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dc.contributor.author Figueroa, M
dc.contributor.author Fernandez, V
dc.contributor.author Arenas-Salinas, M
dc.contributor.author Ahumada, D
dc.contributor.author Muñoz-Villagrán, C
dc.contributor.author Cornejo, F
dc.contributor.author Vargas, E
dc.contributor.author Latorre, M
dc.contributor.author Morales, E
dc.contributor.author Vásquez, C
dc.contributor.author Arenas, F
dc.date.accessioned 2024-01-17T15:55:52Z
dc.date.available 2024-01-17T15:55:52Z
dc.date.issued 2018
dc.identifier.uri https://repositorio.uoh.cl/handle/611/885
dc.description.abstract Microbes are suitable candidates to recover and decontaminate different environments from soluble metal ions, either via reduction or precipitation to generate insoluble, non-toxic derivatives. In general, microorganisms reduce toxic metal ions generating nanostructures (NS), which display great applicability in biotechnological processes. Since the molecular bases of bacterial reduction are still unknown, the search for new -environmentally safe and less expensive-methods to synthesize NS have made biological systems attractive candidates. Here, 47 microorganisms isolated from a number of environmental samples were analyzed for their tolerance or sensitivity to 19 metal(loid)s. Ten of them were highly tolerant to some of them and were assessed for their ability to reduce these toxicants in vitro. All isolates were analyzed by 16S rRNA gene sequencing, fatty acids composition, biochemical tests and electron microscopy. Results showed that they belong to the Enterobacter, Staphylococcus, Acinetobacter, and Exiguobacterium genera. Most strains displayed metal(loid)-reducing activity using either NADH or NADPH as cofactor. While Acinetobacter schindleri showed the highest tellurite (TeO32-) and tetrachloro aurate (AuCl4-) reducing activity, Staphylococcus sciuri and Exiguobacterium acetylicum exhibited selenite (SeO32-) and silver (Ag+) reducing activity, respectively. Based on these results, we used these bacteria to synthetize, in vivo and in vitro Te, Se, Au, and Ag-containing nanostructures. On the other hand, we also used purified E. cloacae glutathione reductase to synthesize in vitro Te-, Ag-, and Se-containing NS, whose morphology, size, composition, and chemical composition were evaluated. Finally, we assessed the putative anti-bacterial activity exhibited by the in vitro synthesized NS: Te-containing NS were more effective than Au-NS in inhibiting Escherichia coli and Listeria monocytogenes growth. Aerobically synthesized TeNS using MF09 crude extracts showed MICs of 45- and 66-mu g/ml for E. coli and L. monocytogenes, respectively. Similar MIC values (40 and 82 mu g/ml, respectively) were observed for TeNS generated using crude extracts from gorA-overexpressing E. coli. In turn, AuNS MICs for E. coli and L. monocytogenes were 64- and 68-mu g/ml, respectively.
dc.description.sponsorship FONDECYT (Fondo Nacional de Ciencia y Tecnologia)(Comision Nacional de Investigacion Cientifica y Tecnologica (CONICYT)CONICYT FONDECYT)
dc.description.sponsorship DICYT (Direccion de Investigacion en Ciencia y Tecnologia, Universidad de Santiago de Chile), Basal
dc.description.sponsorship Universidad de Talca (Fondo De Proyectos De Investigacion Para Investigadores Iniciales)
dc.relation.uri http://dx.doi.org/10.3389/fmicb.2018.00959
dc.subject metal
dc.subject metalloid
dc.subject reduction
dc.subject resistance
dc.subject environmental bacteria
dc.subject flavoprotein
dc.subject nanostructure
dc.subject bioremediatio
dc.title Synthesis and Antibacterial Activity of Metal(loid) Nanostructures by Environmental Multi-Metal(loid) Resistant Bacteria and Metal(loid)-Reducing Flavoproteins
dc.type Artículo
uoh.revista FRONTIERS IN MICROBIOLOGY
dc.identifier.doi 10.3389/fmicb.2018.00959
dc.citation.volume 9
dc.identifier.orcid Cornejo, Fabian/0000-0002-6633-392X
uoh.indizacion Web of Science


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