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剪接体样肽基脯氨酰异构酶1与RNA结合蛋白EWS的低复杂性结构域相互作用,调节其相分离行为。

The Spliceosomal Peptidyl Prolyl Isomerase Like 1 Interacts with the Low-Complexity Domain of the RNA Binding Protein EWS Modulating Its Phase Separation Behavior.

作者信息

Parra George L, Sohn Erich J, Xu Xiaoping, Libich David S

机构信息

Greehey Children's Cancer Research Institute and Department of Biochemistry and Structural Biology, The University of Texas Health Science Center at San Antonio, San Antonio, Texas 78229, United States.

出版信息

Biochemistry. 2025 Aug 5;64(15):3173-3177. doi: 10.1021/acs.biochem.5c00193. Epub 2025 Jul 16.

Abstract

RNA binding protein EWS, a member of the FET (FUS, EWS, TAF15) family, contributes to mRNA biogenesis through roles in transcription, splicing, and RNA transport. Despite evidence linking EWS to spliceosomal complexes, its interactions with spliceosome-associated cyclophilins remain unclear. Here, we describe the first structural and biochemical characterization of the EWS low-complexity domain (EWS) interaction with the spliceosomal cyclophilin PPIL1. Nuclear magnetic resonance (NMR) titration experiments reveal that the proline-rich PxxP motifs of EWS engage the catalytic face of PPIL1, forming low-affinity "fuzzy" complexes. Notably, this interaction is undetected in an EWS construct containing the RNA recognition motif (RRM) and RGG2 domain, suggesting that PxxP accessibility or local context is critical for PPIL1 binding. Phase separation assays demonstrate that PPIL1 is recruited into EWS condensates under physiological salt conditions, while altering condensation properties at lower salt concentrations. These findings support a model where EWS is recruited to spliceosomal cyclophilins, potentially influencing splicing and nascent mRNA processing. This study underscores the functional importance of proline-rich motifs within EWS and highlights the potential of spliceosomal cyclophilins as both catalytic and structural partners. Our work provides a foundation for exploring the mechanism by which cyclophilins modulate EWS biology and for developing novel therapeutic strategies targeting EWS-cyclophilin interactions in cancer.

摘要

RNA结合蛋白EWS是FET(FUS、EWS、TAF15)家族的成员之一,通过在转录、剪接和RNA运输中的作用促进mRNA的生物合成。尽管有证据表明EWS与剪接体复合物有关,但其与剪接体相关亲环蛋白的相互作用仍不清楚。在此,我们描述了EWS低复杂性结构域(EWS)与剪接体亲环蛋白PPIL1相互作用的首次结构和生化特征。核磁共振(NMR)滴定实验表明,EWS富含脯氨酸的PxxP基序与PPIL1的催化面结合,形成低亲和力的“模糊”复合物。值得注意的是,在含有RNA识别基序(RRM)和RGG2结构域的EWS构建体中未检测到这种相互作用,这表明PxxP的可及性或局部环境对PPIL1的结合至关重要。相分离实验表明,在生理盐条件下,PPIL1被招募到EWS凝聚物中,而在较低盐浓度下会改变凝聚特性。这些发现支持了一种模型,即EWS被招募到剪接体亲环蛋白中,可能影响剪接和新生mRNA的加工。这项研究强调了EWS中富含脯氨酸基序的功能重要性,并突出了剪接体亲环蛋白作为催化和结构伙伴的潜力。我们的工作为探索亲环蛋白调节EWS生物学的机制以及开发针对癌症中EWS-亲环蛋白相互作用的新型治疗策略奠定了基础。

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