The translation initiation factor homolog eif4e1c regulates cardiomyocyte metabolism and proliferation during heart regeneration

Anupama Rao, Baken Lyu, Ishrat Jahan, Anna Lubertozzi, Gao Zhou, Frank A. Tedeschi, E. Jankowsky, Junsu Kang, B. Carstens, K. Poss, Kedryn K. Baskin, J. A. Goldman
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引用次数: 2

Abstract

The eIF4E family of translation initiation factors bind 5’ methylated caps and act as the limiting-step for mRNA translation. The canonical eIF4E1A is required for cell viability, yet other related eIF4E families exist and are utilized in specific contexts or tissues. Here, we describe a family called Eif4e1c for which we find roles during heart development and regeneration in zebrafish. The Eif4e1c family is present in all aquatic vertebrates but is lost in all terrestrial species. A core group of amino acids shared over 500 million years of evolution forms an interface along the protein surface, suggesting Eif4e1c functions in a novel pathway. Deletion of eif4e1c in zebrafish caused growth deficits and impaired survival in juveniles. Mutants surviving to adulthood had fewer cardiomyocytes and reduced proliferative responses to cardiac injury. Ribosome profiling of mutant hearts demonstrated changes in translation efficiency of mRNA for genes known to regulate cardiomyocyte proliferation. Although eif4e1c is broadly expressed, its disruption had most notable impact on the heart and at juvenile stages. Our findings reveal context-dependent requirements for translation initiation regulators during heart regeneration.
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翻译起始因子同源物eif4e1c调节心脏再生过程中的心肌细胞代谢和增殖
翻译起始因子eIF4E家族结合5 '甲基化帽,并作为mRNA翻译的限制步骤。规范的eIF4E1A是细胞生存所必需的,但存在其他相关的eIF4E家族,并在特定环境或组织中使用。在这里,我们描述了一个名为Eif4e1c的家族,我们在斑马鱼的心脏发育和再生中发现了它的作用。Eif4e1c家族存在于所有水生脊椎动物中,但在所有陆生物种中都消失了。在5亿年的进化过程中共享的一组核心氨基酸沿着蛋白质表面形成了一个界面,这表明Eif4e1c在一种新的途径中起作用。斑马鱼中eif4e1c的缺失导致幼鱼的生长缺陷和生存受损。存活到成年的突变体心肌细胞较少,对心脏损伤的增殖反应减弱。突变心脏的核糖体分析表明,已知调节心肌细胞增殖的基因mRNA的翻译效率发生了变化。尽管eif4e1c广泛表达,但其破坏对心脏和幼年期的影响最为显著。我们的研究结果揭示了心脏再生过程中翻译起始调控因子的上下文依赖需求。
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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