Nutrient limitation alters metabolism, CR(VI) response, and biofilm matrix composition in desulfovibrio vulgaris Hildenborough

dc.contributor.advisorChairperson, Graduate Committee: Matthew Fieldsen
dc.contributor.authorFranco, Lauren Christineen
dc.contributor.otherGrant Zane, Sadie Steinbeisser, Judy Wall and Matthew W. Fields were co-authors of the article, 'Cr(VI) reduction and physiological toxicity is impacted by resource ratio in Desulfovibrio vulgaris Hildenborough' submitted to the journal 'Applied microbiology and microbiology' which is contained within this thesis.en
dc.contributor.otherJulijana Ivanisevic, Gary Siuzdak and Matthew W. Fields were co-authors of the article, 'Nutrient limitation causes decline in metabolites important for cell cycle progression in bacterial biofilm' submitted to the journal 'Applied microbiology and microbiology' which is contained within this thesis.en
dc.contributor.otherSiva Wu, Michael Joo, Joel Mancuso, Jonathan Remis, Amita Gorur, Ambrose Leung, Danielle M. Jorgens, Joaquin Correa, Manfred Auer and Matthew W. Fields were co-authors of the article, 'Extracellular membrane structures in Desulfovibrio vulgaris Hildenborough biofilms' which is contained within this thesis.en
dc.contributor.otherChris Petzold and Matthew W. Fields were co-authors of the article, 'Outer membrane vesicles and associated proteins produced by Desulfovibrio vulgaris Hildenborough biofilms' submitted to the journal 'Applied microbiology and microbiology' which is contained within this thesis.en
dc.date.accessioned2018-05-09T19:08:50Z
dc.date.available2018-05-09T19:08:50Z
dc.date.issued2017en
dc.description.abstractSulfate-reducing bacteria (SRB) are a diverse group of anaerobic microorganisms that live in anoxic environments and play critical roles in biogechemical cycling, namely linkages between the carbon and sulfur cycles. Desulfovibrio vulgaris Hildenborough (DvH) is a model organism for SRB that has been studied for its ability to reduce toxic heavy metals to insoluble forms and its involvement in microbially induced corrosion in oil pipelines and other industrial settings. The described work investigated how the availability of electron donor/carbon sources and electron acceptors affected Cr(VI) reduction, metabolism, and biofilm growth and composition in DvH. DvH was grown planktonically at 20°C and 30°C in batch mode or as a biofilm under continuous flow at 20°C. In the second chapter of this dissertation, it is established that electron acceptorlimitation (EAL) predisposes cells to Cr(VI) toxicity compared to a balanced electron donor to electron acceptor (BAL) condition and electron donor-limited (EDL) condition. The effect of nutrient limitation on DvH biofilms is investigated, and microscopy revealed unique extracellular membranous structures that have not previously been observed. The extracellular structures were heterogeneously distributed, connected to cells, co-localized with metal precipitates, and more prevalent under EAL compared to BAL condition. Differential staining indicated that the structures were composed of lipid, consistent with the observation that these structures are membrane derived. Metabolomic analysis revealed an up-regulation of fatty acids under the EAL condition, which was confirmed and quantified via GC-MS. Down-regulated metabolites for biofilm grown under the EAL condition included those involved in DNA turnover, N-cycling, and peptidoglycan turnover, indicating that EAL may induce a switch from growth to fatty acid production that may coordinate with alternative electron transfer mechanisms. Outer membrane vesicles (OMVs) were purified from DvH biofilm and proteins detected in OMVs included porins, lipoproteins, hydrogenases, and oxidative stress response proteins. The results presented here show that nutrient limitation and resource ratio affect DvH physiology in both biofilm and planktonic growth modes. The analysis of the DvH biofilm matrix highlights the importance of investigating extracellular capabilities that are unique to the biofilm growth mode and has implications for activities and physiological states in the environment.en
dc.identifier.urihttps://scholarworks.montana.edu/handle/1/14067en
dc.language.isoenen
dc.publisherMontana State University - Bozeman, College of Letters & Scienceen
dc.rights.holderCopyright 2017 by Lauren Christine Francoen
dc.subject.lcshSulfate-reducing bacteriaen
dc.subject.lcshMetabolismen
dc.subject.lcshChromiumen
dc.subject.lcshBiofilmsen
dc.titleNutrient limitation alters metabolism, CR(VI) response, and biofilm matrix composition in desulfovibrio vulgaris Hildenboroughen
dc.typeDissertationen
mus.data.thumbpage71en
thesis.degree.committeemembersMembers, Graduate Committee: Michael Franklin; Christine Foreman; Brent M. Peyton.en
thesis.degree.departmentMicrobiology & Immunology.en
thesis.degree.genreDissertationen
thesis.degree.namePhDen
thesis.format.extentfirstpage1en
thesis.format.extentlastpage259en

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