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BAI1调节海马体中的空间学习和突触可塑性。

BAI1 regulates spatial learning and synaptic plasticity in the hippocampus.

作者信息

Zhu Dan, Li Chenchen, Swanson Andrew M, Villalba Rosa M, Guo Jidong, Zhang Zhaobin, Matheny Shannon, Murakami Tatsuro, Stephenson Jason R, Daniel Sarah, Fukata Masaki, Hall Randy A, Olson Jeffrey J, Neigh Gretchen N, Smith Yoland, Rainnie Donald G, Van Meir Erwin G

出版信息

J Clin Invest. 2015 Apr;125(4):1497-508. doi: 10.1172/JCI74603. Epub 2015 Mar 9.

Abstract

Synaptic plasticity is the ability of synapses to modulate the strength of neuronal connections; however, the molecular factors that regulate this feature are incompletely understood. Here, we demonstrated that mice lacking brain-specific angiogenesis inhibitor 1 (BAI1) have severe deficits in hippocampus-dependent spatial learning and memory that are accompanied by enhanced long-term potentiation (LTP), impaired long-term depression (LTD), and a thinning of the postsynaptic density (PSD) at hippocampal synapses. We showed that compared with WT animals, mice lacking Bai1 exhibit reduced protein levels of the canonical PSD component PSD-95 in the brain, which stems from protein destabilization. We determined that BAI1 prevents PSD-95 polyubiquitination and degradation through an interaction with murine double minute 2 (MDM2), the E3 ubiquitin ligase that regulates PSD-95 stability. Restoration of PSD-95 expression in hippocampal neurons in BAI1-deficient mice by viral gene therapy was sufficient to compensate for Bai1 loss and rescued deficits in synaptic plasticity. Together, our results reveal that interaction of BAI1 with MDM2 in the brain modulates PSD-95 levels and thereby regulates synaptic plasticity. Moreover, these results suggest that targeting this pathway has therapeutic potential for a variety of neurological disorders.

摘要

突触可塑性是指突触调节神经元连接强度的能力;然而,调节这一特性的分子因素尚未完全明确。在此,我们证明,缺乏脑特异性血管生成抑制因子1(BAI1)的小鼠在依赖海马体的空间学习和记忆方面存在严重缺陷,同时伴有海马体突触处的长时程增强(LTP)增强、长时程抑制(LTD)受损以及突触后致密物(PSD)变薄。我们发现,与野生型动物相比,缺乏Bai1的小鼠大脑中典型的PSD成分PSD-95的蛋白质水平降低,这是由于蛋白质不稳定所致。我们确定,BAI1通过与鼠双微体2(MDM2)相互作用来防止PSD-95的多聚泛素化和降解,MDM2是一种调节PSD-95稳定性的E3泛素连接酶。通过病毒基因疗法恢复BAI1缺陷小鼠海马体神经元中PSD-95的表达,足以弥补Bai1的缺失并挽救突触可塑性缺陷。总之,我们的结果表明,BAI1与大脑中的MDM2相互作用可调节PSD-95水平,从而调节突触可塑性。此外,这些结果表明,针对这一途径对多种神经疾病具有治疗潜力。

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