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Adaptation of Rhizosphere Microbial Communities to Continuous Exposure to Multiple Residual Antibiotics in Vegetable Farms

Dados Bibliográficos

ID15515166
AutoresJincai Qiu (Fuzhou University), Yongshan Chen (0000-0002-8921-4771, Quanzhou Normal University, autor correspondente), Ying Feng (0009-0006-7838-3103, Quanzhou Normal University), Xiaofeng Li (0000-0002-0490-1717, Quanzhou Normal University), Jinghua Xu (0000-0002-1393-5388, Quanzhou Normal University), Jinping Jiang (Guilin University of Technology)
Ano2023
Volume20
Fascículo4
Páginas3137-3137
Data de publicação2023-02-10
Peer ReviewedSim
Open AccessSim
TipoARTICLE
PeriódicoInternational Journal of Environmental Research and Public Health (JOURNAL)
Identificadores do periódicoISSN: 1661-7827 • E-ISSN: 1660-4601
EditoraMultidisciplinary Digital Publishing Institute (PUBLISHER • CH)
DOI10.3390/ijerph20043137
PMID36833828
OpenAlexW4320494144
IdiomaEN
Referências citadas1

The constant application of manure-based fertilizers in vegetable farms leads to antibiotic residue accumulation in soils, which has become a major stressor affecting agroecosystem stability. The present study investigated the adaptation profiles of rhizosphere microbial communities in different vegetable farms to multiple residual antibiotics. Multiple antibiotics, including trimethoprim, sulfonamides, quinolones, tetracyclines, macrolides, lincomycins, and chloramphenicols, were detected in the vegetable farms; the dominant antibiotic (trimethoprim) had a maximum concentration of 36.7 ng/g. Quinolones and tetracyclines were the most prevalent antibiotics in the vegetable farms. The five most abundant phyla in soil samples were Proteobacteria , Actinobacteria , Acidobacteria , Chloroflexi and Firmicutes , while the five most abundant phyla in root samples were Proteobacteria , Actinobacteria , Bacteroidetes , Firmicutes and Myxococcota . Macrolides were significantly correlated with microbial community composition changes in soil samples, while sulfonamides were significantly correlated with microbial community composition changes in root samples. Soil properties (total carbon and nitrogen contents and pH) influenced the shifts in microbial communities in rhizosphere soils and roots. This study provides evidence that low residual antibiotic levels in vegetable farms can shift microbial community structures, potentially affecting agroecosystem stability. However, the degree to which the shift occurs could be regulated by environmental factors, such as soil nutrient conditions

Acidobacteria · Actinobacteria · Agriculture · Agroecosystem · Agronomy · Bacteria · Bacteroidetes · Biology · Firmicutes · Gemmatimonadetes · Microbial population biology · Proteobacteria · Rhizosphere · Legume Nitrogen Fixing Symbiosis · Nematode management and characterization studies · Pharmaceutical and Antibiotic Environmental Impacts · Ecology

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