降低 eIF4E-eIF4G 相互作用可恢复脆性 X 综合征模型小鼠中蛋白质合成和肌动蛋白动力学之间的平衡。
Reducing eIF4E-eIF4G interactions restores the balance between protein synthesis and actin dynamics in fragile X syndrome model mice.
机构信息
Center for Neural Science, New York University, New York, NY 10003, USA.
Department of Neurology, Columbia University, New York, NY 10032, USA.
出版信息
Sci Signal. 2017 Nov 7;10(504):eaan0665. doi: 10.1126/scisignal.aan0665.
Fragile X syndrome (FXS) is the most common form of inherited intellectual disability and autism spectrum disorder. FXS is caused by silencing of the gene, which encodes fragile X mental retardation protein (FMRP), an mRNA-binding protein that represses the translation of its target mRNAs. One mechanism by which FMRP represses translation is through its association with cytoplasmic FMRP-interacting protein 1 (CYFIP1), which subsequently sequesters and inhibits eukaryotic initiation factor 4E (eIF4E). CYFIP1 shuttles between the FMRP-eIF4E complex and the Rac1-Wave regulatory complex, thereby connecting translational regulation to actin dynamics and dendritic spine morphology, which are dysregulated in FXS model mice that lack FMRP. Treating FXS mice with 4EGI-1, which blocks interactions between eIF4E and eIF4G, a critical interaction partner for translational initiation, reversed defects in hippocampus-dependent memory and spine morphology. We also found that 4EGI-1 normalized the phenotypes of enhanced metabotropic glutamate receptor (mGluR)-mediated long-term depression (LTD), enhanced Rac1-p21-activated kinase (PAK)-cofilin signaling, altered actin dynamics, and dysregulated CYFIP1/eIF4E and CYFIP1/Rac1 interactions in FXS mice. Our findings are consistent with the idea that an imbalance in protein synthesis and actin dynamics contributes to pathophysiology in FXS mice, and suggest that targeting eIF4E may be a strategy for treating FXS.
脆性 X 综合征 (FXS) 是最常见的遗传性智力障碍和自闭症谱系障碍。FXS 是由基因沉默引起的,该基因编码脆性 X 智力迟钝蛋白 (FMRP),一种 mRNA 结合蛋白,可抑制其靶 mRNA 的翻译。FMRP 抑制翻译的一种机制是通过与其细胞质 FMRP 相互作用蛋白 1 (CYFIP1) 结合,随后将其隔离并抑制真核起始因子 4E (eIF4E)。CYFIP1 在 FMRP-eIF4E 复合物和 Rac1-Wave 调节复合物之间穿梭,从而将翻译调节与肌动蛋白动力学和树突棘形态联系起来,而 FXS 模型小鼠中缺乏 FMRP 会导致这些方面失调。用 4EGI-1 治疗 FXS 小鼠,该药物阻断了 eIF4E 和 eIF4G 之间的相互作用,后者是翻译起始的关键相互作用伙伴,可逆转海马依赖性记忆和棘突形态的缺陷。我们还发现,4EGI-1 使增强的代谢型谷氨酸受体 (mGluR) 介导的长时程抑制 (LTD)、增强的 Rac1-丝裂原激活蛋白激酶 (PAK)-原肌球蛋白相关蛋白激酶 1 (cofilin) 信号、改变的肌动蛋白动力学以及 FXS 小鼠中失调的 CYFIP1/eIF4E 和 CYFIP1/Rac1 相互作用的表型正常化。我们的发现与以下观点一致,即蛋白质合成和肌动蛋白动力学的不平衡导致 FXS 小鼠的病理生理学改变,并表明靶向 eIF4E 可能是治疗 FXS 的一种策略。
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