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Sludge digestibility and functionally active microorganisms in methanogenic sludge digesters revealed by E. coli-fed digestion and microbial source tracking

机译:通过大肠杆菌饲料消化和微生物源跟踪显示的甲烷污泥消化器中的污泥消化率和功能活性微生物

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摘要

Methanogenic sludge digestion plays a pivotal role in attenuating and hygienizing the massively-produced waste activated sludge (WAS), which is predominantly composed of microbial cells and extracellular polymeric substances (EPS). The efficient sludge digestion requires a variety of functionally active microorganisms working together closely to convert sludge organic matter into biogas. Nonetheless, the digestion efficiency (or digestibility quantified as carbon removal efficiency) of major sludge constituents (i.e., microbial cells and EPS) and associated functionally active microorganisms in sludge digesters remain elusive. In this study, we identified the digestibility of sludge microbial cells and the associated functionally active microorganisms by using Escherichia coli(E. colⅰ)-fed digestion and microbial source tracking. The average carbon removals in four digesters fed with fresh WAS (WAS-AD), thermal pretreated WAS (Thermal-WAS-AD), E. coli cells (E.coli-AD) and thermal pretreated E. coli cells (Thermal-E.coli-AD) were 30.6 ± 3.4%, 45.8 ± 2.9%, 69.0 ± 3.4% and 68.9 ± 4.6%, respectively. Compared to WAS-AD and Thermal-WAS-AD, the significantly higher carbon removals in E. coli-AD and Thermal-E. coli-AD suggested the remarkably higher digestibility of microbial cells than EPS, and releasing organic matter from EPS might be a rate-limiting step in sludge digestion. Functionally active microorganisms for microbial cell digestion predominantly included fermenters (e.g., Petrimonas and Lentimicrobium), syntrophic acetogens (e.g., Synergistaceae) and methanogens (e.g., Methanosaeta and Methanosarcina). Microbial source tracking estimation showed that the microbial cell-digesting populations accounted for 35.6 ± 9.1% and 70.3 ± 10.1% of total microbial communities in the WAS-AD and Thermal-WAS-AD, respectively. Accordingly, the functionally active microorganisms for digestion of both microbial cells and EPS accounted for 64.5 ± 12.1% and 97.3 ± 2.0% of total digestion sludge microbiome in WAS-AD and Thermal-WAS-AD, respectively. By contrast, feeding WAS-derived microorganisms accounted for 23.2 ± 4.4% and 2.3 ± 1.2% of total microbial communities in the WAS-AD and Thermal-WAS-AD, respectively.
机译:甲烷污泥消化在衰减和卫生中起着枢轴作用,致力于大规模生产的废物活性污泥(是),其主要由微生物细胞和细胞外聚合物物质(EPS)组成。有效的污泥消化需要各种功能活跃的微生物,将污泥有机物转化为沼气中的污泥有机物。尽管如此,主要污泥成分(即微生物细胞和EPS)和相关的功能活性微生物中的消化效率(或定量为碳去除效率)的消化效率(或作为碳去除效率)的污泥消化器中的相关功能活性微生物仍然难以捉摸。在这项研究中,我们通过使用大肠杆菌(例如COLⅠ)-FED消化和微生物源跟踪来确定污泥微生物细胞和相关功能活性微生物的消化率。用新鲜喂养的四种消化器中的平均碳除去(均为Ad),热预处理是(热 - Ad),大肠杆菌细胞(E.coli-Ad)和热预处理大肠杆菌细胞(热-e .Coli-AD)分别为30.6±3.4%,45.8±2.9%,分别为69.0±3.4%和68.9±4.6%。与IS-AD和热量广告相比,大肠杆菌广告和热-E中的显着更高的碳去除去。 Coli-AD表明微生物细胞的显着较高的消化率,而不是EPS,从EPS释放有机物可能是污泥消化的速率限制步骤。用于微生物细胞消化的功能活性微生物主要包括发酵罐(例如,Petrimonas和LentimiCrobium),同步醋(例如,Synergistaceae)和甲烷(例如,甲烷烯段和甲蛋白酶)。微生物源跟踪估计表明,微生物细胞消化群体分别占IS-AD和热/ ad-AD的总微生物群体的35.6±9.1%和70.3±10.1%。因此,用于消化微生物细胞和EPS的功能活性微生物分别占POS-AD和热均广告中的总消化污泥微生物组的64.5±12.1%和97.3±2.0%。相比之下,饲料衍生的微生物分别占IS-AD和热碱度广告中总微生物群落的23.2±4.4%和2.3±1.2%。

著录项

  • 来源
    《Environmental research》 |2021年第2期|110539.1-110539.11|共11页
  • 作者单位

    Environmental Microbiomics Research Center School of Environmental Science and Engineering Guangdong Provincial Key Laboratory of Environmental Pollution Control and Remediation Technology Southern Marine Science and Engineering Guangdong Laboratory (Zhuhaⅰ) Sun Yat-Sen University Guangzhou 510275 China;

    Environmental Microbiomics Research Center School of Environmental Science and Engineering Guangdong Provincial Key Laboratory of Environmental Pollution Control and Remediation Technology Southern Marine Science and Engineering Guangdong Laboratory (Zhuhaⅰ) Sun Yat-Sen University Guangzhou 510275 China;

    Environmental Microbiomics Research Center School of Environmental Science and Engineering Guangdong Provincial Key Laboratory of Environmental Pollution Control and Remediation Technology Southern Marine Science and Engineering Guangdong Laboratory (Zhuhaⅰ) Sun Yat-Sen University Guangzhou 510275 China Graduate School for Integrative Science and Engineering National University of Singapore Singapore 117 456;

    Environmental Microbiomics Research Center School of Environmental Science and Engineering Guangdong Provincial Key Laboratory of Environmental Pollution Control and Remediation Technology Southern Marine Science and Engineering Guangdong Laboratory (Zhuhaⅰ) Sun Yat-Sen University Guangzhou 510275 China;

    Environmental Microbiomics Research Center School of Environmental Science and Engineering Guangdong Provincial Key Laboratory of Environmental Pollution Control and Remediation Technology Southern Marine Science and Engineering Guangdong Laboratory (Zhuhaⅰ) Sun Yat-Sen University Guangzhou 510275 China;

    Beijing Key Laboratory of Bio-inspired Energy Materials and Devices School of Space & Environment Beihang University Beijing 100191 China;

    Environmental Microbiomics Research Center School of Environmental Science and Engineering Guangdong Provincial Key Laboratory of Environmental Pollution Control and Remediation Technology Southern Marine Science and Engineering Guangdong Laboratory (Zhuhaⅰ) Sun Yat-Sen University Guangzhou 510275 China;

    Environmental Microbiomics Research Center School of Environmental Science and Engineering Guangdong Provincial Key Laboratory of Environmental Pollution Control and Remediation Technology Southern Marine Science and Engineering Guangdong Laboratory (Zhuhaⅰ) Sun Yat-Sen University Guangzhou 510275 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Digestion sludge microbiome; Functionally active microorganisms; Sludge digestibility; Microbial network; Microbial source tracking;

    机译:消化污泥微生物组;功能性活跃的微生物;污泥消化率;微生物网络;微生物源跟踪;

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