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组蛋白3'末端茎环结合蛋白通过与真核起始因子4G(eIF4G)和eIF3的功能及物理相互作用增强翻译。

The histone 3'-terminal stem-loop-binding protein enhances translation through a functional and physical interaction with eukaryotic initiation factor 4G (eIF4G) and eIF3.

作者信息

Ling Jun, Morley Simon J, Pain Virginia M, Marzluff William F, Gallie Daniel R

机构信息

Department of Biochemistry, University of California, Riverside, California 92521-0129, USA.

出版信息

Mol Cell Biol. 2002 Nov;22(22):7853-67. doi: 10.1128/MCB.22.22.7853-7867.2002.

Abstract

Metazoan cell cycle-regulated histone mRNAs are unique cellular mRNAs in that they terminate in a highly conserved stem-loop structure instead of a poly(A) tail. Not only is the stem-loop structure necessary for 3'-end formation but it regulates the stability and translational efficiency of histone mRNAs. The histone stem-loop structure is recognized by the stem-loop-binding protein (SLBP), which is required for the regulation of mRNA processing and turnover. In this study, we show that SLBP is required for the translation of mRNAs containing the histone stem-loop structure. Moreover, we show that the translation of mRNAs ending in the histone stem-loop is stimulated in Saccharomyces cerevisiae cells expressing mammalian SLBP. The translational function of SLBP genetically required eukaryotic initiation factor 4E (eIF4E), eIF4G, and eIF3, and expressed SLBP coisolated with S. cerevisiae initiation factor complexes that bound the 5' cap in a manner dependent on eIF4G and eIF3. Furthermore, eIF4G coimmunoprecipitated with endogenous SLBP in mammalian cell extracts and recombinant SLBP and eIF4G coisolated. These data indicate that SLBP stimulates the translation of histone mRNAs through a functional interaction with both the mRNA stem-loop and the 5' cap that is mediated by eIF4G and eIF3.

摘要

后生动物细胞周期调控的组蛋白mRNA是独特的细胞mRNA,因为它们在一个高度保守的茎环结构处终止,而不是在聚腺苷酸尾处终止。茎环结构不仅是3'端形成所必需的,而且它还调节组蛋白mRNA的稳定性和翻译效率。组蛋白茎环结构由茎环结合蛋白(SLBP)识别,SLBP是调节mRNA加工和周转所必需的。在本研究中,我们表明SLBP是含有组蛋白茎环结构的mRNA翻译所必需的。此外,我们表明,在表达哺乳动物SLBP的酿酒酵母细胞中,以组蛋白茎环结尾的mRNA的翻译受到刺激。SLBP的翻译功能在遗传上需要真核起始因子4E(eIF4E)、eIF4G和eIF3,并且表达的SLBP与以依赖于eIF4G和eIF3的方式结合5'帽的酿酒酵母起始因子复合物共分离。此外,在哺乳动物细胞提取物中,eIF4G与内源性SLBP共免疫沉淀,并且重组SLBP和eIF4G共分离。这些数据表明,SLBP通过与mRNA茎环和由eIF4G和eIF3介导的5'帽的功能性相互作用来刺激组蛋白mRNA的翻译。

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