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从堆肥厂中分离出的嗜热和纤维素分解菌协同作用提高了纤维素生物质的厌氧消化效率:迈向微生物资源管理方法。

Thermophilic and cellulolytic consortium isolated from composting plants improves anaerobic digestion of cellulosic biomass: Toward a microbial resource management approach.

机构信息

Unit of BioIndustry, Gembloux Agro-Bio Tech, University of Liège, Passage des déportés, 2, Gembloux B-5030, Belgium.

Unit of BioIndustry, Gembloux Agro-Bio Tech, University of Liège, Passage des déportés, 2, Gembloux B-5030, Belgium.

出版信息

Bioresour Technol. 2015;189:138-144. doi: 10.1016/j.biortech.2015.04.010. Epub 2015 Apr 8.

DOI:10.1016/j.biortech.2015.04.010
PMID:25879181
Abstract

A cellulolytic consortium was isolated from a composting plant in order to boost the initial hydrolysis step encountered in anaerobic digestion. Improvement of the cellulose degradation, as well as biogas production, was observed for the cultures inoculated with the exogenous consortium. Metagenomics analyses pointed out a weak richness (related to the number of OTUs) of the exogenous consortium induced by the selective pressure (cellulose as sole carbon source) met during the initial isolation steps. Main microbial strains determined were strictly anaerobic and belong to the Clostridia class. During cellulose anaerobic degradation, pH drop induced a strong modification of the microbial population. Despite the fact that richness and evenness were very weak, the exogenous consortium was able to adapt and to maintain the cellulolytic degradation potential. This important result point out the fact that simplified microbial communities could be used in order to increase the robustness of mixed cultures involved in environmental biotechnology.

摘要

为了提高厌氧消化过程中遇到的初始水解步骤,从一个堆肥厂中分离出了一个纤维分解菌共生体。对于用外源共生体接种的培养物,观察到纤维素的降解以及沼气的产生都得到了改善。宏基因组学分析表明,在初始分离步骤中遇到的选择压力(纤维素作为唯一碳源)对外源共生体的丰富度(与 OTU 数量有关)的影响较弱。确定的主要微生物菌株严格厌氧,属于梭菌纲。在纤维素的厌氧降解过程中,pH 值下降导致微生物种群发生强烈变化。尽管丰富度和均匀度非常低,但外源共生体能够适应并保持纤维素降解能力。这一重要结果表明,简化的微生物群落可用于提高参与环境生物技术的混合培养物的稳健性。

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