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Authordc.contributor.authorGran Scheuch, Alejandro Alberto 
Authordc.contributor.authorFuentes Pérez, Edwar 
Authordc.contributor.authorBravo Rodríguez, Denisse 
Authordc.contributor.authorCristobal Jimenez, Juan 
Authordc.contributor.authorPérez Donoso, José 
Admission datedc.date.accessioned2018-07-09T17:22:25Z
Available datedc.date.available2018-07-09T17:22:25Z
Publication datedc.date.issued2017
Cita de ítemdc.identifier.citationFront. Microbiol. 8:1634es_ES
Identifierdc.identifier.other10.3389/fmicb.2017.01634
Identifierdc.identifier.urihttps://repositorio.uchile.cl/handle/2250/149669
Abstractdc.description.abstractAntarctica is an attractive target for human exploration and scientific investigation, however the negative effects of human activity on this continent are long lasting and can have serious consequences on the native ecosystem. Various areas of Antarctica have been contaminated with diesel fuel, which contains harmful compounds such as heavy metals and polycyclic aromatic hydrocarbons (PAH). Bioremediation of PAHs by the activity of microorganisms is an ecological, economical, and safe decontamination approach. Since the introduction of foreign organisms into the Antarctica is prohibited, it is key to discover native bacteria that can be used for diesel bioremediation. By following the degradation of the PAH phenanthrene, we isolated 53 PAH metabolizing bacteria from diesel contaminated Antarctic soil samples, with three of these isolates exhibiting a high phenanthrene degrading capacity. In particular, the Sphingobium xenophagum D43FB isolate showed the highest phenanthrene degradation ability, generating up to 95% degradation of initial phenanthrene. D43FB can also degrade phenanthrene in the presence of its usual co-pollutant, the heavy metal cadmium, and showed the ability to grow using diesel-fuel as a sole carbon source. Microtiter plate assays and SEM analysis revealed that S. xenophagum D43FB exhibits the ability to form biofilms and can directly adhere to phenanthrene crystals. Genome sequencing analysis also revealed the presence of several genes involved in PAH degradation and heavy metal resistance in the D43FB genome. Altogether, these results demonstrate that S. xenophagum D43FB shows promising potential for its application in the bioremediation of diesel fuel contaminated-Antarctic ecosy stems.es_ES
Patrocinadordc.description.sponsorshipErika Elcira Donoso Lopez Fondecyt 1151255 INACH MT-05_13 INACH RT-25_16 UNAB DI 488-14/R AFOSR FA9550-15-1-0140 CONICYT (Comision Nacional de Investigacion Cientifica y Tecnologica)es_ES
Lenguagedc.language.isoenes_ES
Publisherdc.publisherFrontiers media SAes_ES
Type of licensedc.rightsAttribution-NonCommercial-NoDerivs 3.0 Chile*
Link to Licensedc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/3.0/cl/*
Sourcedc.sourceFrontiers in Microbiologyes_ES
Keywordsdc.subjectAntarcticaes_ES
Keywordsdc.subjectBioremediationes_ES
Keywordsdc.subjectPhenanthrenees_ES
Títulodc.titleIsolation and characterization of phenanthrene degrading bacteria from diesel fuel-contaminated antarctic soilses_ES
Document typedc.typeArtículo de revista
Catalogueruchile.catalogadortjnes_ES
Indexationuchile.indexArtículo de publicación ISIes_ES


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Attribution-NonCommercial-NoDerivs 3.0 Chile
Except where otherwise noted, this item's license is described as Attribution-NonCommercial-NoDerivs 3.0 Chile