LARP1 的 LaM 结构域增强了鸟苷酸化多(A)RNA 的结合。

IF 3.6 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
RNA Biology Pub Date : 2024-01-01 Epub Date: 2024-07-17 DOI:10.1080/15476286.2024.2379121
Guennadi Kozlov, Jianning Jiang, Tyler Rutherford, Anne M Noronha, Christopher J Wilds, Kalle Gehring
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引用次数: 0

摘要

La 相关蛋白(LARPs)是一个 RNA 结合蛋白家族,它们共享一个保守的 La motif(LaM)结构域。LARP1 在调节核糖体蛋白合成和稳定 mRNA 方面发挥作用,其结构独特,在 LaM 结构域附近没有 RNA 结合 RRM 结构域。在这项研究中,我们研究了 LARP1 对聚(A)序列特异性的物理基础,并观察到 LARP1 意外地偏向于单个鸟嘌呤的序列。多个鸟嘌呤取代并没有增加亲和力,这表明单鸟嘌呤序列具有优先识别性。我们还观察到 cCAS/STING 通路中的环状二核苷酸、环状二 GMP 和 3',3'-cGAMP 以亚微摩级的亲和力结合。等温滴定测量结果得到了 LARP1 LaM 与六种不同 RNA 配体(包括硫代磷酸酯连接的两种立体异构体)的高分辨率晶体结构的补充。LARP1 对单个取代的聚(A)序列的选择性表明,LARP1 可能在聚(A)尾鸟苷酸化的稳定作用中发挥作用。[图:见正文]。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhanced binding of guanylated poly(A) RNA by the LaM domain of LARP1.

La-related proteins (LARPs) are a family of RNA-binding proteins that share a conserved La motif (LaM) domain. LARP1 plays a role in regulating ribosomal protein synthesis and stabilizing mRNAs and has a unique structure without an RNA binding RRM domain adjoining the LaM domain. In this study, we investigated the physical basis for LARP1 specificity for poly(A) sequences and observed an unexpected bias for sequences with single guanines. Multiple guanine substitutions did not increase the affinity, demonstrating preferential recognition of singly guanylated sequences. We also observed that the cyclic di-nucleotides in the cCAS/STING pathway, cyclic-di-GMP and 3',3'-cGAMP, bound with sub-micromolar affinity. Isothermal titration measurements were complemented by high-resolution crystal structures of the LARP1 LaM with six different RNA ligands, including two stereoisomers of a phosphorothioate linkage. The selectivity for singly substituted poly(A) sequences suggests LARP1 may play a role in the stabilizing effect of poly(A) tail guanylation. [Figure: see text].

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来源期刊
RNA Biology
RNA Biology 生物-生化与分子生物学
CiteScore
8.60
自引率
0.00%
发文量
82
审稿时长
1 months
期刊介绍: RNA has played a central role in all cellular processes since the beginning of life: decoding the genome, regulating gene expression, mediating molecular interactions, catalyzing chemical reactions. RNA Biology, as a leading journal in the field, provides a platform for presenting and discussing cutting-edge RNA research. RNA Biology brings together a multidisciplinary community of scientists working in the areas of: Transcription and splicing Post-transcriptional regulation of gene expression Non-coding RNAs RNA localization Translation and catalysis by RNA Structural biology Bioinformatics RNA in disease and therapy
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