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Tdrd3是一种与脆性X综合征蛋白FMRP相互作用的新型应激颗粒相关蛋白。

Tdrd3 is a novel stress granule-associated protein interacting with the Fragile-X syndrome protein FMRP.

作者信息

Linder Bastian, Plöttner Oliver, Kroiss Matthias, Hartmann Enno, Laggerbauer Bernhard, Meister Gunter, Keidel Eva, Fischer Utz

机构信息

Department of Biochemistry, Theodor Boveri Institute, Am Hubland, D-97074 Würzburg, Germany.

出版信息

Hum Mol Genet. 2008 Oct 15;17(20):3236-46. doi: 10.1093/hmg/ddn219. Epub 2008 Jul 28.

Abstract

Tudor domains are widespread among proteins involved in RNA metabolism, but only in a few cases their cellular function has been analyzed in detail. Here, we report on the characterization of the ubiquitously expressed Tudor domain containing protein Tdrd3. Apart from its Tudor domain, we show that Tdrd3 possesses an oligosaccharide/nucleotide binding fold (OB-fold) and an ubiquitin associated domain capable of binding tetra-ubiquitin. A set of biochemical experiments revealed an interaction of Tdrd3 with FMRP, the product of the gene affected in Fragile X syndrome, and its autosomal homologs FXR1 and FXR2. FMRP has been implicated in the translational regulation of target mRNAs and shown to be a component of stress granules (SG). We demonstrate that overexpression of Tdrd3 in cells induces the formation of SGs and as a result leads to its co-localization with endogenous FMRP in these structures. Interestingly, the disease-associated FMRP missense mutation I304N identified in a Fragile X patient severely impairs the interaction with Tdrd3 in biochemical experiments. We propose a contribution of Tdrd3 to FMRP-mediated translational repression and suggest that the loss of the FMRP-Tdrd3 interaction caused by the I304N mutation might contribute to the pathogenesis of Fragile X syndrome.

摘要

Tudor结构域广泛存在于参与RNA代谢的蛋白质中,但仅在少数情况下对其细胞功能进行了详细分析。在此,我们报告了普遍表达的含Tudor结构域蛋白Tdrd3的特性。除了其Tudor结构域,我们还表明Tdrd3具有一个寡糖/核苷酸结合折叠(OB折叠)和一个能够结合四聚泛素的泛素相关结构域。一系列生化实验揭示了Tdrd3与脆性X综合征中受影响基因的产物FMRP及其常染色体同源物FXR1和FXR2之间的相互作用。FMRP与靶mRNA的翻译调控有关,并被证明是应激颗粒(SG)的一个组成部分。我们证明,在细胞中过表达Tdrd3会诱导应激颗粒的形成,并导致其与这些结构中的内源性FMRP共定位。有趣的是,在一名脆性X患者中鉴定出的与疾病相关的FMRP错义突变I304N在生化实验中严重损害了与Tdrd3的相互作用。我们提出Tdrd3对FMRP介导的翻译抑制有贡献,并表明由I304N突变导致的FMRP-Tdrd3相互作用丧失可能有助于脆性X综合征的发病机制。

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