Model-driven approach for the production of butyrate from CO2/H2 by a novel co-culture of C. autoethanogenum and C. beijerinckii
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V. M. D. Martins dos Santos | J. Hugenholtz | M. Suárez-Diez | Sara Benito-Vaquerizo | P. Schaap | S. Brul | A. López-Contreras | Niels Nouse
[1] Santosh Kumar,et al. Glycerol Utilization as a Sole Carbon Source Disrupts the Membrane Architecture and Solventogenesis in Clostridium beijerinckii NCIMB 8052 , 2022, Fermentation.
[2] K. Valgepea,et al. Clostridium Ljungdahlii as a Biocatalyst in Microbial Electrosynthesis – Effect of Culture Conditions on Product Formation , 2022, SSRN Electronic Journal.
[3] Byung-Kwan Cho,et al. Engineering Acetogenic Bacteria for Efficient One-Carbon Utilization , 2022, Frontiers in Microbiology.
[4] V. M. D. Martins dos Santos,et al. Genome-scale metabolic modelling enables deciphering ethanol metabolism via the acrylate pathway in the propionate-producer Anaerotignum neopropionicum , 2022, bioRxiv.
[5] J. Matias,et al. Residual Biomass: A Comprehensive Review on the Importance, Uses and Potential in a Circular Bioeconomy Approach , 2022, Resources.
[6] P. Dürre,et al. Autotrophic lactate production from H2 + CO2 using recombinant and fluorescent FAST-tagged Acetobacterium woodii strains , 2022, Applied Microbiology and Biotechnology.
[7] A. Pandey,et al. Potential utilization of dairy industries by-products and wastes through microbial processes: A critical review. , 2021, The Science of the total environment.
[8] K. Rabaey,et al. Production of microbial protein from fermented grass , 2021, Chemical Engineering Journal.
[9] A. Stams,et al. Propionate Production from Carbon Monoxide by Synthetic Cocultures of Acetobacterium wieringae and Propionigenic Bacteria , 2021, Applied and environmental microbiology.
[10] S. Kengen,et al. Sporulation in solventogenic and acetogenic clostridia , 2021, Applied Microbiology and Biotechnology.
[11] C. Maranas,et al. Modeling Growth Kinetics, Interspecies Cell Fusion, and Metabolism of a Clostridium acetobutylicum/Clostridium ljungdahlii Syntrophic Coculture , 2021, mSystems.
[12] Juan Nogales,et al. Metabolic modelling approaches for describing and engineering microbial communities , 2020, Computational and structural biotechnology journal.
[13] W. Zou,et al. Advances and Applications of Clostridium Co-culture Systems in Biotechnology , 2020, Frontiers in Microbiology.
[14] R. Quitzow,et al. Studying the Transition towards a Circular Bioeconomy—A Systematic Literature Review on Transition Studies and Existing Barriers , 2020, Sustainability.
[15] J. van der Oost,et al. Transcriptomic and Phenotypic Analysis of a spoIIE Mutant in Clostridium beijerinckii , 2020, Frontiers in Microbiology.
[16] V. Müller,et al. The Sporomusa type Nfn is a novel type of electron-bifurcating transhydrogenase that links the redox pools in acetogenic bacteria , 2020, Scientific Reports.
[17] M. Suárez-Diez,et al. Modeling a co-culture of Clostridium autoethanogenum and Clostridium kluyveri to increase syngas conversion to medium-chain fatty-acids , 2020, bioRxiv.
[18] M. Oh,et al. Two-stage bioconversion of carbon monoxide to biopolymers via formate as an intermediate , 2020 .
[19] B. Kjellerup,et al. Spoilage Lactic Acid Bacteria in the Brewing Industry , 2020, Journal of microbiology and biotechnology.
[20] A. Stams,et al. Metabolic shift induced by synthetic co-cultivation promotes high yield of chain elongated acids from syngas , 2019, Scientific Reports.
[21] Matthew A. Perisin,et al. Developing a Microbial Consortium for Enhanced Metabolite Production from Simulated Food Waste , 2019 .
[22] Joonwon Kim,et al. In silico identification of metabolic engineering strategies for improved lipid production in Yarrowia lipolytica by genome-scale metabolic modeling , 2019, Biotechnology for biofuels.
[23] Gi Bae Kim,et al. Current status and applications of genome-scale metabolic models , 2019, Genome Biology.
[24] E. Papoutsakis,et al. Direct cell-to-cell exchange of matter in a synthetic Clostridium syntrophy enables CO2 fixation, superior metabolite yields, and an expanded metabolic space. , 2019, Metabolic engineering.
[25] A. Chojnacka,et al. Cell factories converting lactate and acetate to butyrate: Clostridium butyricum and microbial communities from dark fermentation bioreactors , 2019, Microbial Cell Factories.
[26] K. Sedlář,et al. Acidogenesis, solventogenesis, metabolic stress response and life cycle changes in Clostridium beijerinckii NRRL B-598 at the transcriptomic level , 2019, Scientific Reports.
[27] L. Nielsen,et al. H2 drives metabolic rearrangements in gas-fermenting Clostridium autoethanogenum , 2018, Biotechnology for Biofuels.
[28] Dirk Weuster-Botz,et al. Bacterial Anaerobic Synthesis Gas (Syngas) and CO2+H2 Fermentation. , 2018, Advances in applied microbiology.
[29] Kaspar Valgepea,et al. Arginine deiminase pathway provides ATP and boosts growth of the gas-fermenting acetogen Clostridium autoethanogenum. , 2017, Metabolic engineering.
