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利用宏基因组分析阐明动态自热嗜热好氧消化过程。

Clarification of the Dynamic Autothermal Thermophilic Aerobic Digestion Process Using Metagenomic Analysis.

机构信息

Laboratory of Soil and Environmental Microbiology, Division of Systems Bioengineering, Department of Bioscience and Biotechnology, Faculty of Agriculture, Graduate School of Bioresources and Bioenvironmental Sciences, Kyushu Universitygrid.177174.3, Fukuoka, Japan.

Laboratory of Microbial Environmental Protection, Tropical Microbiology Unit, Center for International Education and Research of Agriculture, Faculty of Agriculture, Kyushu Universitygrid.177174.3, Fukuoka, Japan.

出版信息

Microbiol Spectr. 2022 Apr 27;10(2):e0056122. doi: 10.1128/spectrum.00561-22. Epub 2022 Mar 29.

Abstract

This study details a unique process of autothermal thermophilic aerobic digestion (ATAD) of human excreta useful in producing nitrogen-rich and pathogen-free organic fertilizer. The process was divided into initial, middle, and final phases, based on changes in temperature, dissolved oxygen (DO), and bacterial community structure. The aim of this study was to determine bacterial factors that would affect liquid fertilizer production in the process, using shotgun metagenomic analysis of each phase. Although the abundances of all 28 gene categories include 4 categories in SEED subsystems level 1 were similar to those in another type of wastewater treatment system, the abundances of 4 gene categories changed remarkably. Among them, a decrease in the abundance of the phage-related gene category and the presence of antibacterial substances in secondary metabolism may explain the change in bacterial community structure from the material to the initial phase. Increases in the abundances of two gene categories, phage-related and secondary metabolism, coincided with a decrease in alpha diversity from the material to the initial phase. A potential increase in the abundance of genes in the category of sporulation from the middle to the final phase was correlated with deterioration of growth conditions and stabilization processes. In addition, prompt consumption of short-chain fatty acids in the initial phase and unusually stable ammonia accumulation throughout the process could be explained by the presence/absence of related metabolic genes. In conclusion, the relationships between bacterial function and unique characteristics of ATAD were revealed; our findings support the enhancement of liquid fertilizer production from wastewater. Metagenome analysis was performed to determine the microbial dynamics of the unique autothermal thermophilic aerobic digestion process of human excreta, which includes initial, middle, and final phases. In this study, we revealed the details of functional genes related to physicochemical and bacterial characteristics in the ATAD process. Four gene categories showed increases and decreases during the digestion process. In addition, the unusual stable accumulation of ammonia and prompt consumption of short-chain fatty acids were explained by the absence or presence of related metabolic genes. In addition to revealing the relationships between bacteria and physicochemical properties, the results of this research may support improving wastewater management systems worldwide by using the ATAD process in liquid fertilizer production systems.

摘要

本研究详细介绍了一种独特的自热嗜热好氧消化(ATAD)人类排泄物的过程,该过程可用于生产富含氮和无病原体的有机肥料。该过程根据温度、溶解氧(DO)和细菌群落结构的变化分为初始、中期和终期三个阶段。本研究的目的是使用每个阶段的鸟枪法宏基因组分析来确定影响液体肥料生产的细菌因素。尽管所有 28 个基因类别包括 SEED 子系统水平 1 的 4 个类别,其丰度与另一种废水处理系统相似,但 4 个基因类别的丰度发生了显著变化。其中,噬菌体相关基因类别的丰度下降和次级代谢中抗菌物质的存在可能解释了从物料到初始阶段细菌群落结构的变化。在从物料到初始阶段,两个基因类别的丰度增加,噬菌体相关和次级代谢,与 alpha 多样性的减少相吻合。从中期到终期,孢子形成相关基因类别丰度的潜在增加与生长条件的恶化和稳定化过程有关。此外,在初始阶段短链脂肪酸的快速消耗和整个过程中氨的异常稳定积累可以用相关代谢基因的存在/不存在来解释。总之,揭示了细菌功能与 ATAD 独特特征之间的关系;我们的研究结果支持增强从废水生产液体肥料。宏基因组分析用于确定人类排泄物独特的自热嗜热好氧消化过程的微生物动态,包括初始、中期和终期。在本研究中,我们揭示了与 ATAD 过程中理化和细菌特性相关的功能基因的细节。在消化过程中,有四个基因类别增加和减少。此外,氨的异常稳定积累和短链脂肪酸的快速消耗可以用相关代谢基因的存在或不存在来解释。除了揭示细菌与理化性质之间的关系外,本研究的结果还可能通过在液体肥料生产系统中使用 ATAD 过程来支持改善全球废水管理系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f4ff/9045309/9dcccf62c439/spectrum.00561-22-f001.jpg

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