Mizuki Aoki, Jeffrey Vinokur, Kento Motoyama, Rino Ishikawa, Michael Collazo, Duilio Cascio, Michael R Sawaya, Tomokazu Ito, James U Bowie, Hisashi Hemmi
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However, the crystal structure of mevalonate 3,5-bisphosphate decarboxylase and the structural reasons of the difference between reactions catalyzed by the enzyme and its homologs are unknown. In this study, we determined the X-ray crystal structure of mevalonate 3,5-bisphosphate decarboxylase from Picrophilus torridus, a thermoacidophilic archaeon of the order Thermoplasmatales. Structural and mutational analysis demonstrated the importance of a conserved aspartate residue for enzyme activity. In addition, although crystallization was performed in the absence of substrate or ligands, residual electron density having the shape of a fatty acid was observed at a position overlapping the ATP-binding site of the homologous enzyme, diphosphomevalonate decarboxylase. This finding is in agreement with the expected evolutionary route from phosphomevalonate decarboxylase (ATP-dependent) to mevalonate 3,5-bisphosphate decarboxylase (ATP-independent) through the loss of kinase activity. We found that the binding of geranylgeranyl diphosphate, an intermediate of the archeal isoprenoid biosynthesis pathway, evoked significant activation of mevalonate 3,5-bisphosphate decarboxylase, and several mutations at the putative geranylgeranyl diphosphate-binding site impaired this activation, suggesting the physiological importance of ligand binding as well as a possible novel regulatory system employed by the Thermoplasma-type mevalonate pathway.</p>","PeriodicalId":47244,"journal":{"name":"Journal of African History","volume":"28 1","pages":"102111"},"PeriodicalIF":1.0000,"publicationDate":"2022-07-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9254496/pdf/","citationCount":"0","resultStr":"{\"title\":\"Crystal structure of mevalonate 3,5-bisphosphate decarboxylase reveals insight into the evolution of decarboxylases in the mevalonate metabolic pathways.\",\"authors\":\"Mizuki Aoki, Jeffrey Vinokur, Kento Motoyama, Rino Ishikawa, Michael Collazo, Duilio Cascio, Michael R Sawaya, Tomokazu Ito, James U Bowie, Hisashi Hemmi\",\"doi\":\"10.1016/j.jbc.2022.102111\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Mevalonate 3,5-bisphosphate decarboxylase is involved in the recently discovered Thermoplasma-type mevalonate pathway. 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引用次数: 0
摘要
3,5-二磷酸甲羟戊酸脱羧酶参与了最近发现的热原浆型甲羟戊酸途径。该酶催化 3,5-二磷酸甲羟戊酸中 3-磷酸基团的消除以及底物的脱羧。该酶的整个反应类似于其同源物--二磷代甲羟戊酸脱羧酶和磷代甲羟戊酸脱羧酶的后半反应,它们也催化其底物的 3-羟基的 ATP 依赖性磷酸化。然而,3,5-二磷酸甲羟戊酸脱羧酶的晶体结构以及该酶与其同源物催化反应差异的结构原因尚不清楚。在这项研究中,我们测定了来自嗜热古菌目(Thermoplasmatales)的托里德小侏儒(Picrophilus torridus)的甲羟戊酸 3,5-二磷酸脱羧酶的 X 射线晶体结构。结构和突变分析表明了一个保守的天冬氨酸残基对酶活性的重要性。此外,虽然结晶是在没有底物或配体的情况下进行的,但在与同源酶二磷酸戊二酸脱羧酶的 ATP 结合位点重叠的位置,观察到了具有脂肪酸形状的残余电子密度。这一发现与通过丧失激酶活性从磷酸甲羟戊酸脱羧酶(依赖 ATP)到 3,5-二磷酸甲羟戊酸脱羧酶(不依赖 ATP)的预期进化路线一致。我们发现,原木异戊二烯生物合成途径的中间体--二磷酸香叶酯的结合会显著激活3,5-二磷酸甲羟戊酸脱羧酶,而二磷酸香叶酯结合位点的几种突变会削弱这种激活,这表明配体结合在生理上的重要性以及热原型甲羟戊酸途径可能采用的一种新型调节系统。
Crystal structure of mevalonate 3,5-bisphosphate decarboxylase reveals insight into the evolution of decarboxylases in the mevalonate metabolic pathways.
Mevalonate 3,5-bisphosphate decarboxylase is involved in the recently discovered Thermoplasma-type mevalonate pathway. The enzyme catalyzes the elimination of the 3-phosphate group from mevalonate 3,5-bisphosphate as well as concomitant decarboxylation of the substrate. This entire reaction of the enzyme resembles the latter half-reactions of its homologs, diphosphomevalonate decarboxylase and phosphomevalonate decarboxylase, which also catalyze ATP-dependent phosphorylation of the 3-hydroxyl group of their substrates. However, the crystal structure of mevalonate 3,5-bisphosphate decarboxylase and the structural reasons of the difference between reactions catalyzed by the enzyme and its homologs are unknown. In this study, we determined the X-ray crystal structure of mevalonate 3,5-bisphosphate decarboxylase from Picrophilus torridus, a thermoacidophilic archaeon of the order Thermoplasmatales. Structural and mutational analysis demonstrated the importance of a conserved aspartate residue for enzyme activity. In addition, although crystallization was performed in the absence of substrate or ligands, residual electron density having the shape of a fatty acid was observed at a position overlapping the ATP-binding site of the homologous enzyme, diphosphomevalonate decarboxylase. This finding is in agreement with the expected evolutionary route from phosphomevalonate decarboxylase (ATP-dependent) to mevalonate 3,5-bisphosphate decarboxylase (ATP-independent) through the loss of kinase activity. We found that the binding of geranylgeranyl diphosphate, an intermediate of the archeal isoprenoid biosynthesis pathway, evoked significant activation of mevalonate 3,5-bisphosphate decarboxylase, and several mutations at the putative geranylgeranyl diphosphate-binding site impaired this activation, suggesting the physiological importance of ligand binding as well as a possible novel regulatory system employed by the Thermoplasma-type mevalonate pathway.
期刊介绍:
The Journal of African History publishes articles and book reviews ranging widely over the African past, from the late Stone Age to the present. In recent years increasing prominence has been given to economic, cultural and social history and several articles have explored themes which are also of growing interest to historians of other regions such as: gender roles, demography, health and hygiene, propaganda, legal ideology, labour histories, nationalism and resistance, environmental history, the construction of ethnicity, slavery and the slave trade, and photographs as historical sources. Contributions dealing with pre-colonial historical relationships between Africa and the African diaspora are especially welcome, as are historical approaches to the post-colonial period.