Liew Fungmin, Henstra Anne M, Kӧpke Michael, Winzer Klaus, Simpson Sean D, Minton Nigel P
BBSRC/EPSRC Synthetic Biology Research Centre (SBRC), School of Life Sciences, University Park, The University of Nottingham, Nottingham NG7 2RD, UK; LanzaTech Inc., 8045 Lamon Avenue, Suite 400, Skokie, IL, USA.
BBSRC/EPSRC Synthetic Biology Research Centre (SBRC), School of Life Sciences, University Park, The University of Nottingham, Nottingham NG7 2RD, UK.
Metab Eng. 2017 Mar;40:104-114. doi: 10.1016/j.ymben.2017.01.007. Epub 2017 Jan 19.
Gas fermentation using acetogenic bacteria such as Clostridium autoethanogenum offers an attractive route for production of fuel ethanol from industrial waste gases. Acetate reduction to acetaldehyde and further to ethanol via an aldehyde: ferredoxin oxidoreductase (AOR) and alcohol dehydrogenase has been postulated alongside the classic pathway of ethanol formation via a bi-functional aldehyde/alcohol dehydrogenase (AdhE). Here we demonstrate that AOR is critical to ethanol formation in acetogens and inactivation of AdhE led to consistently enhanced autotrophic ethanol production (up to 180%). Using ClosTron and allelic exchange mutagenesis, which was demonstrated for the first time in an acetogen, we generated single mutants as well as double mutants for both aor and adhE isoforms to confirm the role of each gene. The aor1+2 double knockout strain lost the ability to convert exogenous acetate, propionate and butyrate into the corresponding alcohols, further highlighting the role of these enzymes in catalyzing the thermodynamically unfavourable reduction of carboxylic acids into alcohols.
利用产乙酸细菌(如自养乙醇梭菌)进行气体发酵为从工业废气生产燃料乙醇提供了一条有吸引力的途径。除了通过双功能醛/醇脱氢酶(AdhE)生成乙醇的经典途径外,还推测了通过醛:铁氧化还原蛋白氧化还原酶(AOR)和醇脱氢酶将乙酸还原为乙醛并进一步还原为乙醇的过程。在此,我们证明AOR对产乙酸菌中乙醇的形成至关重要,AdhE的失活导致自养乙醇产量持续提高(高达180%)。我们使用ClosTron和等位基因交换诱变(这是首次在产乙酸菌中得到证明),针对aor和adhE同工型生成了单突变体和双突变体,以确认每个基因的作用。aor1+2双敲除菌株失去了将外源乙酸、丙酸和丁酸转化为相应醇类的能力,进一步突出了这些酶在催化热力学上不利的羧酸还原为醇类过程中的作用。