洞察糠醛耐受性和产氢微生物群:糠醛耐受性和产氢机理。

IF 9 1区 环境科学与生态学 Q1 AGRICULTURAL ENGINEERING
Li-Li Luo , Ming-Jun Zhu
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引用次数: 0

摘要

在 1 g/L 糠醛胁迫下,产氢量为 259.84 mL/g-木糖。在木糖系统中,联合菌群可在 24 小时内降解 2.5 克/升糠醛,降解效率高于无糖系统。尽管糠醛降解为糠醇,但也检测到活性氧和乳酸脱氢酶的释放,表明糠醇也是潜在的产氢抑制剂。据观察,随着糠醛浓度的增加,丁酸盐/乙酸盐的比率也会降低,从而导致制氢量减少。此外,微生物群落分析表明,丁酸梭菌主要负责糠醛降解,而beijerinckii梭菌的减少导致产氢量下降。总之,本研究中富集的联合菌群可高效降解糠醛并产生氢气,为研究耐受糠醛的产氢微生物联合菌群提供了新的视角。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Insight into furfural-tolerant and hydrogen-producing microbial consortia: Mechanism of furfural tolerance and hydrogen production

Insight into furfural-tolerant and hydrogen-producing microbial consortia: Mechanism of furfural tolerance and hydrogen production

Furfural-tolerant and hydrogen-producing microbial consortia were enriched from soil, with hydrogen production of 259.84 mL/g-xylose under 1 g/L furfural stress. The consortia could degrade 2.5 g/L furfural within 24 h in the xylose system, more efficient than in the sugar-free system. Despite degradation of furfural to furfuryl alcohol, the release of reactive oxygen species and lactate dehydrogenase was also detected, suggesting that furfuryl alcohol is also a potential inhibitor of hydrogen production. The butyrate/acetate ratio was observed to decrease with increasing furfural concentration, leading to decreased hydrogen production. Furthermore, microbial community analysis suggested that dominated Clostridium butyricum was responsible for furfural degradation, while Clostridium beijerinckii reduction led to hydrogen production decrease. Overall, the enriched consortia in this study could efficiently degrade furfural and produce hydrogen, providing new insights into hydrogen-producing microbial consortia with furfural tolerance.

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来源期刊
Bioresource Technology
Bioresource Technology 工程技术-能源与燃料
CiteScore
20.80
自引率
19.30%
发文量
2013
审稿时长
12 days
期刊介绍: Bioresource Technology publishes original articles, review articles, case studies, and short communications covering the fundamentals, applications, and management of bioresource technology. The journal seeks to advance and disseminate knowledge across various areas related to biomass, biological waste treatment, bioenergy, biotransformations, bioresource systems analysis, and associated conversion or production technologies. Topics include: • Biofuels: liquid and gaseous biofuels production, modeling and economics • Bioprocesses and bioproducts: biocatalysis and fermentations • Biomass and feedstocks utilization: bioconversion of agro-industrial residues • Environmental protection: biological waste treatment • Thermochemical conversion of biomass: combustion, pyrolysis, gasification, catalysis.
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