Transcriptome-wide alternative mRNA splicing analysis reveals post-transcriptional regulation of neuronal differentiation

IF 4.2 The FEBS journal Pub Date : 2025-01-24 DOI:10.1111/febs.17408
Yuan Zhou, Sherif Rashad, Kuniyasu Niizuma
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Abstract

Alternative splicing (AS) plays an important role in neuronal development, function, and disease. Efforts to analyze the transcriptome of AS in neurons on a wide scale are currently limited. We characterized the transcriptome-wide AS changes in SH-SY5Y neuronal differentiation model, which is widely used to study neuronal function and disorders. Our analysis revealed global changes in five AS programs that drive neuronal differentiation. Motif analysis revealed the contribution of RNA-binding proteins (RBPs) to the regulation of AS during neuronal development. We concentrated on the primary alternative splicing program that occurs during differentiation, specifically on events involving exon skipping (SE). Motif analysis revealed motifs for polypyrimidine tract-binding protein 1 (PTB) and ELAV-like RNA binding protein 1 (HuR/ELAVL1) to be the top enriched in SE events, and their protein levels were downregulated after differentiation. shRNA knockdown of either PTB and HuR was associated with enhanced neuronal differentiation and transcriptome-wide exon skipping events that drive the process of differentiation. At the level of gene expression, we observed only modest changes, indicating predominant post-transcriptional effects of PTB and HuR. We also observed that both RBPs altered cellular responses to oxidative stress, in line with the differentiated phenotype observed after either gene knockdown. Our work characterizes the AS changes in a widely used and important model of neuronal development and neuroscience research and reveals intricate post-transcriptional regulation of neuronal differentiation.

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转录组范围内的备选mRNA剪接分析揭示了神经元分化的转录后调控。
选择性剪接(AS)在神经元发育、功能和疾病中起着重要作用。目前,大规模分析神经元AS转录组的努力是有限的。我们在SH-SY5Y神经元分化模型中表征了转录组范围内的AS变化,该模型被广泛用于研究神经元功能和疾病。我们的分析揭示了驱动神经元分化的五个AS程序的全局变化。Motif分析揭示了rna结合蛋白(rbp)在神经元发育过程中对AS的调控作用。我们集中研究了分化过程中发生的主要选择性剪接程序,特别是涉及外显子跳变(SE)的事件。基序分析显示,聚嘧啶束结合蛋白1 (PTB)和elav样RNA结合蛋白1 (HuR/ELAVL1)的基序在SE事件中富集程度最高,分化后其蛋白水平下调。PTB和HuR的shRNA敲低与神经元分化增强和驱动分化过程的转录组外显子跳变事件有关。在基因表达水平上,我们只观察到轻微的变化,表明PTB和HuR的主要转录后效应。我们还观察到,这两种rbp都改变了细胞对氧化应激的反应,这与基因敲除后观察到的分化表型一致。我们的工作在神经元发育和神经科学研究中广泛使用的重要模型中描述了AS的变化,并揭示了神经元分化的复杂转录后调控。
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