祖先のエステラゼとヒドロキシニトリルライアゼの触媒性
Titu Devamani1, Alissa M Rauwerdink1, Mark Lunzer2
1Department of Biochemistry, Molecular Biology & Biophysics and The Biotechnology Institute, University of Minnesota , 1479 Gortner Avenue, Saint Paul, Minnesota 55108, United States.
Journal of the American Chemical Society
|January 7, 2016
まとめ
進化の分岐点から再構築された祖先の酵素は,現代の子孫よりも大きな触媒的乱交性を示した. これは古代の酵素がより多用途で 新しい酵素機能の進化を助けたことを示唆している.
科学分野:
- 酵素の進化
- 生物触媒
- 生物化学
背景:
- 酵素の鍵となる性質である 触媒的乱交は 自然界で発見するのは困難です
- 祖先の酵素は,進化の先駆者として,より乱交的であったと仮定されています.
研究 の 目的:
- 祖先の酵素が現代の酵素より 触媒的に乱交しているかどうかを調べるため
- 祖先のヒドロキシニトリルライゼス (HNLs) とエステラゼスを再構築し,比較する.
主な方法:
- HNLとエステラゼの間の4つの分岐点での先祖酵素の再構築.
- エステラゼとライアゼ基板を用いた祖先および子孫酵素のスクリーニング.
- 機械的に関連した非選択反応に対するより広範なスクリーニング.
主要な成果:
- 祖先の酵素は,現代の酵素と比較して,著しく高い触媒性 (P < 0. 01) を示した.
- 祖先のエステラゼはライアゼ活性が増加し,祖先のHNLはエステラゼ活性が増加した.
- 一つの祖先のHNL (HNL1) は,水解とライアス反応の両方を触媒として,例外的な乱交性を示した.
結論:
- 再構築された祖先酵素は実際に触媒的に乱交し,仮説を支持します.
- HNL1酵素は特に乱交性であり,進化的移行における潜在的役割を強調した.
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