Phenotypic and resistome analysis of antibiotic and heavy metal resistance in the Antarctic bacterium Pseudomonas sp. AU10

被引:0
作者
César X. García-Laviña
María A. Morel
Gabriela García-Gabarrot
Susana Castro-Sowinski
机构
[1] Universidad de la República,Sección Bioquímica, Facultad de Ciencias
[2] Universidad de la República,Laboratorio de Microbiología de Suelos, Facultad de Ciencias
[3] Instituto de Investigaciones Biológicas Clemente Estable (IIBCE),Laboratorio de Microbiología Molecular, Departamento BIOGEM
[4] Ministerio de Salud Pública,Departamento de Laboratorios
来源
Brazilian Journal of Microbiology | 2023年 / 54卷
关键词
Antarctica; Genome analysis; Heavy metal resistance; Antibiotic resistance;
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学科分类号
摘要
Resistance to antibiotics and heavy metals in Antarctic bacteria has been investigated due to anthropogenic impact on the continent. However, there is still much to learn about the genetic determinants of resistance in native bacteria. In this study, we investigated antibiotic, heavy metal, and metalloid resistance in Pseudomonas sp. AU10, isolated from King George Island (Antarctica), and analyzed its genome to look for all the associated genetic determinants (resistome). We found that AU10 displayed resistance to Cr(VI), Cu(II), Mn(II), Fe(II), and As(V), and produced an exopolysaccharide with high Cr(VI)-biosorption capacity. Additionaly, the strain showed resistance to aminopenicillins, cefotaxime, aztreonam, azithromycin, and intermediate resistance to chloramphenicol. Regarding the resistome, we did not find resistance genes in AU10’s natural plasmid or in a prophage context. Only a copper resistance cluster indicated possible horizontal acquisition. The mechanisms of resistance found were mostly efflux systems, several sequestering proteins, and a few enzymes, such as an AmpC β-lactamase or a chromate reductase, which would account for the observed phenotypic profile. In contrast, the presence of a few gene clusters, including the terZABCDE operon for tellurite resistance, did not correlate with the expected phenotype. Despite the observed resistance to multiple antibiotics and heavy metals, the lack of resistance genes within evident mobile genetic elements is suggestive of the preserved nature of AU10’s Antarctic habitat. As Pseudomonas species are good bioindicators of human impact in Antarctic environments, we consider that our results could help refine surveillance studies based on monitoring resistances and associated resistomes in these populations.
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页码:2903 / 2913
页数:10
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