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肌动蛋白调节蛋白突触蛋白介导树突棘的长期存活。

The actin-modulating protein synaptopodin mediates long-term survival of dendritic spines.

机构信息

Institute of Clinical Neuroanatomy, Dr. Senckenberg Anatomy, Neuroscience Center, Goethe University Frankfurt, Frankfurt, Germany.

Croatian Institute for Brain Research, School of Medicine, University of Zagreb, Zagreb, Croatia.

出版信息

Elife. 2020 Dec 4;9:e62944. doi: 10.7554/eLife.62944.

Abstract

Large spines are stable and important for memory trace formation. The majority of large spines also contains synaptopodin (SP), an actin-modulating and plasticity-related protein. Since SP stabilizes F-actin, we speculated that the presence of SP within large spines could explain their long lifetime. Indeed, using 2-photon time-lapse imaging of SP-transgenic granule cells in mouse organotypic tissue cultures we found that spines containing SP survived considerably longer than spines of equal size without SP. Of note, SP-positive (SP+) spines that underwent pruning first lost SP before disappearing. Whereas the survival time courses of SP+ spines followed conditional two-stage decay functions, SP-negative (SP-) spines and all spines of SP-deficient animals showed single-phase exponential decays. This was also the case following afferent denervation. These results implicate SP as a major regulator of long-term spine stability: SP clusters stabilize spines, and the presence of SP indicates spines of high stability.

摘要

大棘突稳定且对记忆痕迹的形成很重要。大多数大棘突还含有突触足蛋白(SP),这是一种调节肌动蛋白和与可塑性相关的蛋白质。由于 SP 稳定 F-肌动蛋白,我们推测 SP 存在于大棘突内可以解释它们的长寿命。事实上,通过对 SP 转基因颗粒细胞在小鼠器官型组织培养中的双光子延时成像,我们发现含有 SP 的棘突比没有 SP 的同等大小的棘突存活时间长得多。值得注意的是,经历修剪的 SP 阳性(SP+)棘突在消失之前首先失去 SP。而 SP+棘突的存活时间过程遵循条件两阶段衰减函数,SP 阴性(SP-)棘突和 SP 缺失动物的所有棘突则表现出单指数衰减。传入神经切断后也是如此。这些结果表明 SP 是长时程棘突稳定性的主要调节剂:SP 簇稳定棘突,SP 的存在表明棘突稳定性高。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/00d9/7717903/69475dc59dc4/elife-62944-fig1.jpg

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