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梭菌属产乙醇菌羧基营养生长过程中乙醇氧化的作用。

The role of ethanol oxidation during carboxydotrophic growth of Clostridium autoethanogenum.

机构信息

Laboratory of Microbiology, Wageningen University & Research, Wageningen, The Netherlands.

Centre for Living Technologies, Eindhoven-Wageningen-Utrecht Alliance, Utrecht, The Netherlands.

出版信息

Microb Biotechnol. 2023 Nov;16(11):2082-2093. doi: 10.1111/1751-7915.14338. Epub 2023 Oct 9.

Abstract

The Wood-Ljungdahl pathway is an ancient metabolic route used by acetogenic carboxydotrophs to convert CO into acetate, and some cases ethanol. When produced, ethanol is generally seen as an end product of acetogenic metabolism, but here we show that it acts as an important intermediate and co-substrate during carboxydotrophic growth of Clostridium autoethanogenum. Depending on CO availability, C. autoethanogenum is able to rapidly switch between ethanol production and utilization, hereby optimizing its carboxydotrophic growth. The importance of the aldehyde ferredoxin:oxidoreductase (AOR) route for ethanol production in carboxydotrophic acetogens is known; however, the role of the bifunctional alcohol dehydrogenase AdhE (Ald-Adh) route in ethanol metabolism remains largely unclear. We show that the mutant strain C. autoethanogenum ∆adhE1a, lacking the Ald subunit of the main bifunctional aldehyde/alcohol dehydrogenase (AdhE, CAETHG_3747), has poor ethanol oxidation capabilities, with a negative impact on biomass yield. This indicates that the Adh-Ald route plays a major role in ethanol oxidation during carboxydotrophic growth, enabling subsequent energy conservation via substrate-level phosphorylation using acetate kinase. Subsequent chemostat experiments with C. autoethanogenum show that the wild type, in contrast to ∆adhE1a, is more resilient to sudden changes in CO supply and utilizes ethanol as a temporary storage for reduction equivalents and energy during CO-abundant conditions, reserving these 'stored assets' for more CO-limited conditions. This shows that the direction of the ethanol metabolism is very dynamic during carboxydotrophic acetogenesis and opens new insights in the central metabolism of C. autoethanogenum and similar acetogens.

摘要

伍德-吕根达尔途径是一种古老的代谢途径,被产乙酸羧化菌用于将 CO 转化为乙酸,在某些情况下还可转化为乙醇。在产乙酸代谢中,乙醇通常被视为终产物,但在这里我们发现,在 Clostridium autoethanogenum 的羧化生长过程中,它作为一种重要的中间产物和共底物发挥作用。根据 CO 的可用性,C. autoethanogenum 能够快速在乙醇生产和利用之间切换,从而优化其羧化生长。醛铁氧还蛋白:氧化还原酶(AOR)途径在产乙酸羧化菌乙醇生产中的重要性是已知的;然而,双功能醇脱氢酶 AdhE(Ald-Adh)途径在乙醇代谢中的作用在很大程度上仍不清楚。我们发现,缺失主要双功能醛/醇脱氢酶(AdhE,CAETHG_3747 的 Ald 亚基)的突变株 C. autoethanogenum ∆adhE1a 乙醇氧化能力较差,对生物量产量有负面影响。这表明,在羧化生长过程中,Adh-Ald 途径在乙醇氧化中起主要作用,通过使用乙酸激酶进行底物水平磷酸化,随后进行能量保存。随后用 C. autoethanogenum 进行恒化器实验表明,与 ∆adhE1a 相比,野生型在 CO 供应突然变化时更具弹性,并在 CO 丰富条件下将乙醇用作还原当量和能量的临时储存,在更 CO 受限的条件下保留这些“储存资产”。这表明在产乙酸羧化作用中,乙醇代谢的方向非常动态,并为 C. autoethanogenum 和类似产乙酸菌的中心代谢提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2b81/10616641/d05813f7fab8/MBT2-16-2082-g001.jpg

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