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首页> 外文期刊>Frontiers in Microbiology >Impact of Branched-Chain Amino Acid Catabolism on Fatty Acid and Alkene Biosynthesis in Micrococcus luteus
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Impact of Branched-Chain Amino Acid Catabolism on Fatty Acid and Alkene Biosynthesis in Micrococcus luteus

机译:支链氨基酸分解代谢对黄体微球菌脂肪酸和烯烃生物合成的影响

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Micrococcus luteus naturally produces alkenes, unsaturated aliphatic hydrocarbons, and represents a promising host to produce hydrocarbons as constituents of biofuels and lubricants. In this work, we identify the genes for key enzymes of the branched-chain amino acid catabolism in M. luteus , whose first metabolic steps lead also to the formation of primer molecules for branched-chain fatty acid and olefin biosynthesis, and demonstrate how these genes can be used to manipulate the production of specific olefins in this organism. We constructed mutants of several gene candidates involved in the branched-chain amino acid metabolism or its regulation and investigated the resulting changes in the cellular fatty acid and olefin profiles by GC/MS. The gene cluster encoding the components of the branched-chain α-keto acid dehydrogenase (BCKD) complex was identified by deletion and promoter exchange mutagenesis. Overexpression of the BCKD gene cluster resulted in about threefold increased olefin production whereas deletion of the cluster led to a drastic reduction in branched-chain fatty acid content and a complete loss of olefin production. The specificities of the acyl-CoA dehydrogenases of the branched amino acid degradation pathways were deduced from the fatty acid and olefin profiles of the respective deletion mutant strains. In addition, growth experiments with branched amino acids as the only nitrogen source were carried out with the mutants in order to confirm our annotations. Both the deletion mutant of the BCKD complex, responsible for the further degradation of all three branched-chain amino acids, as well as the deletion mutant of the proposed isovaleryl-CoA dehydrogenase (specific for leucine degradation) were not able to grow on leucine in contrast to the parental strain. In conclusion, our experiments allow the unambigous assignment of specific functions to the genes for key enzymes of the branched-chain amino acid metabolism of M. luteus . We also show how this knowledge can be used to engineer the isomeric composition and the chain lengths of the olefins produced by this organism.
机译:黄褐微球菌自然产生烯烃,不饱和脂族烃,并代表有希望的宿主来产生烃作为生物燃料和润滑剂的成分。在这项工作中,我们确定了黄麻中支链氨基酸分解代谢关键酶的基因,其最初的代谢步骤也导致了支链脂肪酸和烯烃生物合成的引物分子的形成,并展示了这些基因可以用于操纵这种生物体中特定烯烃的产生。我们构建了涉及支链氨基酸代谢或其调控的几种基因候选物的突变体,并通过GC / MS研究了细胞脂肪酸和烯烃分布的变化。通过缺失和启动子交换诱变鉴定了编码支链α-酮酸脱氢酶(BCKD)复合物成分的基因簇。 BCKD基因簇的过表达导致烯烃产量增加约三倍,而该簇的缺失导致支链脂肪酸含量的急剧减少和烯烃产量的完全损失。从各个缺失突变株的脂肪酸和烯烃谱推导了支链氨基酸降解途径的酰基辅酶A脱氢酶的特异性。另外,用突变体进行了以支链氨基酸为唯一氮源的生长实验,以证实我们的注释。负责所有三个支链氨基酸进一步降解的BCKD复合物的缺失突变体,以及拟议的异戊酰-CoA脱氢酶(对亮氨酸降解具有特异性)的缺失突变体均不能在亮氨酸上生长。与父母的压力相反。总而言之,我们的实验可以明确地将特定功能分配给黄褐藻分支链氨基酸代谢关键酶的基因。我们还展示了如何将这些知识用于设计该生物体产生的烯烃的异构体组成和链长。

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