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多尺度分析食品废物厌氧消化中的泡沫形成机制:从理化参数、微生物群落到代谢物响应。

Multi-scale analysis of the foaming mechanism in anaerobic digestion of food waste: From physicochemical parameter, microbial community to metabolite response.

机构信息

Key Laboratory of Three Gorges Reservoir Region's Eco-Environment, Ministry of Education, Chongqing University, Chongqing, 400045, China.

Key Laboratory of Three Gorges Reservoir Region's Eco-Environment, Ministry of Education, Chongqing University, Chongqing, 400045, China.

出版信息

Water Res. 2022 Jun 30;218:118482. doi: 10.1016/j.watres.2022.118482. Epub 2022 Apr 21.

DOI:10.1016/j.watres.2022.118482
PMID:35489148
Abstract

Foaming is a key issue that threatens the efficient and stable operation of the anaerobic digestion process. This study introduced three disturbances to induce foaming and explored the responses of physicochemical parameters, microbial communities, and metabolites to reveal the foaming mechanism. Under the three disturbance conditions, extracellular polymeric substances (EPS)-related parameters are significantly positively correlated with foam height, and EPS may cause foam by lowering the surface tension. Microorganisms that are more tolerant to high acid or high ammonia stress environments were identified after foaming, and they could resist the stress environment by producing more EPS. The up-regulated expression of sphingomyelin or ceramide was discovered after foaming, involved in the signal molecular transduction process of cell apoptosis or necrosis, which might be related to EPS production. Pantothenic acid involved in pantothenate and CoA biosynthesis pathways was down-regulated expression after foaming, which might be related to the hindered degradation of EPS. The response of multi-scale parameters in the foaming process shows that EPS is the key factor in foaming events.

摘要

泡沫问题是威胁厌氧消化工艺高效稳定运行的关键因素。本研究通过引入三种干扰因素来诱发泡沫,并探讨了理化参数、微生物群落和代谢物的响应,以揭示其起泡机制。在三种干扰条件下,与细胞外聚合物(EPS)相关的参数与泡沫高度呈显著正相关,EPS 可能通过降低表面张力引起泡沫。在起泡后,鉴定出对高酸或高氨胁迫环境更耐受的微生物,它们可以通过产生更多的 EPS 来抵抗胁迫环境。发现起泡后鞘磷脂或神经酰胺的上调表达,参与细胞凋亡或坏死的信号分子转导过程,这可能与 EPS 的产生有关。泛酸参与泛酸和辅酶 A 生物合成途径的下调表达,这可能与 EPS 降解受阻有关。起泡过程中多尺度参数的响应表明,EPS 是起泡事件的关键因素。

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