Metabolic engineering of yeast for production of fuels and chemicals.
暂无分享,去创建一个
Jens Nielsen | Christer Larsson | J. Nielsen | J. Pronk | C. Larsson | A. V. van Maris | Antonius van Maris | Jack Pronk
[1] J. Nielsen,et al. The role of biofuels in the future energy supply , 2013 .
[2] Jens Nielsen,et al. Establishing a platform cell factory through engineering of yeast acetyl-CoA metabolism. , 2013, Metabolic engineering.
[3] E. H. Huisjes,et al. Toward pectin fermentation by Saccharomyces cerevisiae: expression of the first two steps of a bacterial pathway for D-galacturonate metabolism. , 2012, Journal of biotechnology.
[4] J. Ogawa,et al. Identification of an acetate-tolerant strain of Saccharomyces cerevisiae and characterization by gene expression analysis. , 2012, Journal of bioscience and bioengineering.
[5] Gregory Stephanopoulos,et al. Xylose isomerase overexpression along with engineering of the pentose phosphate pathway and evolutionary engineering enable rapid xylose utilization and ethanol production by Saccharomyces cerevisiae. , 2012, Metabolic engineering.
[6] Tomohisa Hasunuma,et al. Development of yeast cell factories for consolidated bioprocessing of lignocellulose to bioethanol through cell surface engineering. , 2012, Biotechnology advances.
[7] Minetaka Sugiyama,et al. Superior thermotolerance of Saccharomyces cerevisiae for efficient bioethanol fermentation can be achieved by overexpression of RSP5 ubiquitin ligase. , 2012, Biotechnology advances.
[8] J. Pronk,et al. An internal deletion in MTH1 enables growth on glucose of pyruvate-decarboxylase negative, non-fermentative Saccharomyces cerevisiae , 2012, Microbial Cell Factories.
[9] J. Ogawa,et al. Enhancement of Acetic Acid Tolerance in Saccharomyces cerevisiae by Overexpression of the HAA1 Gene, Encoding a Transcriptional Activator , 2012, Applied and Environmental Microbiology.
[10] Christian Weber,et al. Cytosolic re-localization and optimization of valine synthesis and catabolism enables inseased isobutanol production with the yeast Saccharomyces cerevisiae , 2012, Biotechnology for Biofuels.
[11] Jens Nielsen,et al. Combined metabolic engineering of precursor and co-factor supply to increase α-santalene production by Saccharomyces cerevisiae , 2012, Microbial Cell Factories.
[12] A. Majumdar,et al. Opportunities and challenges for a sustainable energy future , 2012, Nature.
[13] Jens Nielsen,et al. Profiling of Cytosolic and Peroxisomal Acetyl-CoA Metabolism in Saccharomyces cerevisiae , 2012, PloS one.
[14] Jens Nielsen,et al. Systems biology of yeast: enabling technology for development of cell factories for production of advanced biofuels. , 2012, Current opinion in biotechnology.
[15] J. Pronk,et al. Energy coupling in Saccharomyces cerevisiae: selected opportunities for metabolic engineering. , 2012, FEMS yeast research.
[16] Lee R Lynd,et al. Recent progress in consolidated bioprocessing. , 2012, Current opinion in biotechnology.
[17] Yong-Su Jin,et al. Simultaneous co-fermentation of mixed sugars: a promising strategy for producing cellulosic ethanol. , 2012, Trends in biotechnology.
[18] D. G. Gibson,et al. Methods and applications for assembling large DNA constructs. , 2012, Metabolic engineering.
[19] W. V. van Zyl,et al. The metabolic burden of cellulase expression by recombinant Saccharomyces cerevisiae Y294 in aerobic batch culture , 2012, Applied Microbiology and Biotechnology.
[20] Thorsten Subtil,et al. Competition between pentoses and glucose during uptake and catabolism in recombinant Saccharomyces cerevisiae , 2012, Biotechnology for Biofuels.
[21] Jens Nielsen,et al. Metabolic engineering of Saccharomyces cerevisiae: a key cell factory platform for future biorefineries , 2012, Cellular and Molecular Life Sciences.
[22] M. Feng,et al. The combination of glycerol metabolic engineering and drug resistance marker-aided genome shuffling to improve very-high-gravity fermentation performances of industrial Saccharomyces cerevisiae. , 2012, Bioresource technology.
[23] Keng C. Soh,et al. From network models to network responses: integration of thermodynamic and kinetic properties of yeast genome-scale metabolic networks. , 2012, FEMS yeast research.
[24] I. Nookaew,et al. Physiological characterization of recombinant Saccharomyces cerevisiae expressing the Aspergillus nidulans phosphoketolase pathway: validation of activity through 13C-based metabolic flux analysis , 2012, Applied Microbiology and Biotechnology.
[25] Jens Nielsen,et al. Functional expression and characterization of five wax ester synthases in Saccharomyces cerevisiae and their utility for biodiesel production , 2012, Biotechnology for Biofuels.
[26] Muyuan Zhu,et al. A Novel Strategy to Construct Yeast Saccharomyces cerevisiae Strains for Very High Gravity Fermentation , 2012, PloS one.
[27] C. Boonchird,et al. CDC19 encoding pyruvate kinase is important for high-temperature tolerance in Saccharomyces cerevisiae. , 2012, New biotechnology.
[28] Jay D. Keasling,et al. Production of amorphadiene in yeast, and its conversion to dihydroartemisinic acid, precursor to the antimalarial agent artemisinin , 2012, Proceedings of the National Academy of Sciences.
