Novel insights into the synergetic degradation of pyrene by microbial communities from mangroves in China

红树林 环境化学 基因组 微生物降解 蛋白质细菌 污染物 降级(电信) 化学 福斯密德 微生物种群生物学 生态学 生物 细菌 微生物生态学 生物地球化学循环 微生物群 古细菌 稳定同位素探测 生物多样性 生物降解 生态系统 环境科学 多环芳烃
作者
Shanshan Meng,Peng Tao,Yongjin Liu,Shan Zhang,Qian Zhi-hui,Tongwang Huang,Qingyi Xie,Ji‐Dong Gu,Zhong Hu
出处
期刊:Journal of Hazardous Materials [Elsevier]
卷期号:469: 133907-133907 被引量:11
标识
DOI:10.1016/j.jhazmat.2024.133907
摘要

Pyrene is a high molecular weight polycyclic aromatic hydrocarbon (HMW-PAHs). It is a ubiquitous, persistent, and carcinogenic environmental contaminant that has raised concern worldwide. This research explored synergistic bacterial communities for efficient pyrene degradation in seven typical Southern China mangroves. The bacterial communities of seven typical mangroves were enriched by pyrene, and enriched bacterial communities showed an excellent pyrene degradation capacity of > 95% (except for HK mangrove and ZJ mangrove). Devosia, Hyphomicrobium, Flavobacterium, Marinobacter, Algoriphahus, and Youhaiella all have significant positive correlations with pyrene (R>0, p < 0.05) by 16SrRNA gene sequencing and metagenomics analysis, indicated that these genera play a vital role in pyrene metabolism. Meanwhile, the functional genes were involved in pyrene degradation that was enriched in the bacterial communities, including the genes of nagAa, ndoR, pcaG, etc. Furthermore, the analyses of functional genes and binning genomes demonstrated that some bacterial communities as a unique teamwork to cooperatively participate in pyrene degradation. Interestingly, the genes related to biogeochemical cycles were enriched, such as narG , soxA, and cyxJ, suggested that bacterial communities were also helpful in maintaining the stability of the ecological environment. In addition, some novel species with pyrene-degradation potential were identified in the pyrene-degrading bacterial communities, which can enrich the resource pool of pyrene-degrading strains. Overall, this study will help develop further research strategies for pollutant removal.
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