Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, CT 06520, USA.
Department of Viticulture and Enology, University of California, Davis, Davis, CA 95616, USA; Department of Food Science and Technology, University of California, Davis, Davis, CA 95616, USA.
J Mol Biol. 2018 Jul 6;430(14):2080-2095. doi: 10.1016/j.jmb.2018.05.025. Epub 2018 May 19.
Dbp5, DDX19 in humans, is an essential DEAD-box protein involved in mRNA export, which has also been linked to other cellular processes, including rRNA export and translation. Dbp5 ATPase activity is regulated by several factors, including RNA, the nucleoporin proteins Nup159 and Gle1, and the endogenous small-molecule inositol hexakisphosphate (InsP). To better understand how these factors modulate Dbp5 activity and how this modulation relates to in vivo RNA metabolism, a detailed characterization of the Dbp5 mechanochemical cycle in the presence of those regulators individually or together is necessary. In this study, we test the hypothesis that Nup159 controls the ADP-bound state of Dbp5. In addition, the contributions of Mg to the kinetics and thermodynamics of ADP binding to Dbp5 were assessed. Using a solution based in vitro approach, Mg was found to slow ADP and ATP release from Dbp5 and increased the overall ADP and ATP affinities, as observed with other NTPases. Furthermore, Nup159 did not accelerate ADP release, while Gle1 actually slowed ADP release independent of Mg. These findings are not consistent with Nup159 acting as a nucleotide exchange factor to promote ADP release and Dbp5 ATPase cycling. Instead, in the presence of Nup159, the interaction between Gle1 and ADP-bound Dbp5 was found to be reduced by ~18-fold, suggesting that Nup159 alters the Dbp5-Gle1 interaction to aid Gle1 release from Dbp5.
Dbp5,人类中的 DDX19,是一种参与 mRNA 输出的必需 DEAD 盒蛋白,也与其他细胞过程有关,包括 rRNA 输出和翻译。Dbp5 的 ATP 酶活性受多种因素调节,包括 RNA、核孔蛋白 Nup159 和 Gle1 以及内源性小分子肌醇六磷酸(InsP)。为了更好地理解这些因素如何调节 Dbp5 的活性以及这种调节如何与体内 RNA 代谢相关,有必要单独或共同研究这些调节剂对 Dbp5 机械化学循环的详细特征。在这项研究中,我们检验了 Nup159 控制 Dbp5 结合 ADP 状态的假设。此外,还评估了 Mg 对 Dbp5 结合 ADP 的动力学和热力学的贡献。使用基于溶液的体外方法,发现 Mg 会减缓 Dbp5 释放 ADP 和 ATP,并增加整体 ADP 和 ATP 亲和力,这与其他 NTPase 观察到的情况一致。此外,Nup159 不会加速 ADP 释放,而 Gle1 实际上会独立于 Mg 而减缓 ADP 释放。这些发现与 Nup159 作为核苷酸交换因子促进 ADP 释放和 Dbp5 ATP 酶循环的作用不一致。相反,在存在 Nup159 的情况下,发现 Gle1 与 ADP 结合的 Dbp5 之间的相互作用减少了约 18 倍,这表明 Nup159 改变了 Dbp5-Gle1 相互作用,以帮助 Gle1 从 Dbp5 释放。