ZERO WORLD RESEARCHアミノ酸・有機酸の学術文献データベース

Improvement of Fusel Alcohol Production by Engineering of the Yeast Branched-Chain Amino Acid Aminotransaminase.

酵母の分岐鎖アミノ酸アミノトランスアミナーゼの改変によるフーゼルアルコール生産の向上 (機械翻訳の邦題)

Applied and environmental microbiology2022Koonthongkaew J, Ploysongsri N, Toyokawa Y, et al.
研究デザインその他の原著論文
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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
2022
出典
doi.org
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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)

分岐鎖高級アルコール(BCHA)は工業的に有用であり、酵母Saccharomyces cerevisiaeは分岐鎖アミノ酸(BCAA)経路を介してこれらを合成する。BCAT(Bat1とBat2)はEhrlich経路の鍵酵素であるが、その機能改変による生産向上の報告はなかった。本研究では、in silico解析によりBat1とBat2の変異体(Gly333Ser/Trp、Gly316Ser/Trp)を設計し、酵母で発現させた。その結果、Gly333Trp Bat1とGly316Ser Bat2は、野生型と比較してイソブタノール生産をそれぞれ18.7倍、17.4倍に向上させた。酵素活性は全ての変異体で低下しており、BCAT活性の低下がBCAA生合成を抑制し、BCHA生産を促進することが示された。

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

Branched-chain higher alcohols (BCHAs), or fusel alcohols, including isobutanol, isoamyl alcohol, and active amyl alcohol, are useful compounds in several industries. The yeast Saccharomyces cerevisiae can synthesize these compounds via the metabolic pathways of branched-chain amino acids (BCAAs). Branched-chain amino acid aminotransaminases (BCATs) are the key enzymes for BCHA production via the Ehrlich pathway of BCAAs. BCATs catalyze a bidirectional transamination reaction between branched-chain α-keto acids (BCKAs) and BCAAs. In S. cerevisiae, there are two BCAT isoforms, Bat1 and Bat2, which are encoded by the genes BAT1 and BAT2. Although many studies have shown the effects of deletion or overexpression of BAT1 and BAT2 on BCHA production, there have been no reports on the enhancement of BCHA production by functional variants of BCATs. Here, to improve BCHA productivity, we designed variants of Bat1 and Bat2 with altered enzyme activity by using in silico computational analysis: the Gly333Ser and Gly333Trp Bat1 and corresponding Gly316Ser and Gly316Trp Bat2 variants, respectively. When expressed in S. cerevisiae cells, most of these variants caused a growth defect in minimal medium. Interestingly, the Gly333Trp Bat1 and Gly316Ser Bat2 variants achieved 18.7-fold and 17.4-fold increases in isobutanol above that for the wild-type enzyme, respectively. The enzyme assay revealed that the catalytic activities of all four BCAT variants were lower than that of the wild-type enzyme. Our results indicate that the decreased BCAT activity enhanced BCHA production by reducing BCAA biosynthesis, which occurs via a pathway that directly competes with BCHA production. IMPORTANCE Recently, several studies have attempted to increase the production of branched-chain higher alcohols (BCHAs) in the yeast Saccharomyces cerevisiae. The key enzymes for BCHA biosynthesis in S. cerevisiae are the branched-chain amino acid aminotransaminases (BCATs) Bat1 and Bat2. Deletion or overexpression of the genes encoding BCATs has an impact on the production of BCHAs; however, amino acid substitution variants of Bat1 and Bat2 that could affect enzymatic properties-and ultimately BCHA productivity-have not been fully studied. By using in silico analysis, we designed variants of Bat1 and Bat2 and expressed them in yeast cells. We found that the engineered BCATs decreased catalytic activities and increased BCHA production. Our approach provides new insight into the functions of BCATs and will be useful in the future construction of enzymes optimized for high-level production of BCHAs.

MeSH

Amino Acids, Branched-ChainEthanolMitochondrial ProteinsSaccharomyces cerevisiaeSaccharomyces cerevisiae ProteinsTransaminases

DOI 10.1128/aem.00557-22

PMID 35699439

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