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Authordc.contributor.authorBobadilla Fazzini, Roberto Andrés 
Authordc.contributor.authorCortés Burgos, María Paz es_CL
Authordc.contributor.authorPadilla, Leandro es_CL
Authordc.contributor.authorMaturana, Daniel es_CL
Authordc.contributor.authorBudinich Abarca, Marko es_CL
Authordc.contributor.authorMaass Sepúlveda, Alejandro es_CL
Authordc.contributor.authorParada, Pilar es_CL
Admission datedc.date.accessioned2014-02-12T20:41:50Z
Available datedc.date.available2014-02-12T20:41:50Z
Publication datedc.date.issued2013
Cita de ítemdc.identifier.citationBiotechnology and Bioengineering, Vol. 110, No. 8, August, 2013en_US
Identifierdc.identifier.otherDOI 10.1002/bit.24875
Identifierdc.identifier.urihttps://repositorio.uchile.cl/handle/2250/126396
General notedc.descriptionArtículo de publicación ISIen_US
Abstractdc.description.abstractThe prokaryotic oxidation of reduced inorganic sulfur compounds (RISCs) is a topic of utmost importance from a biogeochemical and industrial perspective. Despite sulfur oxidizing bacterial activity is largely known, no quantitative approaches to biological RISCs oxidation have been made, gathering all the complex abiotic and enzymatic stoichiometry involved. Even though in the case of neutrophilic bacteria such as Paracoccus and Beggiatoa species the RISCs oxidation systems are well described, there is a lack of knowledge for acidophilic microorganisms. Here, we present the first experimentally validated stoichiometric model able to assess RISCs oxidation quantitatively in Acidithiobacillus thiooxidans (strain DSM 17318), the archetype of the sulfur oxidizing acidophilic chemolithoautotrophs. This model was built based on literature and genomic analysis, considering a widespread mix of formerly proposed RISCs oxidation models combined and evaluated experimentally. Thiosulfate partial oxidation by the Sox system (SoxABXYZ) was placed as central step of sulfur oxidation model, along with abiotic reactions. This model was coupled with a detailed stoichiometry of biomass production, providing accurate bacterial growth predictions. In silico deletion/inactivation highlights the role of sulfur dioxygenase as the main catalyzer and a moderate function of tetrathionate hydrolase in elemental sulfur catabolism, demonstrating that this model constitutes an advanced instrument for the optimization of At. thiooxidans biomass production with potential use in biohydrometallurgical and environmental applications.en_US
Lenguagedc.language.isoenen_US
Publisherdc.publisherWiley Periodicalsen_US
Type of licensedc.rightsAttribution-NonCommercial-NoDerivs 3.0 Chile*
Link to Licensedc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/3.0/cl/*
Keywordsdc.subjectAt. thiooxidansen_US
Títulodc.titleStoichiometric Modeling of Oxidation of Reduced Inorganic Sulfur Compounds (Riscs) in Acidithiobacillus thiooxidansen_US
Document typedc.typeArtículo de revista


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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