| Literature DB >> 35366451 |
Jinyu Hou1, Yun Zhang1, Xianghua Wu2, Linmeng Liu3, Yucheng Wu4, Wuxing Liu1, Peter Christie1.
Abstract
Zero-valent iron (ZVI) is widely used to mitigate environmental pollutants such as chlorinated pesticides through reductive reactions accompanied by extensive impacts on the soil microbial community. However, whether and how ZVI changes the biodegradation of target compounds remain poorly understood. Here, we monitor the fate of lindane using a 14C-labled tracer and evaluate the growth and functions of the bacterial community in ZVI-stressed conditions in a historically γ-hexachlorocyclohexane (lindane)-contaminated soil using a combination of isotopic (18O-H2O) and metagenomic methods. ZVI promoted the biomineralization of lindane in a dose-dependent manner. Soil bacteria were inhibited by amendment with ZVI during the initial stages of incubation (first three days) but recovered during the subsequent six weeks. Metagenomic study indicates that the todC1/bedC1 genes involved in the oxidation of dechlorinated lindane intermediates were upregulated in the 18O-labeled bacterial community but the presence of the lin genes responsible for lindane dechlorination was not confirmed. In addition, the benzoate biodegradation pathway that links to downstream catabolism of lindane was enhanced. These findings indicate successive chemical and biological degradation mechanisms underlying ZVI-enhanced lindane mineralization and provide a scientific basis for the inclusion of an extended bioremediation stage in the environmental application of ZVI materials.Entities:
Keywords: Biodegradation; DNA-SIP; Metagenomics; Microbiome; Zero-valent iron (ZVI)
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Year: 2022 PMID: 35366451 DOI: 10.1016/j.jhazmat.2022.128802
Source DB: PubMed Journal: J Hazard Mater ISSN: 0304-3894 Impact factor: 10.588