Spikar, a novel drebrin‐binding protein, regulates the formation and stabilization of dendritic spines

树突棘 化学 神经科学 树枝状丝状体 细胞生物学 生物 海马结构
作者
Hiroyuki Yamazaki,Nobuhiko Kojima,Kenichi Kato,Eiji Hirose,Toshiharu Iwasaki,Toshiyuki Mizui,Hideto Takahashi,Kenji Hanamura,Reiko T. Roppongi,Noriyuki Koibuchi,Yuko Sekino,Nozomu Mori,Tomoaki Shirao
出处
期刊:Journal of Neurochemistry [Wiley]
卷期号:128 (4): 507-522 被引量:33
标识
DOI:10.1111/jnc.12486
摘要

Abstract Dendritic spines are small, actin‐rich protrusions on dendrites, the development of which is fundamental for the formation of neural circuits. The actin cytoskeleton is central to dendritic spine morphogenesis. Drebrin is an actin‐binding protein that is thought to initiate spine formation through a unique drebrin‐actin complex at postsynaptic sites. However drebrin overexpression in neurons does not increase the final density of dendritic spines. In this study, we have identified and characterized a novel drebrin‐binding protein, spikar. Spikar is localized in cell nuclei and dendritic spines, and accumulation of spikar in dendritic spines directly correlates with spine density. A reporter gene assay demonstrated that spikar acts as a transcriptional co‐activator for nuclear receptors. We found that dendritic spine, but not nuclear, localization of spikar requires drebrin. RNA ‐interference knockdown and overexpression experiments demonstrated that extranuclear spikar regulates dendritic spine density by modulating de novo spine formation and retraction of existing spines. Unlike drebrin, spikar does not affect either the morphology or function of dendritic spines. These findings indicate that drebrin‐mediated postsynaptic accumulation of spikar regulates spine density, but is not involved in regulation of spine morphology. image This study identified a novel drebrin‐binding protein, spikar, which is a novel transcriptional co‐activator. Drebrin serves to anchor spikar in dendritic spines. Spikar knockdown decreases a spine density by attenuating the spine stability and inhibiting de novo spine formation. Extranuclear spikar rescues the spine decrease in spikar knockdowned neurons. Spikar overexpression increases a spine density in drebrin‐dependent manner.
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