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SALM(突触细胞黏附样分子)调节兴奋性突触的分化。

SALM synaptic cell adhesion-like molecules regulate the differentiation of excitatory synapses.

作者信息

Ko Jaewon, Kim Seho, Chung Hye Sun, Kim Karam, Han Kihoon, Kim Hyun, Jun Heejung, Kaang Bong-Kiun, Kim Eunjoon

机构信息

National Creative Research Initiative Center for Synaptogenesis and Department of Biological Sciences, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 305-701, Korea.

出版信息

Neuron. 2006 Apr 20;50(2):233-45. doi: 10.1016/j.neuron.2006.04.005.

Abstract

Synaptic cell adhesion molecules (CAMs) are known to play key roles in various aspects of synaptic structures and functions, including early differentiation, maintenance, and plasticity. We herein report the identification of a family of cell adhesion-like molecules termed SALM that interacts with the abundant postsynaptic density (PSD) protein PSD-95. SALM2, a SALM isoform, distributes to excitatory, but not inhibitory, synaptic sites. Overexpression of SALM2 increases the number of excitatory synapses and dendritic spines. Mislocalized expression of SALM2 disrupts excitatory synapses and dendritic spines. Bead-induced direct aggregation of SALM2 results in coclustering of PSD-95 and other postsynaptic proteins, including GKAP and AMPA receptors. Knockdown of SALM2 by RNA interference reduces the number of excitatory synapses and dendritic spines and the frequency, but not amplitude, of miniature excitatory postsynaptic currents. These results suggest that SALM2 is an important regulator of the differentiation of excitatory synapses.

摘要

已知突触细胞粘附分子(CAMs)在突触结构和功能的各个方面发挥关键作用,包括早期分化、维持和可塑性。我们在此报告鉴定出一类称为SALM的细胞粘附样分子家族,它与丰富的突触后致密物(PSD)蛋白PSD - 95相互作用。SALM2是SALM的一种亚型,分布于兴奋性突触部位,而非抑制性突触部位。SALM2的过表达增加了兴奋性突触和树突棘的数量。SALM2的错误定位表达会破坏兴奋性突触和树突棘。珠子诱导的SALM2直接聚集导致PSD - 95和其他突触后蛋白(包括GKAP和AMPA受体)的共聚集。通过RNA干扰敲低SALM2会减少兴奋性突触和树突棘的数量以及微小兴奋性突触后电流的频率,但不影响其幅度。这些结果表明SALM2是兴奋性突触分化的重要调节因子。

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