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富集细菌提高一氧化碳制乙醇的产量

Enhanced Ethanol Production From Carbon Monoxide by Enriched Bacteria.

作者信息

He Yaxue, Lens Piet N L, Veiga María C, Kennes Christian

机构信息

Chemical Engineering Laboratory, Faculty of Sciences and Center for Advanced Scientific Research (CICA), BIOENGIN Group, University of A Coruña (UDC), A Coruña, Spain.

National University of Ireland Galway, Galway, Ireland.

出版信息

Front Microbiol. 2021 Oct 28;12:754713. doi: 10.3389/fmicb.2021.754713. eCollection 2021.

DOI:10.3389/fmicb.2021.754713
PMID:34777310
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8585497/
Abstract

Carbon monoxide (CO)-metabolizing spp. were enriched from the biomass of a butanol-producing reactor. After six successive biomass transfers, ethanol production reached as much as 11.8 g/L with minor accumulation of acetic acid, under intermittent gas feeding conditions and over a wide pH range of 6.45-4.95. The molar ratio of ethanol to acetic acid exceeded 1.7 after the lag phase of 11 days and reached its highest value of 8.6 during the fermentation process after 25 days. Although butanol production was not significantly enhanced in the enrichment, the biomass was able to convert exogenous butyric acid (3.2 g/L) into butanol with nearly 100% conversion efficiency using CO as reducing power. This suggested that inhibition of butanol production from CO was caused by the lack of natural butyric acid production, expectedly induced by unsuitable pH values due to initial acidification resulting from the acetic acid production. The enriched population also converted glucose to formic, acetic, propionic, and butyric acids in batch tests with daily pH adjustment to pH 6.0. The genus was enriched with its relative abundance significantly increasing from 7% in the inoculum to 94% after five successive enrichment steps. Unidentified species showed a very high relative abundance, reaching 73% of the genus in the enriched sludge (6th transfer).

摘要

从丁醇生产反应器的生物质中富集出了一氧化碳(CO)代谢菌。在连续进行六次生物质转移后,在间歇供气条件下以及6.45 - 4.95的宽pH范围内,乙醇产量高达11.8 g/L,乙酸积累量较少。在11天的滞后期后,乙醇与乙酸的摩尔比超过1.7,并在25天后的发酵过程中达到最高值8.6。尽管在富集过程中丁醇产量没有显著提高,但该生物质能够利用CO作为还原力,将外源丁酸(3.2 g/L)几乎100%转化为丁醇。这表明,由于乙酸产生导致初始酸化,不合适的pH值预期会诱导天然丁酸产生的缺乏,从而抑制了由CO生产丁醇。在每日将pH调节至6.0的分批试验中,富集菌群还将葡萄糖转化为甲酸、乙酸、丙酸和丁酸。经过五个连续富集步骤后,该属的相对丰度从接种物中的7%显著增加到94%,从而实现了该属的富集。未鉴定的物种显示出非常高的相对丰度,在富集污泥(第6次转移)中占该属的73%。

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本文引用的文献

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Sci Total Environ. 2022 Feb 1;806(Pt 2):150579. doi: 10.1016/j.scitotenv.2021.150579. Epub 2021 Sep 25.
2
Homoacetogenesis and solventogenesis from H/CO by granular sludge at 25, 37 and 55 °C.25、37 和 55°C 下颗粒污泥对 H/CO 的同型产乙酸作用和溶剂生成作用。
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Microbial insights of enhanced anaerobic conversion of syngas into volatile fatty acids by co-fermentation with carbohydrate-rich synthetic wastewater.
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Biotechnol Biofuels. 2020 Mar 16;13:53. doi: 10.1186/s13068-020-01694-z. eCollection 2020.
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