Combining metabolic engineering and biocompatible chemistry for high-yield production of homo-diacetyl and homo-(S,S)-2,3-butanediol.
暂无分享,去创建一个
Peter Ruhdal Jensen | Christian Solem | Jun Chen | Siu Hung Joshua Chan | S. Lee | P. R. Jensen | S. H. Chan | Jun Chen | Jianming Liu | C. Solem | Jianming Liu | Theis Brock-Nannestad | Sang Yup Lee | T. Brock‐Nannestad
[1] G. Fitzgerald,et al. Identification of the Minimal Replicon of Lactococcus lactis subsp. lactis UC317 Plasmid pCI305 , 1990, Applied and environmental microbiology.
[2] E. Defoor,et al. Plasmid pCS1966, a New Selection/Counterselection Tool for Lactic Acid Bacterium Strain Construction Based on the oroP Gene, Encoding an Orotate Transporter from Lactococcus lactis , 2008, Applied and Environmental Microbiology.
[3] J. Howland. Short protocols in molecular biology, third edition: Edited by F Ausubel, R Brent, R E Kingston, D D Moore, J G Seidman, J A Smith and K Struhl. P 836. John Wiley & Sons, New York. 1995. $74.95. ISBN 0‐471‐13781‐2 , 1996, Biochemical Education.
[4] R. Mahadevan,et al. The effects of alternate optimal solutions in constraint-based genome-scale metabolic models. , 2003, Metabolic engineering.
[5] P. Gaudu,et al. Multiple control of the acetate pathway in Lactococcus lactis under aeration by catabolite repression and metabolites , 2009, Applied Microbiology and Biotechnology.
[6] T. Guo,et al. Fine Tuning of the Lactate and Diacetyl Production through Promoter Engineering in Lactococcus lactis , 2012, PloS one.
[7] P. Renault,et al. Effect of ilvBN-encoded α-acetolactate synthase expression on diacetyl production in Lactococcus lactis , 1996, Applied Microbiology and Biotechnology.
[8] L. Blank,et al. Increased biomass yield of Lactococcus lactis during energetically limited growth and respiratory conditions , 2008, Biotechnology and applied biochemistry.
[9] I. Nes,et al. High-Frequency Transformation, by Electroporation, of Lactococcus lactis subsp. cremoris Grown with Glycine in Osmotically Stabilized Media , 1989, Applied and environmental microbiology.
[10] W. M. Vos,et al. Protein costs do not explain evolution of metabolic strategies and regulation of ribosomal content: does protein investment explain an anaerobic bacterial Crabtree effect? , 2015, Molecular microbiology.
[11] Huimin Zhao,et al. Metabolic engineering of a Saccharomyces cerevisiae strain capable of simultaneously utilizing glucose and galactose to produce enantiopure (2R,3R)-butanediol. , 2014, Metabolic engineering.
[12] Morten H. H. Nørholm,et al. A mutant Pfu DNA polymerase designed for advanced uracil-excision DNA engineering , 2010, BMC biotechnology.
[13] J. Villadsen,et al. Metabolic Behavior of Lactococcus lactis MG1363 in Microaerobic Continuous Cultivation at a Low Dilution Rate , 2001, Applied and Environmental Microbiology.
[14] Lolke Sijtsma,et al. Genome-scale metabolic model for Lactococcus lactis MG1363 and its application to the analysis of flavor formation , 2013, Applied Microbiology and Biotechnology.
[15] Ping Xu,et al. Metabolic engineering of Escherichia coli for production of (2S,3S)-butane-2,3-diol from glucose , 2015, Biotechnology for Biofuels.
[16] E. Balskus,et al. A biocompatible alkene hydrogenation merges organic synthesis with microbial metabolism. , 2014, Angewandte Chemie.
[17] B. Palsson,et al. Stoichiometric flux balance models quantitatively predict growth and metabolic by-product secretion in wild-type Escherichia coli W3110 , 1994, Applied and environmental microbiology.
[18] D. Lechardeur,et al. Aerobic respiration metabolism in lactic acid bacteria and uses in biotechnology. , 2012, Annual review of food science and technology.
[19] T. Ohtsuki,et al. Stereochemical applications of the expression of the L‐2,3‐butanediol dehydrogenase gene in Escherichia coli , 2001, Letters in applied microbiology.
[20] E. Balskus,et al. Using non-enzymatic chemistry to influence microbial metabolism. , 2015, Current opinion in chemical biology.
[21] A. Gruss,et al. Impact of Aeration and Heme-Activated Respiration on Lactococcus lactis Gene Expression: Identification of a Heme-Responsive Operon , 2008, Journal of bacteriology.
[22] Cuiqing Ma,et al. Biocatalytic production of (2S,3S)-2,3-butanediol from diacetyl using whole cells of engineered Escherichia coli. , 2012, Bioresource technology.
[23] Cuiqing Ma,et al. Systematic metabolic engineering of Escherichia coli for high-yield production of fuel bio-chemical 2,3-butanediol. , 2014, Metabolic engineering.
[24] V. Crow. Properties of 2,3-Butanediol Dehydrogenases from Lactococcus lactis subsp. lactis in Relation to Citrate Fermentation , 1990, Applied and environmental microbiology.
[25] K. I. Sørensen,et al. Getting high (OD) on heme , 2006, Nature Reviews Microbiology.
