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自闭症-失调的 eIF4G 微外显子控制突触翻译和更高阶认知功能。

Autism-Misregulated eIF4G Microexons Control Synaptic Translation and Higher Order Cognitive Functions.

机构信息

Donnelly Centre, University of Toronto, Toronto, ON M5S 3E1, Canada.

Lunenfeld-Tanenbaum Research Institute, Mount Sinai Hospital, Toronto, ON M5G 1X5, Canada.

出版信息

Mol Cell. 2020 Mar 19;77(6):1176-1192.e16. doi: 10.1016/j.molcel.2020.01.006. Epub 2020 Jan 29.

Abstract

Microexons represent the most highly conserved class of alternative splicing, yet their functions are poorly understood. Here, we focus on closely related neuronal microexons overlapping prion-like domains in the translation initiation factors, eIF4G1 and eIF4G3, the splicing of which is activity dependent and frequently disrupted in autism. CRISPR-Cas9 deletion of these microexons selectively upregulates synaptic proteins that control neuronal activity and plasticity and further triggers a gene expression program mirroring that of activated neurons. Mice lacking the Eif4g1 microexon display social behavior, learning, and memory deficits, accompanied by altered hippocampal synaptic plasticity. We provide evidence that the eIF4G microexons function as a translational brake by causing ribosome stalling, through their propensity to promote the coalescence of cytoplasmic granule components associated with translation repression, including the fragile X mental retardation protein FMRP. The results thus reveal an autism-disrupted mechanism by which alternative splicing specializes neuronal translation to control higher order cognitive functioning.

摘要

微小外显子代表了最高度保守的可变剪接类别,但它们的功能尚未得到充分理解。在这里,我们专注于在翻译起始因子 eIF4G1 和 eIF4G3 中重叠朊病毒样结构域的密切相关的神经元微小外显子,其剪接依赖于活性,并且在自闭症中经常受到干扰。这些微小外显子的 CRISPR-Cas9 缺失选择性地上调控制神经元活动和可塑性的突触蛋白,并进一步触发与激活神经元相似的基因表达程序。缺乏 Eif4g1 微小外显子的小鼠表现出社交行为、学习和记忆缺陷,伴随着海马突触可塑性的改变。我们提供的证据表明,eIF4G 微小外显子通过促进与翻译抑制相关的细胞质颗粒成分的凝聚,从而导致核糖体停滞,发挥翻译制动的作用,这些成分包括脆性 X 智力低下蛋白 FMRP。因此,研究结果揭示了一种自闭症中断的机制,通过该机制,可变剪接专门控制神经元翻译以控制更高阶的认知功能。

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