Metabolic Engineering Group, Dpto. Microbiología y Genética, Universidad de Salamanca, Campus Miguel de Unamuno, 37007, Salamanca, Spain.
Centro de Investigaciones Biológicas (CIB), Spanish National Research Council (CSIC), Ramiro de Maeztu 9, 28040 Madrid, Spain.
J Mol Biol. 2019 Mar 1;431(5):956-969. doi: 10.1016/j.jmb.2019.01.020. Epub 2019 Jan 18.
Inosine 5'-monophosphate dehydrogenase (IMPDH) catalyzes the rate-limiting step in the de novo GTP biosynthetic pathway and plays essential roles in cell proliferation. As a clinical target, IMPDH has been studied for decades, but it has only been within the last years that we are starting to understand the complexity of the mechanisms of its physiological regulation. Here, we report structural and functional insights into how adenine and guanine nucleotides control a conformational switch that modulates the assembly of the two human IMPDH enzymes into cytoophidia and allosterically regulates their catalytic activity. In vitro reconstituted micron-length cytoophidia-like structures show catalytic activity comparable to unassembled IMPDH but, in turn, are more resistant to GTP/GDP allosteric inhibition. Therefore, IMPDH cytoophidia formation facilitates the accumulation of high levels of guanine nucleotides when the cell requires it. Finally, we demonstrate that most of the IMPDH retinopathy-associated mutations abrogate GTP/GDP-induced allosteric inhibition and alter cytoophidia dynamics.
肌苷 5'-单磷酸脱氢酶(IMPDH)催化从头合成 GTP 生物合成途径中的限速步骤,在细胞增殖中发挥重要作用。作为一个临床靶点,IMPDH 已经研究了几十年,但直到最近几年,我们才开始了解其生理调节机制的复杂性。在这里,我们报告了结构和功能方面的见解,了解腺嘌呤和鸟嘌呤核苷酸如何控制构象开关,从而调节两种人 IMPDH 酶组装成细胞丝状伪足以及别构调节其催化活性。体外重建的微长度细胞丝状伪足样结构显示出与未组装的 IMPDH 相当的催化活性,但反过来,对 GTP/GDP 变构抑制的抗性更强。因此,当细胞需要时,IMPDH 细胞丝状伪足的形成有助于积累高水平的鸟嘌呤核苷酸。最后,我们证明大多数 IMPDH 视网膜病变相关突变消除了 GTP/GDP 诱导的变构抑制并改变了细胞丝状伪足的动力学。