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古菌乙酰乙酰辅酶 A 硫解酶/HMG-CoA 合酶复合物通过融合的辅酶 A 结合位点将中间产物转移。

Archaeal acetoacetyl-CoA thiolase/HMG-CoA synthase complex channels the intermediate via a fused CoA-binding site.

机构信息

Biochemistry and Synthetic Metabolism, Max Planck Institute for Terrestrial Microbiology, 35043 Marburg, Germany.

Institut de Biologie Structurale (IBS), University of Grenoble Alpes (UGA), Commissariat à l'énergie atomique et aux énergies alternatives (CEA), Centre National de la Recherche Scientifique (CNRS), F-38000 Grenoble, France.

出版信息

Proc Natl Acad Sci U S A. 2018 Mar 27;115(13):3380-3385. doi: 10.1073/pnas.1718649115. Epub 2018 Mar 12.

Abstract

Many reactions within a cell are thermodynamically unfavorable. To efficiently run some of those endergonic reactions, nature evolved intermediate-channeling enzyme complexes, in which the products of the first endergonic reactions are immediately consumed by the second exergonic reactions. Based on this concept, we studied how archaea overcome the unfavorable first reaction of isoprenoid biosynthesis-the condensation of two molecules of acetyl-CoA to acetoacetyl-CoA catalyzed by acetoacetyl-CoA thiolases (thiolases). We natively isolated an enzyme complex comprising the thiolase and 3-hydroxy-3-methylglutaryl (HMG)-CoA synthase (HMGCS) from a fast-growing methanogenic archaeon, HMGCS catalyzes the second reaction in the mevalonate pathway-the exergonic condensation of acetoacetyl-CoA and acetyl-CoA to HMG-CoA. The 380-kDa crystal structure revealed that both enzymes are held together by a third protein (DUF35) with so-far-unknown function. The active-site clefts of thiolase and HMGCS form a fused CoA-binding site, which allows for efficient coupling of the endergonic thiolase reaction with the exergonic HMGCS reaction. The tripartite complex is found in almost all archaeal genomes and in some bacterial ones. In addition, the DUF35 proteins are also important for polyhydroxyalkanoate (PHA) biosynthesis, most probably by functioning as a scaffold protein that connects thiolase with 3-ketoacyl-CoA reductase. This natural and highly conserved enzyme complex offers great potential to improve isoprenoid and PHA biosynthesis in biotechnologically relevant organisms.

摘要

许多细胞内的反应在热力学上是不利的。为了有效地进行一些吸能反应,自然界进化出了中间通道酶复合物,其中第一个吸能反应的产物立即被第二个放能反应消耗。基于这一概念,我们研究了古菌如何克服异戊烯生物合成的第一个不利反应——由乙酰辅酶 A 二硫酶(硫解酶)催化的两个乙酰辅酶 A 分子的缩合。我们从一种快速生长的产甲烷古菌中天然分离出一个由硫解酶和 3-羟基-3-甲基戊二酰辅酶 A 合酶(HMGCS)组成的酶复合物,HMGCS 催化甲羟戊酸途径中的第二个反应——乙酰辅酶 A 和乙酰辅酶 A 的放能缩合生成 HMG-CoA。380kDa 的晶体结构表明,两种酶都由第三种具有迄今未知功能的蛋白(DUF35)结合在一起。硫解酶和 HMGCS 的活性位点裂隙形成一个融合的辅酶 A 结合位点,允许有效地将吸能的硫解酶反应与放能的 HMGCS 反应偶联。这种三联体复合物几乎存在于所有古菌基因组和一些细菌基因组中。此外,DUF35 蛋白对于聚羟基烷酸(PHA)生物合成也很重要,很可能通过作为连接硫解酶和 3-酮酰基辅酶 A 还原酶的支架蛋白起作用。这种天然的、高度保守的酶复合物为提高生物技术相关生物体内的异戊烯和 PHA 生物合成提供了巨大的潜力。

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