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翻译抑制因子 Glorund 使用可互换的 RNA 识别结构域来识别果蝇 nanos。

The translational repressor Glorund uses interchangeable RNA recognition domains to recognize Drosophila nanos.

机构信息

Epigenetics and Stem Cell Biology Laboratory, National Institute of Environmental Health Sciences, National Institutes of Health, Research Triangle Park, NC 27709, USA.

Genome Integrity and Structural Biology Laboratory, National Institute of Environmental Health Sciences, National Institutes of Health, Research Triangle Park, NC 27709, USA.

出版信息

Nucleic Acids Res. 2023 Sep 8;51(16):8836-8849. doi: 10.1093/nar/gkad586.

Abstract

The Drosophila melanogaster protein Glorund (Glo) represses nanos (nos) translation and uses its quasi-RNA recognition motifs (qRRMs) to recognize both G-tract and structured UA-rich motifs within the nos translational control element (TCE). We showed previously that each of the three qRRMs is multifunctional, capable of binding to G-tract and UA-rich motifs, yet if and how the qRRMs combine to recognize the nos TCE remained unclear. Here we determined solution structures of a nos TCEI_III RNA containing the G-tract and UA-rich motifs. The RNA structure demonstrated that a single qRRM is physically incapable of recognizing both RNA elements simultaneously. In vivo experiments further indicated that any two qRRMs are sufficient to repress nos translation. We probed interactions of Glo qRRMs with TCEI_III RNA using NMR paramagnetic relaxation experiments. Our in vitro and in vivo data support a model whereby tandem Glo qRRMs are indeed multifunctional and interchangeable for recognition of TCE G-tract or UA-rich motifs. This study illustrates how multiple RNA recognition modules within an RNA-binding protein may combine to diversify the RNAs that are recognized and regulated.

摘要

果蝇蛋白 Glorund(Glo)抑制 nanos(nos)翻译,并利用其准 RNA 识别基序(qRRMs)识别 nos 翻译调控元件(TCE)中的 G tract 和结构 UA-rich 基序。我们之前曾表明,三个 qRRMs 中的每一个都具有多功能性,能够结合 G tract 和 UA-rich 基序,但 qRRMs 如何结合以识别 nos TCE 仍然不清楚。在这里,我们确定了包含 G-tract 和 UA-rich 基序的 nos TCEI_III RNA 的溶液结构。RNA 结构表明,单个 qRRM 在物理上不可能同时识别这两个 RNA 元件。体内实验进一步表明,任何两个 qRRMs 都足以抑制 nos 翻译。我们使用 NMR 顺磁弛豫实验探测了 Glo qRRMs 与 TCEI_III RNA 的相互作用。我们的体外和体内数据支持这样一种模型,即串联的 Glo qRRMs 确实具有多功能性,可以互换识别 TCE G-tract 或 UA-rich 基序。这项研究说明了 RNA 结合蛋白内的多个 RNA 识别模块如何结合以多样化被识别和调节的 RNA。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/30ce/10484662/c509ac3e1427/gkad586figgra1.jpg

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