Sievert Henning, Pällmann Nora, Miller Katharine K, Hermans-Borgmeyer Irm, Venz Simone, Sendoel Ataman, Preukschas Michael, Schweizer Michaela, Boettcher Steffen, Janiesch P Christoph, Streichert Thomas, Walther Reinhard, Hengartner Michael O, Manz Markus G, Brümmendorf Tim H, Bokemeyer Carsten, Braig Melanie, Hauber Joachim, Duncan Kent E, Balabanov Stefan
Department of Oncology, Hematology and Bone Marrow Transplantation with Section Pneumology, Hubertus Wald-Tumor Zentrum, University Hospital Eppendorf, 20246 Hamburg, Germany.
Department of Oncology, Hematology and Bone Marrow Transplantation with Section Pneumology, Hubertus Wald-Tumor Zentrum, University Hospital Eppendorf, 20246 Hamburg, Germany. Heinrich Pette Institute, Leibniz Institute for Experimental Virology, 20251 Hamburg, Germany.
Dis Model Mech. 2014 Aug;7(8):963-76. doi: 10.1242/dmm.014449. Epub 2014 May 15.
The central importance of translational control by post-translational modification has spurred major interest in regulatory pathways that control translation. One such pathway uniquely adds hypusine to eukaryotic initiation factor 5A (eIF5A), and thereby affects protein synthesis and, subsequently, cellular proliferation through an unknown mechanism. Using a novel conditional knockout mouse model and a Caenorhabditis elegans knockout model, we found an evolutionarily conserved role for the DOHH-mediated second step of hypusine synthesis in early embryonic development. At the cellular level, we observed reduced proliferation and induction of senescence in 3T3 Dohh-/- cells as well as reduced capability for malignant transformation. Furthermore, mass spectrometry showed that deletion of DOHH results in an unexpected complete loss of hypusine modification. Our results provide new biological insight into the physiological roles of the second step of the hypusination of eIF5A. Moreover, the conditional mouse model presented here provides a powerful tool for manipulating hypusine modification in a temporal and spatial manner, to analyse both how this unique modification normally functions in vivo as well as how it contributes to different pathological conditions.
翻译后修饰介导的翻译控制的核心重要性激发了人们对控制翻译的调节途径的极大兴趣。其中一条途径独特地将hypusine添加到真核起始因子5A(eIF5A)上,从而通过未知机制影响蛋白质合成,进而影响细胞增殖。利用一种新型的条件性敲除小鼠模型和秀丽隐杆线虫敲除模型,我们发现DOHH介导的hypusine合成第二步在早期胚胎发育中具有进化保守的作用。在细胞水平上,我们观察到3T3 Dohh-/-细胞的增殖减少和衰老诱导,以及恶性转化能力降低。此外,质谱分析表明,DOHH的缺失导致hypusine修饰意外完全丧失。我们的结果为eIF5A的hypusination第二步的生理作用提供了新的生物学见解。此外,本文介绍的条件性小鼠模型提供了一个强大的工具,用于以时空方式操纵hypusine修饰,以分析这种独特修饰在体内的正常功能以及它如何导致不同的病理状况。