Distinct recruitment of human eIF4E isoforms to processing bodies and stress granules

IF 2.946 Q3 Biochemistry, Genetics and Molecular Biology BMC Molecular Biology Pub Date : 2016-08-30 DOI:10.1186/s12867-016-0072-x
Klara Frydryskova, Tomas Masek, Katerina Borcin, Silvia Mrvova, Veronica Venturi, Martin Pospisek
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引用次数: 40

Abstract

Eukaryotic translation initiation factor 4E (eIF4E) plays a pivotal role in the control of cap-dependent translation initiation, modulates the fate of specific mRNAs, occurs in processing bodies (PBs) and is required for formation of stress granules (SGs). In this study, we focused on the subcellular localization of a representative compendium of eIF4E protein isoforms, particularly on the less studied members of the human eIF4E protein family, eIF4E2 and eIF4E3.

We showed that unlike eIF4E1, its less studied isoform eIF4E3_A, encoded by human chromosome 3, localized to stress granules but not PBs upon both heat shock and arsenite stress. Furthermore, we found that eIF4E3_A interacts with human translation initiation factors eIF4G1, eIF4G3 and PABP1 in vivo and sediments into the same fractions as canonical eIF4E1 during polysome analysis in sucrose gradients. Contrary to this finding, the truncated human eIF4E3 isoform, eIF4E3_B, showed no localization to SGs and no binding to eIF4G. We also highlighted that eIF4E2 may exhibit distinct functions under different stresses as it readily localizes to P-bodies during arsenite and heat stresses, whereas it is redirected to stress granules only upon heat shock. We extended our study to a number of protein variants, arising from alternative mRNA splicing, of each of the three eIF4E isoforms. Our results surprisingly uncovered differences in the ability of eIF4E1_1 and eIF4E1_3 to form stress granules in response to cellular stresses.

Our comparison of all three human eIF4E isoforms and their protein variants enriches the intriguing spectrum of roles attributed to the eukaryotic initiation translation factors of the 4E family, which exhibit a distinctive localization within different RNA granules under different stresses. The localization of eIF4E3_A to stress granules, but not to processing bodies, along with its binding to eIF4G and PABP1 suggests a role of human eIF4E3_A in translation initiation rather than its involvement in a translational repression and mRNA decay and turnover. The localization of eIF4E2 to stress granules under heat shock but not arsenite stress indicates its distinct function in cellular response to these stresses and points to the variable protein content of SGs as a consequence of different stress insults.

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人类eIF4E异构体在加工体和应激颗粒中的独特募集
真核生物翻译起始因子4E (eIF4E)在控制帽依赖性翻译起始中起关键作用,调节特定mrna的命运,发生在加工体(PBs)中,并且是形成应激颗粒(SGs)所必需的。在这项研究中,我们重点研究了eIF4E蛋白亚型的代表性概要的亚细胞定位,特别是对人类eIF4E蛋白家族中较少研究的成员,eIF4E2和eIF4E3。我们发现,与eIF4E1不同,其较少研究的异构体eIF4E3_A由人类3号染色体编码,在热休克和亚砷酸盐胁迫下定位于应激颗粒而不是PBs。此外,我们发现eIF4E3_A在体内与人类翻译起始因子eIF4G1、eIF4G3和PABP1相互作用,并在蔗糖梯度的多聚体分析中沉积成与典型eIF4E1相同的组分。与这一发现相反,截断的人类eIF4E3异构体eIF4E3_B没有定位到SGs,也没有与eIF4G结合。我们还强调,eIF4E2可能在不同的应力下表现出不同的功能,因为它在亚砷酸盐和热应力下很容易定位到p体,而只有在热休克时才被重定向到应力颗粒。我们将研究扩展到三种eIF4E亚型的多种蛋白质变体,这些变体由不同的mRNA剪接产生。我们的结果令人惊讶地揭示了eIF4E1_1和eIF4E1_3在响应细胞应激时形成应激颗粒的能力差异。我们对所有三种人类eIF4E亚型及其蛋白质变体的比较丰富了4E家族真核起始翻译因子的有趣作用谱,这些因子在不同胁迫下在不同RNA颗粒中表现出独特的定位。eIF4E3_A定位于应激颗粒,而不是加工体,并与eIF4G和PABP1结合,这表明人类eIF4E3_A在翻译起始中起作用,而不是参与翻译抑制和mRNA衰变和周转。eIF4E2在热休克胁迫下定位于应激颗粒,而不是亚砷酸盐胁迫,这表明它在细胞对这些胁迫的反应中具有独特的功能,并指出了不同胁迫对SGs蛋白含量的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
BMC Molecular Biology
BMC Molecular Biology 生物-生化与分子生物学
CiteScore
4.80
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: BMC Molecular Biology is an open access journal publishing original peer-reviewed research articles in all aspects of DNA and RNA in a cellular context, encompassing investigations of chromatin, replication, recombination, mutation, repair, transcription, translation and RNA processing and function.
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