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反硝化生物膜反应器中苯的降解:活性与微生物群落组成

Benzene degradation in a denitrifying biofilm reactor: activity and microbial community composition.

作者信息

van der Waals Marcelle J, Atashgahi Siavash, da Rocha Ulisses Nunes, van der Zaan Bas M, Smidt Hauke, Gerritse Jan

机构信息

Deltares, Subsurface and Groundwater Systems, Princetonlaan 6, 3584 CB, Utrecht, The Netherlands.

Wageningen University & Research, Laboratory of Microbiology, Stippeneng 4, 6708 WE, Wageningen, The Netherlands.

出版信息

Appl Microbiol Biotechnol. 2017 Jun;101(12):5175-5188. doi: 10.1007/s00253-017-8214-8. Epub 2017 Mar 20.

Abstract

Benzene is an aromatic compound and harmful for the environment. Biodegradation of benzene can reduce the toxicological risk after accidental or controlled release of this chemical in the environment. In this study, we further characterized an anaerobic continuous biofilm culture grown for more than 14 years on benzene with nitrate as electron acceptor. We determined steady state degradation rates, microbial community composition dynamics in the biofilm, and the initial anaerobic benzene degradation reactions. Benzene was degraded at a rate of 0.15 μmol/mg protein/day and a first-order rate constant of 3.04/day which was fourfold higher than rates reported previously. Bacteria belonging to the Peptococcaceae were found to play an important role in this anaerobic benzene-degrading biofilm culture, but also members of the Anaerolineaceae were predicted to be involved in benzene degradation or benzene metabolite degradation based on Illumina MiSeq analysis of 16S ribosomal RNA genes. Biomass retention in the reactor using a filtration finger resulted in reduction of benzene degradation capacity. Detection of the benzene carboxylase encoding gene, abcA, and benzoic acid in the culture vessel indicated that benzene degradation proceeds through an initial carboxylation step.

摘要

苯是一种芳香族化合物,对环境有害。苯的生物降解可以降低该化学物质在环境中意外或受控释放后的毒理学风险。在本研究中,我们进一步对以硝酸盐作为电子受体、在苯上生长了14年以上的厌氧连续生物膜培养物进行了表征。我们测定了稳态降解速率、生物膜中微生物群落组成动态以及初始厌氧苯降解反应。苯的降解速率为0.15 μmol/mg蛋白质/天,一级速率常数为3.04/天,这比之前报道的速率高出四倍。基于对16S核糖体RNA基因的Illumina MiSeq分析,发现属于消化球菌科的细菌在这种厌氧苯降解生物膜培养中起重要作用,但厌氧绳菌科的成员也被预测参与苯降解或苯代谢物降解。使用过滤指状器的反应器中生物量的保留导致苯降解能力下降。在培养容器中检测到苯羧化酶编码基因abcA和苯甲酸,表明苯降解通过初始羧化步骤进行。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/67c0/5486827/34a8363cc90a/253_2017_8214_Fig1_HTML.jpg

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