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对菲具有极高降解效率的微生物群落HJ-SH

Microbial Consortium HJ-SH with Very High Degradation Efficiency of Phenanthrene.

作者信息

Chen Rui, Zhao Zhenhua, Xu Tao, Jia Xiaoqiang

机构信息

Department of Biochemical Engineering, School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, China.

Frontier Science Center for Synthetic Biology and Key Laboratory of Systems Bioengineering (MOE), School of Chemical Engineering and Technology, Tianjin University, Tianjin 300350, China.

出版信息

Microorganisms. 2023 Sep 23;11(10):2383. doi: 10.3390/microorganisms11102383.

Abstract

Phenanthrene (PHE) is one of the model compounds of polycyclic aromatic hydrocarbons (PAHs). In this study, a natural PHE-degrading microbial consortium, named HJ-SH, with very high degradation efficiency was isolated from soil exposed to long-term PHE contamination. The results of GC analysis showed that the consortium HJ-SH degraded 98% of 100 mg/L PHE in 3 days and 93% of 1000 mg/L PHE in 5 days, an efficiency higher than that of any other natural consortia, and even most of the engineered strains and consortia reported so far. Seven dominating strains were isolated from the microbial consortium HJ-SH, named SH-1 to SH-7, which were identified according to morphological observation and 16S rDNA sequencing as sp., sp., sp., sp., sp., sp., and sp., respectively. Among all the seven single strains, SH-4 showed the strongest PHE degradation ability, and had the biggest degradation contribution. However, it is very interesting that the microbial consortium can hold its high degradation ability only with the co-existence of all these seven single strains. Moreover, HJ-SH exhibited a very high tolerance for PHE, up to 4.5 g/L, and it can degrade some other typical organic pollutants such as biphenyl, anthracene, and n-hexadecane with the degradation ratios of 93%, 92% and 70%, respectively, under 100 mg/L initial concentration in 5 days. Then, we constructed an artificial consortium HJ-7 consisting of the seven single strains, SH-1 to SH-7. After comparing the degradation ratios, cell growth, and relative degradation rates, it was concluded that the artificial consortium HJ-7 with easier reproducibility, better application stability, and larger room for modification can largely replace the natural consortium HJ-SH. In conclusion, this research provided novel tools and new insights for the bioremediation of PHE and other typical organic pollutants using microbial consortia.

摘要

菲(PHE)是多环芳烃(PAHs)的典型化合物之一。在本研究中,从长期受PHE污染的土壤中分离出一个具有极高降解效率的天然PHE降解微生物群落,命名为HJ-SH。气相色谱分析结果表明,HJ-SH菌落在3天内降解了100 mg/L PHE的98%,在5天内降解了1000 mg/L PHE的93%,其降解效率高于任何其他天然菌群,甚至高于目前报道的大多数工程菌株和菌群。从微生物群落HJ-SH中分离出7株优势菌株,命名为SH-1至SH-7,根据形态观察和16S rDNA测序分别鉴定为 菌属、 菌属、 菌属、 菌属、 菌属、 菌属和 菌属。在所有7株单菌株中,SH-4表现出最强的PHE降解能力,且降解贡献最大。然而,非常有趣的是,只有这7株单菌株共存时,微生物群落才能保持其高降解能力。此外,HJ-SH对PHE表现出极高的耐受性,高达4.5 g/L,在初始浓度为100 mg/L的情况下,5天内它可以降解一些其他典型有机污染物,如联苯、蒽和正十六烷,降解率分别为93%、92%和70%。然后,我们构建了一个由7株单菌株SH-1至SH-7组成的人工菌群HJ-7。通过比较降解率、细胞生长和相对降解速率,得出人工菌群HJ-7具有更易重现、应用稳定性更好和更大改造空间的特点,能够在很大程度上替代天然菌群HJ-SH。总之,本研究为利用微生物群落对PHE和其他典型有机污染物进行生物修复提供了新工具和新见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/873e/10609217/588823dc4518/microorganisms-11-02383-g001.jpg

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