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内在无序的 TSSC4 蛋白在 snRNP 组装和回收过程中作为解旋酶抑制剂、占位符和多相互作用协调蛋白发挥作用。

The intrinsically disordered TSSC4 protein acts as a helicase inhibitor, placeholder and multi-interaction coordinator during snRNP assembly and recycling.

机构信息

Freie Universität Berlin, Institute of Chemistry and Biochemistry, Laboratory of Structural Biochemistry, Takustr. 6, D-14195 Berlin, Germany.

Freie Universität Berlin, Institute of Chemistry and Biochemistry, Research Center of Electron Microscopy, Fabeckstr. 36a, 14195 Berlin, Germany.

出版信息

Nucleic Acids Res. 2022 Mar 21;50(5):2938-2958. doi: 10.1093/nar/gkac087.

Abstract

Biogenesis of spliceosomal small nuclear ribonucleoproteins (snRNPs) and their recycling after splicing require numerous assembly/recycling factors whose modes of action are often poorly understood. The intrinsically disordered TSSC4 protein has been identified as a nuclear-localized U5 snRNP and U4/U6-U5 tri-snRNP assembly/recycling factor, but how TSSC4's intrinsic disorder supports TSSC4 functions remains unknown. Using diverse interaction assays and cryogenic electron microscopy-based structural analysis, we show that TSSC4 employs four conserved, non-contiguous regions to bind the PRPF8 Jab1/MPN domain and the SNRNP200 helicase at functionally important sites. It thereby inhibits SNRNP200 helicase activity, spatially aligns the proteins, coordinates formation of a U5 sub-module and transiently blocks premature interaction of SNRNP200 with at least three other spliceosomal factors. Guided by the structure, we designed a TSSC4 variant that lacks stable binding to the PRPF8 Jab1/MPN domain or SNRNP200 in vitro. Comparative immunoprecipitation/mass spectrometry from HEK293 nuclear extract revealed distinct interaction profiles of wild type TSSC4 and the variant deficient in PRPF8/SNRNP200 binding with snRNP proteins, other spliceosomal proteins as well as snRNP assembly/recycling factors and chaperones. Our findings elucidate molecular strategies employed by an intrinsically disordered protein to promote snRNP assembly, and suggest multiple TSSC4-dependent stages during snRNP assembly/recycling.

摘要

剪接体小核核糖核蛋白(snRNP)的生物发生及其剪接后的循环利用需要大量的组装/循环因子,其作用模式往往知之甚少。内在无序的 TSSC4 蛋白已被鉴定为核定位的 U5 snRNP 和 U4/U6-U5 三 snRNP 组装/循环因子,但 TSSC4 的内在无序如何支持 TSSC4 的功能仍然未知。通过多种相互作用分析和基于低温电子显微镜的结构分析,我们表明 TSSC4 利用四个保守的、不连续的区域结合 PRPF8 Jab1/MPN 结构域和 SNRNP200 解旋酶在功能重要的位点。从而抑制 SNRNP200 解旋酶的活性,空间上对齐蛋白,协调 U5 亚基的形成,并暂时阻止 SNRNP200 与至少其他三个剪接体因子过早相互作用。受结构的指导,我们设计了一种 TSSC4 变体,该变体在体外缺乏与 PRPF8 Jab1/MPN 结构域或 SNRNP200 的稳定结合。来自 HEK293 核提取物的比较免疫沉淀/质谱分析揭示了野生型 TSSC4 和在 PRPF8/SNRNP200 结合中缺乏变体的不同相互作用谱与 snRNP 蛋白、其他剪接体蛋白以及 snRNP 组装/循环因子和伴侣蛋白。我们的研究结果阐明了一种内在无序蛋白促进 snRNP 组装所采用的分子策略,并提出了 snRNP 组装/循环过程中多个依赖 TSSC4 的阶段。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5a34/8934646/0f093f1a1fdd/gkac087figgra1.jpg

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