腐植酸暗发酵增强生物制氢:微生物组成和功能基因的研究。

IF 3.1 4区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Liguo Zhang, Yanan Bai, Jing Sang, Jinru Dong, Xiujuan Wu, Qiaoying Ban
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引用次数: 0

摘要

近年来,利用生态友好的方法从有机废物或废水中生产生物氢引起了人们的关注。然而,生物氢产率仍远低于理论值。在本研究中,腐植酸(HA)是一种固体氧化还原介质(RM),用于促进葡萄糖的生物制氢。从微生物群落和功能基因的角度探讨了其内在机制。结果表明,HA的最佳用量为80和150 mg/l,产氢量分别为312.7和315.5 ml/g葡萄糖,比对照提高26.6%以上。在所有发酵系统中都可以观察到类似的挥发性脂肪酸(VFAs)模式。在生物制氢过程中,乙醇、乙酸和丙酸是所有发酵系统的主要副产物。添加80 mg/l的HA可显著提高乙酸浓度。微生物组成表明,在含HA的发酵体系中,Thermomarinilinea是最占优势的细菌属。与对照相比,其相对丰度提高了1.0 ~3.9倍。然而,冗余分析(RDA)表明,生物氢产率与Gimesia、Longilinea、Defluviimonas、Pirellula和Planctomicrobium密切相关。基于KEGG途径的功能基因显示,与对照相比,在最佳剂量的HA体系中,大多数生物产氢相关基因没有显著增加,这表明本研究中HA促进生物产氢可能依赖于加速电子转移和调节微生物群落。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhanced Biohydrogen Production through Dark Fermentation by Humic Acid: Insights into Microbial Composition and Functional Genes.

Biohydrogen production from organic waste or wastewater by eco-friendly methods has attracted attention in recent years. However, the biohydrogen yield still far below the theoretical value. In this study, humic acid (HA), a solid redox mediator (RM), was used to enhance the biohydrogen production from glucose. The internal mechanism based on microbial community and functional genes were explored. The results showed that the optimal dosages of HA were 80 and 150 mg/l with the biohydrogen yield of 312.7 and 315.5 ml/g glucose, which was higher than that in control by above 26.6%. A similar pattern of volatile fatty acids (VFAs) could be observed in all fermentation systems. Ethanol, acetate and propionate were the dominant by-products in all fermentation systems during the biohydrogen production process. The acetate concentration was significantly improved by adding 80 mg/l of HA. Microbial composition indicated that Thermomarinilinea was the most dominant bacterial genus in the fermentation systems containing HA. Compared with control, its relative abundance was increased by 1.0-fold~3.9-fold. However, redundancy analysis (RDA) indicated biohydrogen yield was closely correlated with Gimesia, Longilinea, Defluviimonas, Pirellula and Planctomicrobium. The functional genes based on KEGG pathways showed that most biohydrogen-producing related genes had not been significantly increased in the optimal dosage of HA systems compared with that in control, indicating that biohydrogen production was enhanced by HA might depend on accelerating electron transfer and adjusting microbial community in this study.

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来源期刊
Journal of microbiology and biotechnology
Journal of microbiology and biotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-MICROBIOLOGY
CiteScore
5.50
自引率
3.60%
发文量
151
审稿时长
2 months
期刊介绍: The Journal of Microbiology and Biotechnology (JMB) is a monthly international journal devoted to the advancement and dissemination of scientific knowledge pertaining to microbiology, biotechnology, and related academic disciplines. It covers various scientific and technological aspects of Molecular and Cellular Microbiology, Environmental Microbiology and Biotechnology, Food Biotechnology, and Biotechnology and Bioengineering (subcategories are listed below). Launched in March 1991, the JMB is published by the Korean Society for Microbiology and Biotechnology (KMB) and distributed worldwide.
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