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厌氧消化微生物群落应对酚抑制的变化:迈向早期预警微生物指标?

Community shifts within anaerobic digestion microbiota facing phenol inhibition: Towards early warning microbial indicators?

机构信息

Irstea, Hydrosystems and Bioprocesses Research Unit, 1 rue Pierre-Gilles de Gennes, F-92761 Antony, France.

出版信息

Water Res. 2016 Sep 1;100:296-305. doi: 10.1016/j.watres.2016.05.041. Epub 2016 May 13.

Abstract

Performance stability is a key operational issue for anaerobic digestion (AD) and phenolic compounds are regularly mentioned as a major cause of digester failures. To get more insights into AD microbiota response to a wide range of inhibition levels, anaerobic batch toxicity assays were conducted with ten phenol concentrations up to 5.00 g/L. Final AD performance was not impaired up to 1.00 g/L. However, progressive shifts in microbial community structure were detected from 0.50 g/L. The methanogenic function was maintained along with increasing initial phenol concentrations up to 2.00 g/L thanks to the emergence of genus Methanoculleus at the expense of Methanosarcina. Within syntrophic populations, family Syntrophomonadaceae proportion was gradually reduced by phenol while Synergistaceae gained in importance in the microbiome. Moreover, at 2.00 g/L, the relative abundance of families belonging to order Clostridiales dropped, leading to the predominance of populations assigned to order Bacteroidales even though it did not prevent final AD performance deterioration. It illustrates the high level of adaptability of archaeal and bacterial communities and suggests the possibility of determining early warning microbial indicators associated with phenol inhibition.

摘要

性能稳定性是厌氧消化(AD)的一个关键运行问题,酚类化合物经常被认为是导致消化器故障的主要原因。为了更深入地了解 AD 微生物群落对广泛抑制水平的反应,进行了十批厌氧批毒性试验,酚浓度高达 5.00 g/L。最终 AD 性能在 1.00 g/L 以下不受影响。然而,从 0.50 g/L 开始,检测到微生物群落结构的渐进性变化。由于产甲烷菌属 Methanoculleus 的出现,甲烷生成功能在初始酚浓度增加到 2.00 g/L 时得以维持,而 Methanosarcina 则减少。在共培养种群中,随着酚浓度的增加,Syntrophomonadaceae 家族的比例逐渐减少,而 Synergistaceae 在微生物组中的重要性增加。此外,在 2.00 g/L 时,属于梭菌目(Clostridiales)的家族的相对丰度下降,导致种群优势被归属于拟杆菌目(Bacteroidales),尽管这并不能阻止最终 AD 性能的恶化。这说明了古菌和细菌群落的高度适应性,并表明有可能确定与酚类抑制相关的早期预警微生物指标。

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