Metagenomic study of food waste anaerobic digestion.

IF 3.8 2区 生物学 Q2 MICROBIOLOGY
Oluwatomisin A Akinsola, Samuel O Dahunsi, Ebenezer L Odekanle
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引用次数: 0

Abstract

This study explores anaerobic digestion of food waste to understand the microbial community dynamics and metabolic pathways that drive the conversion of organic waste into biogas. Sampling was done at multiple time points during those 4 weeks (weekly) to capture microbial succession/changes over time. The microbial profile was evaluated using QIIME2 and BV-BRC, while functional annotation tools (PICRUSt2) were used to identify dominant pathways. The results reveal a temporal shift in microbial communities, with fermentative bacteria, such as Lactobacillus and Clostridia, dominating the early stages of digestion, followed by methanogenic archaea like Methanomicrobia in the later stages. Pathway analysis showed that fermentation, aromatic compound degradation, and methanogenesis were the primary metabolic processes, with methanogenesis becoming more prominent by week 3 (FW3_S162_R1). The study highlights the critical role of microbial community adaptation in maximizing methane production and offers new insights into optimizing anaerobic digestion for more efficient food waste biogas generation. By combining metagenomic and metabolomic approaches, this research provides a comprehensive understanding of the microbial and metabolic factors that shape the anaerobic digestion process, contributing to the development of sustainable waste management practices.IMPORTANCEThis study employs a metagenomic approach to elucidate the intricate microbial communities and metabolic processes involved in the anaerobic digestion of food waste. It highlights microbial interactions that influence biogas production, offering insights for optimizing waste-to-energy conversion. Understanding these dynamics is key to improving digestion efficiency, reducing environmental impacts, and advancing sustainable waste management and circular economy strategies. The findings provide a valuable foundation for future innovations addressing global waste and energy challenges.

食物垃圾厌氧消化的宏基因组研究。
本研究探索食物垃圾的厌氧消化,以了解驱动有机废物转化为沼气的微生物群落动态和代谢途径。在这4周(每周)的多个时间点进行采样,以捕获随时间变化的微生物演替/变化。使用QIIME2和BV-BRC评估微生物谱,使用功能注释工具(PICRUSt2)识别优势途径。结果揭示了微生物群落的时间变化,发酵细菌,如乳酸杆菌和梭状芽胞杆菌,主导消化的早期阶段,其次是产甲烷的古细菌,如甲烷微生物,在后期阶段。途径分析表明,发酵、芳香族化合物降解和产甲烷是主要的代谢过程,产甲烷在第3周变得更加突出(FW3_S162_R1)。该研究强调了微生物群落适应在最大化甲烷产量中的关键作用,并为优化厌氧消化以更有效地产生食物垃圾沼气提供了新的见解。通过结合宏基因组学和代谢组学方法,本研究提供了对形成厌氧消化过程的微生物和代谢因素的全面了解,有助于可持续废物管理实践的发展。本研究采用宏基因组方法来阐明食物垃圾厌氧消化过程中涉及的复杂微生物群落和代谢过程。它强调了影响沼气生产的微生物相互作用,为优化废物转化为能源提供了见解。了解这些动态是提高消化效率、减少环境影响、推进可持续废物管理和循环经济战略的关键。研究结果为未来创新应对全球废物和能源挑战提供了宝贵的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Microbiology spectrum
Microbiology spectrum Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
3.20
自引率
5.40%
发文量
1800
期刊介绍: Microbiology Spectrum publishes commissioned review articles on topics in microbiology representing ten content areas: Archaea; Food Microbiology; Bacterial Genetics, Cell Biology, and Physiology; Clinical Microbiology; Environmental Microbiology and Ecology; Eukaryotic Microbes; Genomics, Computational, and Synthetic Microbiology; Immunology; Pathogenesis; and Virology. Reviews are interrelated, with each review linking to other related content. A large board of Microbiology Spectrum editors aids in the development of topics for potential reviews and in the identification of an editor, or editors, who shepherd each collection.
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