elegans 中保守的 CELF 蛋白 UNC-75 对替代剪接的神经元特异性抑制。

IF 3.3 3区 生物学 Q2 GENETICS & HEREDITY
Genetics Pub Date : 2025-04-17 DOI:10.1093/genetics/iyaf025
Pallavi Pilaka-Akella, Nour H Sadek, Daniel Fusca, Asher D Cutter, John A Calarco
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引用次数: 0

摘要

组织调节的替代外显子由顺式元件和反式调节因子(如RNA结合蛋白)之间的相互作用决定。尽管对剪接调节进行了广泛的研究,但这些顺式和反式特征的全部曲目及其跨物种的进化动态尚未得到充分表征。已知RNA结合蛋白的cug结合蛋白和et样蛋白家族(CELF)成员在组织偏倚剪接模式的调节中起关键作用,当这些蛋白发生突变时,这些蛋白与许多神经和肌肉疾病有关。在这项研究中,我们试图描述秀丽隐杆线虫UNC-75中由神经元富集的CELF同源物调节的模型开关样外显子在体内组织特异性剪接的特定机制。通过序列比对,我们发现了深度保守的内含子UNC-75结合基序,这些基序重叠在5‘剪接位点和3’剪接位点上游,位于闭塞带病基因zoo-1中一个强烈神经抑制的替代外显子的两侧。我们证实,UNC-75缺失或这些顺式元件中的任何一个突变都会导致神经元中替代外显子的大量去抑制。此外,肌肉细胞中UNC-75的错误表达足以诱导这种替代外显子的神经元样稳健跳变。最后,我们证明了在异源5'剪接位点重叠UNC-75基序会导致在不相关剪接事件中相邻备选外显子的跳变增加。总之,我们已经证明了由这个重要的RNA结合蛋白家族结合的顺式元件的特定配置和组合可以在体内实现健壮的剪接结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Neuron-specific repression of alternative splicing by the conserved CELF protein UNC-75 in Caenorhabditis elegans.

Tissue-regulated alternative exons are dictated by the interplay between cis-elements and trans-regulatory factors such as RNA-binding proteins (RBPs). Despite extensive research on splicing regulation, the full repertoire of these cis and trans features and their evolutionary dynamics across species are yet to be fully characterized. Members of the CUG-binding protein and ETR-like family (CELF) of RBPs are known to play a key role in the regulation of tissue-biased splicing patterns, and when mutated, these proteins have been implicated in a number of neurological and muscular disorders. In this study, we sought to characterize specific mechanisms that drive tissue-specific splicing in vivo of a model switch-like exon regulated by the neuronal-enriched CELF ortholog in Caenorhabditis elegans, UNC-75. Using sequence alignments, we identified deeply conserved intronic UNC-75 binding motifs overlapping the 5' splice site and upstream of the 3' splice site, flanking a strongly neural-repressed alternative exon in the Zonula Occludens gene zoo-1. We confirmed that loss of UNC-75 or mutations in either of these cis-elements lead to substantial de-repression of the alternative exon in neurons. Moreover, mis-expression of UNC-75 in muscle cells is sufficient to induce the neuron-like robust skipping of this alternative exon. Lastly, we demonstrate that overlapping an UNC-75 motif within a heterologous 5' splice site leads to increased skipping of the adjacent alternative exon in an unrelated splicing event. Together, we have demonstrated that a specific configuration and combination of cis elements bound by this important family of RBPs can achieve robust splicing outcomes in vivo.

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来源期刊
Genetics
Genetics GENETICS & HEREDITY-
CiteScore
6.90
自引率
6.10%
发文量
177
审稿时长
1.5 months
期刊介绍: GENETICS is published by the Genetics Society of America, a scholarly society that seeks to deepen our understanding of the living world by advancing our understanding of genetics. Since 1916, GENETICS has published high-quality, original research presenting novel findings bearing on genetics and genomics. The journal publishes empirical studies of organisms ranging from microbes to humans, as well as theoretical work. While it has an illustrious history, GENETICS has changed along with the communities it serves: it is not your mentor''s journal. The editors make decisions quickly – in around 30 days – without sacrificing the excellence and scholarship for which the journal has long been known. GENETICS is a peer reviewed, peer-edited journal, with an international reach and increasing visibility and impact. All editorial decisions are made through collaboration of at least two editors who are practicing scientists. GENETICS is constantly innovating: expanded types of content include Reviews, Commentary (current issues of interest to geneticists), Perspectives (historical), Primers (to introduce primary literature into the classroom), Toolbox Reviews, plus YeastBook, FlyBook, and WormBook (coming spring 2016). For particularly time-sensitive results, we publish Communications. As part of our mission to serve our communities, we''ve published thematic collections, including Genomic Selection, Multiparental Populations, Mouse Collaborative Cross, and the Genetics of Sex.
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