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AuthorFlaiz, Maximiliandc.contributor.author
Date of accession2022-12-08T16:05:35Zdc.date.accessioned
Available in OPARU since2022-12-08T16:05:35Zdc.date.available
Year of creation2022dc.date.created
Date of first publication2022-12-08dc.date.issued
AbstractAnaerobic bacteria are promising biocatalysts for producing industrially relevant high-value chemicals from various non-food feedstocks. While solventogenic clostridia are excellent alcohol producers, acetogenic bacteria have the distinction of being able to utilize C1 carbon sources and can thus help reduce greenhouse gas emissions. While several anaerobes are genetically accessible, various genetic tools are not yet established. In this work, new molecular tools for anaerobes are presented. This includes the establishment of heterologous pathways to provide additional ATP and to produce the biocommodities butanol and acetone. Genes of the arginine deiminase pathway were heterologously expressed in Acetobacterium woodii to overcome energetic limitations during autotrophic growth since the conversion of arginine to ornithine, ammonia, and CO2 provides ATP and finally boosts growth of recombinant A. woodii strains. The enhanced energy supply by the arginine deiminase pathway opens the door for the establishment of new recombinant pathways that require huge amounts of ATP. In addition, the application of the fluorescence-activating and absorption-shifting tag (FAST) as oxygen-independent fluorescent reporter protein further extended the molecular toolbox of anaerobes. As it turned out, FAST is perfectly suited for the construction of fluorescent FAST-tagged fusion proteins without negatively affecting the stability and functionality of the native enzyme. Both, the bifunctional aldehyde/alcohol dehydrogenase AdhE2 and the acetoacetate decarboxylase Adc from C. acetobutylicum were FAST-tagged and respective genes expressed in Eubacterium limosum. As a result, recombinant E. limosum strains produced 0.6 mM butanol and 1.6 mM acetone from the fluid C1 carbon source methanol, while production of FAST-tagged fusion proteins was tracked regarding fluorescence intensity during growth. In addition, the orthogonal green and red fluorescence of mutated FAST versions, greenFAST and redFAST, were evaluated and used for multicolor approaches under anaerobic conditions. Hence, the co-existence and dynamics in an anaerobic microbial co-culture consisting of two engineered C. saccharoperbutylacetonicum strains producing respective fluorescent proteins were monitored. Moreover, a tightly regulated inducible two-plasmid system based on the tcdR-PtcdB promoter system of C. difficile was constructed. The orthogonal green and red fluorescence of greenFAST and redFAST was used to confirm the co-existence of both plasmids in C. saccharoperbutylacetonicum during growth at single-cell level.dc.description.abstract
Languageen_USdc.language.iso
PublisherUniversität Ulmdc.publisher
Has partBeck, M. H.; Flaiz, M.; Bengelsdorf, F. R.; Dürre, P. Induced heterologous expression of the arginine deiminase pathway promotes growth advantages in the strict anaerobe Acetobacterium woodii. Appl. Microbiol. Biotechnol. 2020, 104, 687–699. https://doi.org/10.1007/s00253-019-10248-9dc.relation.haspart
Has partFlaiz, M.; Ludwig, G.; Bengelsdorf, F. R.; Dürre, P. Production of the biocommodities butanol and acetone from methanol with fluorescent FAST-tagged proteins using metabolically engineered strains of Eubacterium limosum. Biotechnol. Biofuels 2021, 14, 117. https://doi.org/10.1186/s13068-021-01966-2dc.relation.haspart
Has partFlaiz, M.; Baur, T.; Gaibler, J.; Kröly, C.; Dürre, P. Establishment of green- and red-fluorescent reporter proteins based on the fluorescence-activating and absorption-shifting tag for use in acetogenic and solventogenic anaerobes. ACS Synth. Biol. 2022, 11, 953-967. https://doi.org/10.1021/acssynbio.1c00554dc.relation.haspart
Has partFlaiz, M.; Baur, T.; Brahner, S.; Poehlein, A.; Daniel, R.; Bengelsdorf, F. R. Caproicibacter fermentans gen. nov., sp. nov., a new caproate-producing bacterium and emended description of the genus Caproiciproducens. Int. J. Syst. Evol. Microbiol. 2020, 70, 4269–4279. https://doi.org/10.1099/ijsem.0.004283dc.relation.haspart
LicenseCC BY 4.0 Internationaldc.rights
Link to license texthttps://creativecommons.org/licenses/by/4.0/dc.rights.uri
KeywordAcetogensdc.subject
KeywordAnaerobesdc.subject
KeywordC1-substratesdc.subject
KeywordSolventogensdc.subject
KeywordFASTdc.subject
KeywordFluorescent reporter proteinsdc.subject
KeywordSynthetic co-culturesdc.subject
KeywordTwo-plasmid systemdc.subject
Dewey Decimal GroupDDC 570 / Life sciencesdc.subject.ddc
LCSHAcetonedc.subject.lcsh
LCSHButanoldc.subject.lcsh
TitleNew tools for anaerobic bacteria: metabolically engineered strains to improve energy supply, recombinant production of value-added products, and fluorescent reporter proteinsdc.title
Resource typeDissertationdc.type
Date of acceptance2022-05-17dcterms.dateAccepted
RefereeDürre, Peterdc.contributor.referee
RefereeRiedel, Christiandc.contributor.referee
DOIhttp://dx.doi.org/10.18725/OPARU-46342dc.identifier.doi
PPN1826783407dc.identifier.ppn
URNhttp://nbn-resolving.de/urn:nbn:de:bsz:289-oparu-46418-8dc.identifier.urn
GNDAcetondc.subject.gnd
GNDButanoledc.subject.gnd
FacultyFakultät für Naturwissenschaftenuulm.affiliationGeneral
InstitutionInstitut für Mikrobiologie und Biotechnologieuulm.affiliationSpecific
Grantor of degreeFakultät für Naturwissenschaftenuulm.thesisGrantor
DCMI TypeTextuulm.typeDCMI
CategoryPublikationenuulm.category
Bibliographyuulmuulm.bibliographie
Project uulmBIOMETCHEM / ERA CoBioTech Call 1: BIOMETCHEM - Methanol aus Synthesegas als Basis für eine nachhaltige Produktion von veredelten Chemikalien mittels synthetischen- und systembiologischen Lösungsansätzen; Teilprojekt Uni Ulm / BMBF / 161B0609Auulm.projectOther


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