[30] Costas D. Maranas,et al. SteadyCom: Predicting microbial abundances while ensuring community stability , 2017, PLoS Comput. Biol..
[31] W. Kneifel,et al. Relevance and analysis of butyric acid producing clostridia in milk and cheese , 2016 .
[32] Abdul Wahab Mohammad,et al. Typical conversion of lignocellulosic biomass into reducing sugars using dilute acid hydrolysis and alkaline pretreatment , 2016, Cellulose.
[33] A. Stams,et al. Production of medium-chain fatty acids and higher alcohols by a synthetic co-culture grown on carbon monoxide or syngas , 2016, Biotechnology for Biofuels.
[34] Lake-Ee Quek,et al. Low carbon fuels and commodity chemicals from waste gases – systematic approach to understand energy metabolism in a model acetogen , 2016 .
[35] D. Day,et al. Production of butanol and isopropanol with an immobilized Clostridium , 2016, Bioprocess and Biosystems Engineering.
[36] V. Müller,et al. Bioenergetic constraints for conversion of syngas to biofuels in acetogenic bacteria , 2015, Biotechnology for Biofuels.
[37] Yong-Su Jin,et al. Integrated, systems metabolic picture of acetone-butanol-ethanol fermentation by Clostridium acetobutylicum , 2015, Proceedings of the National Academy of Sciences.
[38] H. Blanch,et al. Production of an acetone-butanol-ethanol mixture from Clostridium acetobutylicum and its conversion to high-value biofuels , 2015, Nature Protocols.
[39] Y. Richardson,et al. Biomass Gasification to Produce Syngas , 2015 .
[40] Costas D Maranas,et al. Capturing the response of Clostridium acetobutylicum to chemical stressors using a regulated genome-scale metabolic model , 2014, Biotechnology for Biofuels.
[41] F. Ibarbalz,et al. The Bias Associated with Amplicon Sequencing Does Not Affect the Quantitative Assessment of Bacterial Community Dynamics , 2014, PloS one.
[42] Wayne M Patrick,et al. Reconstruction of an Acetogenic 2,3-Butanediol Pathway Involving a Novel NADPH-Dependent Primary-Secondary Alcohol Dehydrogenase , 2014, Applied and Environmental Microbiology.
[43] F. Bruggeman,et al. Community Flux Balance Analysis for Microbial Consortia at Balanced Growth , 2013, PloS one.
[44] Joshua A. Lerman,et al. COBRApy: COnstraints-Based Reconstruction and Analysis for Python , 2013, BMC Systems Biology.
[45] Joo-Hwa Tay,et al. Biohydrogen production: Current perspectives and the way forward , 2012 .
[46] E. Papoutsakis,et al. Clostridia: the importance of their exceptional substrate and metabolite diversity for biofuel and biorefinery applications. , 2012, Current opinion in biotechnology.
[47] R. Mitchell,et al. The Future of Butyric Acid in Industry , 2012, TheScientificWorldJournal.
[48] K. Schwarz,et al. Comparative genomic analysis of the central metabolism of the solventogenic species Clostridium acetobutylicum ATCC 824 and Clostridium beijerinckii NCIMB 8052 , 2012 .
[49] G. Eggink,et al. Disruption of the acetate kinase (ack) gene of Clostridium acetobutylicum results in delayed acetate production , 2012, Applied Microbiology and Biotechnology.
[50] Yong-Su Jin,et al. Metabolic network reconstruction and genome-scale model of butanol-producing strain Clostridium beijerinckii NCIMB 8052 , 2011, BMC Systems Biology.
[51] S. Ragsdale,et al. Acetogenesis and the Wood-Ljungdahl pathway of CO(2) fixation. , 2008, Biochimica et biophysica acta.
[52] Ratna R. Sharma-Shivappa,et al. Ensiling Agricultural Residues for Bioethanol Production , 2007, Applied biochemistry and biotechnology.
[53] J. Russell,et al. The role of an NAD-independent lactate dehydrogenase and acetate in the utilization of lactate byClostridium acetobutylicum strain P262 , 1995, Archives of Microbiology.
[54] Henry Naveau,et al. Clostridium autoethanogenum, sp. nov., an anaerobic bacterium that produces ethanol from carbon monoxide , 1994, Archives of Microbiology.
[55] H. Drake,et al. Physiology of the thermophilic acetogen Moorella thermoacetica. , 2004, Research in microbiology.
[56] D. T. Jones,et al. Physical and genetic map of the Clostridium saccharobutylicum (formerly Clostridium acetobutylicum) NCP 262 chromosome. , 2001, Microbiology.
[57] H. Blaschek,et al. Effect of Acetate on Molecular and Physiological Aspects of Clostridium beijerinckii NCIMB 8052 Solvent Production and Strain Degeneration , 1999, Applied and Environmental Microbiology.
[58] A. Friedl,et al. Long-Term Continuous Cultivation of Clostridium beijerinckii in a Two-Stage Chemostat with On-Line Solvent Removal , 1996, Applied and environmental microbiology.
[59] G. Goma,et al. Autolysis of Clostridium acetobutylicum ATCC 824. , 1992, Journal of general microbiology.
[60] G. Gottschalk,et al. L(+)-lactate dehydrogenase of Clostridium acetobutylicum is activated by fructose-1,6-bisphosphate , 1987 .
[61] Frédéric Monot,et al. Acetone and Butanol Production by Clostridium acetobutylicum in a Synthetic Medium , 1982, Applied and environmental microbiology.
[62] Byung-Kwan Cho,et al. Valorization of C1 gases to value-added chemicals using acetogenic biocatalysts , 2022 .