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粘着斑激酶在EphB受体下游发挥作用,通过调节丝切蛋白活性来维持成熟树突棘。

Focal adhesion kinase acts downstream of EphB receptors to maintain mature dendritic spines by regulating cofilin activity.

作者信息

Shi Yang, Pontrello Crystal G, DeFea Kathryn A, Reichardt Louis F, Ethell Iryna M

机构信息

Division of Biomedical Sciences and Neuroscience Program, University of California, Riverside, Riverside, California 92521-0121, USA.

出版信息

J Neurosci. 2009 Jun 24;29(25):8129-42. doi: 10.1523/JNEUROSCI.4681-08.2009.

Abstract

Dendritic spines are the postsynaptic sites of most excitatory synapses in the brain and are highly enriched in polymerized F-actin, which drives the formation and maintenance of mature dendritic spines and synapses. We propose that suppressing the activity of the actin-severing protein cofilin plays an important role in the stabilization of mature dendritic spines, and is accomplished through an EphB receptor-focal adhesion kinase (FAK) pathway. Our studies revealed that Cre-mediated knock-out of loxP-flanked fak prompted the reversion of mature dendritic spines to an immature filopodial-like phenotype in primary hippocampal cultures. The effects of FAK depletion on dendritic spine number, length, and morphology were rescued by the overexpression of the constitutively active FAK(Y397E), but not FAK(Y397F), indicating the significance of FAK activation by phosphorylation on tyrosine 397. Our studies demonstrate that FAK acts downstream of EphB receptors in hippocampal neurons and EphB2-FAK signaling controls the stability of mature dendritic spines by promoting cofilin phosphorylation, thereby inhibiting cofilin activity. While constitutively active nonphosphorylatable cofilin(S3A) induced an immature spine profile, phosphomimetic cofilin(S3D) restored mature spine morphology in neurons with disrupted EphB activity or lacking FAK. Further, we found that EphB-mediated regulation of cofilin activity at least partially depends on the activation of Rho-associated kinase (ROCK) and LIMK-1. These findings indicate that EphB2-mediated dendritic spine stabilization relies, in part, on the ability of FAK to activate the RhoA-ROCK-LIMK-1 pathway, which functions to suppress cofilin activity and inhibit cofilin-mediated dendritic spine remodeling.

摘要

树突棘是大脑中大多数兴奋性突触的突触后位点,高度富含聚合的F-肌动蛋白,后者驱动成熟树突棘和突触的形成与维持。我们提出,抑制肌动蛋白切割蛋白丝切蛋白的活性在成熟树突棘的稳定中起重要作用,并且是通过EphB受体-粘着斑激酶(FAK)途径实现的。我们的研究表明,在原代海马培养物中,Cre介导的loxP侧翼的fak基因敲除促使成熟树突棘逆转为未成熟的丝状伪足样表型。组成型活性FAK(Y397E)的过表达挽救了FAK缺失对树突棘数量、长度和形态的影响,但FAK(Y397F)则不能,这表明酪氨酸397磷酸化激活FAK具有重要意义。我们的研究证明,FAK在海马神经元中位于EphB受体的下游,并且EphB2-FAK信号通过促进丝切蛋白磷酸化来控制成熟树突棘的稳定性,从而抑制丝切蛋白的活性。虽然组成型活性的不可磷酸化丝切蛋白(S3A)诱导了未成熟的棘突形态,但模拟磷酸化的丝切蛋白(S3D)在EphB活性受损或缺乏FAK的神经元中恢复了成熟的棘突形态。此外,我们发现EphB介导的丝切蛋白活性调节至少部分依赖于Rho相关激酶(ROCK)和LIMK-1的激活。这些发现表明,EphB2介导的树突棘稳定部分依赖于FAK激活RhoA-ROCK-LIMK-1途径的能力,该途径的作用是抑制丝切蛋白活性并抑制丝切蛋白介导的树突棘重塑。

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