[26] Pascal Hols,et al. Conversion of Lactococcus lactis from homolactic to homoalanine fermentation through metabolic engineering , 1999, Nature Biotechnology.
[27] W. W. Westerfeld. A colorimetric determination of blood acetoin. , 1945 .
[28] M. Kleerebezem,et al. Lactococcus lactis as a Cell Factory for High-Level Diacetyl Production , 2000, Applied and Environmental Microbiology.
[29] D. Lechardeur,et al. Two Coregulated Efflux Transporters Modulate Intracellular Heme and Protoporphyrin IX Availability in Streptococcus agalactiae , 2010, PLoS pathogens.
[30] J. Hahn,et al. Efficient production of 2,3-butanediol in Saccharomyces cerevisiae by eliminating ethanol and glycerol production and redox rebalancing. , 2015, Metabolic engineering.
[31] J. Hugenholtz. The lactic acid bacterium as a cell factory for food ingredient production , 2008 .
[32] Peter Ruhdal Jensen,et al. Modulation of Gene Expression Made Easy , 2002, Applied and Environmental Microbiology.
[33] Cuiqing Ma,et al. Metabolic engineering of Enterobacter cloacae for high-yield production of enantiopure (2R,3R)-2,3-butanediol from lignocellulose-derived sugars. , 2015, Metabolic engineering.
[34] S. Varghese,et al. Manganese import is a key element of the OxyR response to hydrogen peroxide in Escherichia coli , 2009, Molecular microbiology.
[35] P. R. Jensen,et al. Rewiring Lactococcus lactis for Ethanol Production , 2013, Applied and Environmental Microbiology.
[36] Jeong Wook Lee,et al. Systems metabolic engineering of microorganisms for natural and non-natural chemicals. , 2012, Nature chemical biology.
[37] Tamotsu Hoshino,et al. Establishment of a novel gene expression method, BICES (biomass-inducible chromosome-based expression system), and its application to the production of 2,3-butanediol and acetoin. , 2014, Metabolic engineering.
[38] P. Ouyang,et al. Microbial 2,3-butanediol production: a state-of-the-art review. , 2011, Biotechnology advances.
[39] T. Ohtsuki,et al. Production of l‐2,3‐butanediol by a new pathway constructed in Escherichia coli , 2004, Letters in applied microbiology.
[40] P. K. Ajikumar,et al. The future of metabolic engineering and synthetic biology: towards a systematic practice. , 2012, Metabolic engineering.
[41] Nan Xu,et al. Metabolic Engineering of Candida glabrata for Diacetyl Production , 2014, PloS one.
[42] G. Corrieu,et al. Diacetyl and α-Acetolactate Overproduction byLactococcus lactis subsp. lactis Biovar Diacetylactis Mutants That Are Deficient in α-Acetolactate Decarboxylase and Have a Low Lactate Dehydrogenase Activity , 2000, Applied and Environmental Microbiology.
[43] J. Keasling,et al. Synthesis: A constructive debate , 2012, Nature.
[44] Bas Teusink,et al. Modelling strategies for the industrial exploitation of lactic acid bacteria , 2006, Nature Reviews Microbiology.
[45] W. Sandine,et al. Improved Medium for Lactic Streptococci and Their Bacteriophages , 1975, Applied microbiology.
[46] J. Sambrook,et al. Molecular Cloning: A Laboratory Manual , 2001 .
[47] D. Lechardeur,et al. Discovery of Intracellular Heme-binding Protein HrtR, Which Controls Heme Efflux by the Conserved HrtB-HrtA Transporter in Lactococcus lactis* , 2011, The Journal of Biological Chemistry.
[48] F. Dean Toste,et al. Integration of chemical catalysis with extractive fermentation to produce fuels , 2012, Nature.
[49] L. Blank,et al. Hemin Reconstitutes Proton Extrusion in an H+-ATPase-Negative Mutant ofLactococcus lactis , 2001, Journal of bacteriology.
[50] E. Maguin,et al. Construction of food-grade mutants of lactic acid bacteria , 1996 .
[51] C. Monnet,et al. A new method for the determination of 2-acetolactate in dairy products , 1997 .
[52] Cuiqing Ma,et al. Production of diacetyl by metabolically engineered Enterobacter cloacae , 2015, Scientific Reports.
[53] Keith Dudley. Short protocols in molecular biology , 1990 .
[54] A. Sijpesteijn. Induction of cytochrome formation and stimulation of oxidative dissimilation by hemin inStreptococcus lactis andLeuconostoc mesenteroides , 2005, Antonie van Leeuwenhoek.
[55] Kathleen A. Curran,et al. Expanding the chemical palate of cells by combining systems biology and metabolic engineering. , 2012, Metabolic engineering.
[56] Stephen Wallace,et al. Interfacing microbial styrene production with a biocompatible cyclopropanation reaction. , 2015, Angewandte Chemie.
[57] Y. Le Loir,et al. Respiration Capacity of the Fermenting BacteriumLactococcus lactis and Its Positive Effects on Growth and Survival , 2001, Journal of bacteriology.
[58] M. Gasson,et al. Plasmid complements of Streptococcus lactis NCDO 712 and other lactic streptococci after protoplast-induced curing , 1983, Journal of bacteriology.