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果蝇 hnRNP F/H 同源物 Glorund 招募 dFMRP 以抑制 nanos 翻译延伸。

The Drosophila hnRNP F/H homolog Glorund recruits dFMRP to inhibit nanos translation elongation.

机构信息

Department of Molecular Biology, Princeton University, Princeton, NJ 08544, USA.

出版信息

Nucleic Acids Res. 2022 Jul 8;50(12):7067-7083. doi: 10.1093/nar/gkac500.

Abstract

Translational control of maternal mRNAs generates spatial and temporal patterns of protein expression necessary to begin animal development. Translational repression of unlocalized nanos (nos) mRNA in late-stage Drosophila oocytes by the hnRNP F/H homolog, Glorund (Glo), is important for embryonic body patterning. While previous work has suggested that repression occurs at both the translation initiation and elongation phases, the molecular mechanism by which Glo regulates nos translation remains elusive. Here, we have identified the Drosophila fragile X mental retardation protein, dFMRP, as a Glo interaction partner with links to the translational machinery. Using an oocyte-based in vitro translation system, we confirmed that Glo regulates both initiation and elongation of a nos translational reporter and showed that dFMRP specifically represses translation elongation and promotes ribosome stalling. Furthermore, we combined mutational analysis and in vivo and in vitro binding assays to show that Glo's qRRM2 domain specifically and directly interacts with dFMRP. Our findings suggest that Glo regulates nos translation elongation by recruiting dFMRP and that Glo's RNA-binding domains can also function as protein-protein interaction interfaces critical for its regulatory functions. Additionally, they reveal a mechanism for targeting dFMRP to specific transcripts.

摘要

母体 mRNA 的翻译调控产生了蛋白质表达的时空模式,这些模式对于动物发育的开始是必要的。在晚期果蝇卵母细胞中,hnRNP F/H 同源物 Glorund (Glo) 对未定位的 nanos(nos) mRNA 的翻译抑制对于胚胎体模式形成很重要。虽然之前的工作表明抑制作用发生在翻译起始和延伸阶段,但 Glo 调节 nos 翻译的分子机制仍不清楚。在这里,我们鉴定了果蝇脆性 X 智力迟钝蛋白 dFMRP 作为 Glo 的相互作用伙伴,与翻译机制有关。使用基于卵母细胞的体外翻译系统,我们证实 Glo 调节 nos 翻译报告基因的起始和延伸,并表明 dFMRP 特异性抑制翻译延伸并促进核糖体停滞。此外,我们结合突变分析和体内及体外结合测定表明,Glo 的 qRRM2 结构域特异性地直接与 dFMRP 相互作用。我们的发现表明,Glo 通过招募 dFMRP 来调节 nos 翻译延伸,并且 Glo 的 RNA 结合结构域也可以作为其调节功能的关键蛋白-蛋白相互作用界面发挥作用。此外,它们揭示了一种将 dFMRP 靶向特定转录物的机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0fe0/9262583/d906a5b99196/gkac500fig1.jpg

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