RNA 结合蛋白的混合和分离动态发展出遍布整个细胞核的结构剪接网络

IF 14.5 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
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引用次数: 0

摘要

真核生物的细胞核具有高度有序的结构。虽然新生 RNA 上剪接体的时空排列驱动着剪接,但直接支持这一过程的核结构仍不清楚。在这里,我们发现在人类和小鼠细胞中,RNA 上组装的 RNA 结合蛋白(RBPs)形成了网状结构。RNA 剪接中的核心 RBPs 和辅助 RBPs 形成了两个不同的网状结构,它们相邻但又不同地分布在整个细胞核中。这是通过 RBPs 带电和不带电的固有无序区(IDR)之间的相互排斥动力学实现的。这两种类型的网状结构竞争前核糖核酸的空间占有率,从而调节剪接。此外,RBP 网状结构的光遗传增强会导致剪接异常,尤其是涉及神经变性的基因。与神经退行性疾病相关的基因突变通常存在于 RBPs 的 IDR 中,携带这些突变的细胞会表现出网状结构形成受损。我们的研究结果揭示了 RBP 网络驱动 RNA 剪接的空间组织。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Blending and separating dynamics of RNA-binding proteins develop architectural splicing networks spreading throughout the nucleus

Blending and separating dynamics of RNA-binding proteins develop architectural splicing networks spreading throughout the nucleus

The eukaryotic nucleus has a highly organized structure. Although the spatiotemporal arrangement of spliceosomes on nascent RNA drives splicing, the nuclear architecture that directly supports this process remains unclear. Here, we show that RNA-binding proteins (RBPs) assembled on RNA form meshworks in human and mouse cells. Core and accessory RBPs in RNA splicing make two distinct meshworks adjacently but distinctly distributed throughout the nucleus. This is achieved by mutual exclusion dynamics between the charged and uncharged intrinsically disordered regions (IDRs) of RBPs. These two types of meshworks compete for spatial occupancy on pre-mRNA to regulate splicing. Furthermore, the optogenetic enhancement of the RBP meshwork causes aberrant splicing, particularly of genes involved in neurodegeneration. Genetic mutations associated with neurodegenerative diseases are often found in the IDRs of RBPs, and cells harboring these mutations exhibit impaired meshwork formation. Our results uncovered the spatial organization of RBP networks to drive RNA splicing.

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来源期刊
Molecular Cell
Molecular Cell 生物-生化与分子生物学
CiteScore
26.00
自引率
3.80%
发文量
389
审稿时长
1 months
期刊介绍: Molecular Cell is a companion to Cell, the leading journal of biology and the highest-impact journal in the world. Launched in December 1997 and published monthly. Molecular Cell is dedicated to publishing cutting-edge research in molecular biology, focusing on fundamental cellular processes. The journal encompasses a wide range of topics, including DNA replication, recombination, and repair; Chromatin biology and genome organization; Transcription; RNA processing and decay; Non-coding RNA function; Translation; Protein folding, modification, and quality control; Signal transduction pathways; Cell cycle and checkpoints; Cell death; Autophagy; Metabolism.
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