Impact of Branched-Chain Amino Acid Catabolism on Fatty Acid and Alkene Biosynthesis in Micrococcus luteus.
Micrococcus luteusにおける分岐鎖アミノ酸異化が脂肪酸およびアルケン生合成に及ぼす影響 (機械翻訳の邦題)
記録の確認項目
- 研究デザイン
- その他の原著論文
- 対象
- 未確定
- 出版年
- 2018
- 出典
- doi.org
- 抄録の表示
- 表示あり
- 出版状態
- 有効な記録
- 状態確認日
- 2026/08/17
- 収集日
- 2026/08/03
- 鮮度
- 確認期限内
- 確認段階
- 自動処理
- 記録状態
- 公開
日本語要約(機械生成)
Micrococcus luteusは天然にアルケンを産生し、バイオ燃料や潤滑油の成分として有望である。本研究では、分岐鎖アミノ酸異化の鍵酵素遺伝子を同定し、その遺伝子操作により特定のオレフィン産生を制御できることを示した。BCKD複合体遺伝子クラスターの過剰発現によりオレフィン産生が約3倍増加し、欠失では分岐鎖脂肪酸含量が激減しオレフィン産生が完全に消失した。また、各欠失変異株の脂肪酸・オレフィンプロファイルからアシルCoA脱水素酵素の基質特異性を推定した。さらに、ロイシンを唯一の窒素源とする生育実験により遺伝子機能の注釈を確認した。これらの結果から、M. luteusの分岐鎖アミノ酸代謝に関わる遺伝子の機能を明確に割り当て、産生オレフィンの異性体組成や鎖長を改変する方法を示した。
この要約は公開抄録のみを根拠にAIが機械的に生成したものです。正確な内容は原文を確認してください。
抄録
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.
DOI 10.3389/fmicb.2018.00374
PMID 29593665
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