation inhibits spine growth and synaptic plasticity.PSD-95丝氨酸73磷酸化导致的突触后致密物不稳定会抑制树突棘生长和突触可塑性。
Neuron. 2008 Dec 10;60(5):788-802. doi: 10.1016/j.neuron.2008.10.014.
8
Principles of long-term dynamics of dendritic spines.树突棘长期动力学原理。
J Neurosci. 2008 Dec 10;28(50):13592-608. doi: 10.1523/JNEUROSCI.0603-08.2008.
9
Preparation of gene gun bullets and biolistic transfection of neurons in slice culture.基因枪子弹的制备及脑片培养中神经元的生物弹道转染
J Vis Exp. 2008 Feb 13(12):675. doi: 10.3791/675.
10
LTD induction causes morphological changes of presynaptic boutons and reduces their contacts with spines.长时程抑制诱导会导致突触前终扣的形态变化,并减少它们与棘突的接触。
Neuron. 2008 Nov 26;60(4):590-7. doi: 10.1016/j.neuron.2008.09.018.

PSD-95 耗竭不是棘突回缩的必要前提。

Loss of PSD-95 enrichment is not a prerequisite for spine retraction.

机构信息

Center for Neuroscience, University of California, Davis, California 95618, USA.

出版信息

J Neurosci. 2011 Aug 24;31(34):12129-38. doi: 10.1523/JNEUROSCI.6662-10.2011.

DOI:10.1523/JNEUROSCI.6662-10.2011
PMID:21865455
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3164954/
Abstract

Changes in neuronal structure are thought to underlie long-term behavioral modifications associated with learning and memory. In particular, considerable evidence implicates the destabilization and retraction of dendritic spines along with the loss of spine synapses as an important cellular mechanism for refining brain circuits, yet the molecular mechanisms regulating spine elimination remain ill-defined. The postsynaptic density protein, PSD-95, is highly enriched in dendritic spines and has been associated with spine stability. Because spines with low levels of PSD-95 are more dynamic, and the recruitment of PSD-95 to nascent spines has been associated with spine stabilization, we hypothesized that loss of PSD-95 enrichment would be a prerequisite for spine retraction. To test this hypothesis, we used dual-color time-lapse two-photon microscopy to monitor rat hippocampal pyramidal neurons cotransfected with PSD-95-GFP and DsRed-Express, and we analyzed the relationship between PSD-95-GFP enrichment and spine morphological changes. Consistent with our hypothesis, we found that the majority of spines that retracted were relatively unenriched for PSD-95-GFP. However, in the subset of PSD-95-GFP-enriched spines that retracted, spine shrinkage and loss of PSD-95-GFP were tightly coupled, suggesting that loss of PSD-95-GFP enrichment did not precede spine retraction. Moreover, we found that, in some instances, spine retraction resulted in a significant enrichment of PSD-95-GFP on the dendritic shaft. Our data support a model of spine retraction in which loss of PSD-95 enrichment is not required prior to the destabilization of spines.

摘要

神经元结构的变化被认为是学习和记忆相关的长期行为改变的基础。特别是,大量证据表明,树突棘的不稳定性和回缩以及棘突触的丢失是精炼大脑回路的重要细胞机制,但调节棘突消除的分子机制仍不清楚。突触后密度蛋白 95(PSD-95)在树突棘中高度富集,并与棘突稳定性相关。由于 PSD-95 水平低的棘突更具动态性,并且 PSD-95 向新生棘突的募集与棘突稳定相关,我们假设 PSD-95 富集的丧失将是棘突回缩的前提。为了验证这一假设,我们使用双色延时双光子显微镜监测共转染 PSD-95-GFP 和 DsRed-Express 的大鼠海马锥体神经元,并分析 PSD-95-GFP 富集与棘突形态变化之间的关系。与我们的假设一致,我们发现大多数回缩的棘突相对缺乏 PSD-95-GFP 富集。然而,在 PSD-95-GFP 富集的回缩棘突亚集中,棘突收缩和 PSD-95-GFP 的丢失紧密相关,这表明 PSD-95-GFP 富集的丧失并不先于棘突回缩。此外,我们发现,在某些情况下,棘突回缩导致树突干上 PSD-95-GFP 的显著富集。我们的数据支持一种棘突回缩模型,其中 PSD-95 富集的丧失不是棘突不稳定之前所必需的。