[29] J. Pronk,et al. Engineering topology and kinetics of sucrose metabolism in Saccharomyces cerevisiae for improved ethanol yield. , 2011, Metabolic engineering.
[30] Thorsten Subtil,et al. Improving L-arabinose utilization of pentose fermenting Saccharomyces cerevisiae cells by heterologous expression of L-arabinose transporting sugar transporters , 2011, Biotechnology for biofuels.
[31] W. V. van Zyl,et al. High level secretion of cellobiohydrolases by Saccharomyces cerevisiae , 2011, Biotechnology for biofuels.
[32] S. Chandran,et al. Microbial production of isoprenoids , 2011 .
[33] B. Hahn-Hägerdal,et al. The glucose/xylose facilitator Gxf1 from Candida intermedia expressed in a xylose-fermenting industrial strain of Saccharomyces cerevisiae increases xylose uptake in SSCF of wheat straw. , 2011, Enzyme and microbial technology.
[34] Andreas Wagner,et al. Batch and continuous culture-based selection strategies for acetic acid tolerance in xylose-fermenting Saccharomyces cerevisiae. , 2011, FEMS yeast research.
[35] Michelle C. Y. Chang,et al. Enzyme mechanism as a kinetic control element for designing synthetic biofuel pathways. , 2011, Nature chemical biology.
[36] G. Shi,et al. Improving the ethanol yield by reducing glycerol formation using cofactor regulation in Saccharomyces cerevisiae , 2011, Biotechnology Letters.
[37] Yue-Qin Tang,et al. Enhanced thermotolerance for ethanol fermentation of Saccharomyces cerevisiae strain by overexpression of the gene coding for trehalose-6-phosphate synthase , 2011, Biotechnology Letters.
[38] J. Nielsen,et al. Opportunities for yeast metabolic engineering: Lessons from synthetic biology , 2011, Biotechnology journal.
[39] Jens Nielsen,et al. Prospects for microbial biodiesel production , 2011, Biotechnology journal.
[40] Christine Lang,et al. Oxidative versus reductive succinic acid production in the yeast saccharomyces cerevisiae , 2011, Bioengineered bugs.
[41] S. Rose,et al. Co-expression of a cellobiose phosphorylase and lactose permease enables intracellular cellobiose utilisation by Saccharomyces cerevisiae , 2011, Applied Microbiology and Biotechnology.
[42] Liang Zhang,et al. Minimization of glycerol synthesis in industrial ethanol yeast without influencing its fermentation performance. , 2011, Metabolic engineering.
[43] B. Prior,et al. Elimination of glycerol and replacement with alternative products in ethanol fermentation by Saccharomyces cerevisiae , 2011, Journal of Industrial Microbiology & Biotechnology.
[44] Yong-Su Jin,et al. Engineered Saccharomyces cerevisiae capable of simultaneous cellobiose and xylose fermentation , 2010, Proceedings of the National Academy of Sciences.
[45] Jack T Pronk,et al. Metabolome, transcriptome and metabolic flux analysis of arabinose fermentation by engineered Saccharomyces cerevisiae. , 2010, Metabolic engineering.
[46] A. Schirmer,et al. Microbial Biosynthesis of Alkanes , 2010, Science.
[47] T. Hasunuma,et al. Co-fermentation of cellobiose and xylose using beta-glucosidase displaying diploid industrial yeast strain OC-2 , 2010, Applied Microbiology and Biotechnology.
[48] L. Hou,et al. Improved Production of Ethanol by Novel Genome Shuffling in Saccharomyces cerevisiae , 2010, Applied biochemistry and biotechnology.
[49] J. Keasling,et al. Microbial production of fatty-acid-derived fuels and chemicals from plant biomass , 2010, Nature.
[50] Jack T. Pronk,et al. Elimination of Glycerol Production in Anaerobic Cultures of a Saccharomyces cerevisiae Strain Engineered To Use Acetic Acid as an Electron Acceptor , 2009, Applied and Environmental Microbiology.
[51] Jack T Pronk,et al. Effects of acetic acid on the kinetics of xylose fermentation by an engineered, xylose-isomerase-based Saccharomyces cerevisiae strain. , 2009, FEMS yeast research.
[52] J. Pronk,et al. Novel Evolutionary Engineering Approach for Accelerated Utilization of Glucose, Xylose, and Arabinose Mixtures by Engineered Saccharomyces cerevisiae Strains , 2008, Applied and Environmental Microbiology.
[53] Alyssa M. Redding,et al. Metabolic engineering of Saccharomyces cerevisiae for the production of n-butanol , 2008, Microbial cell factories.
[54] Jack T. Pronk,et al. Malic Acid Production by Saccharomyces cerevisiae : Engineering of Pyruvate Carboxylation , Oxaloacetate Reduction , and Malate Export † , 2007 .
[55] M. Penttilä,et al. The Missing Link in the Fungal D-Galacturonate Pathway , 2007, Journal of Biological Chemistry.
[56] J. Pronk,et al. Development of efficient xylose fermentation in Saccharomyces cerevisiae: xylose isomerase as a key component. , 2007, Advances in biochemical engineering/biotechnology.
[57] Timothy S. Ham,et al. Production of the antimalarial drug precursor artemisinic acid in engineered yeast , 2006, Nature.
[58] J. Förster,et al. In silico aided metabolic engineering of Saccharomyces cerevisiae for improved bioethanol production. , 2006, Metabolic engineering.
[59] Jens Nielsen,et al. Evolutionary programming as a platform for in silico metabolic engineering , 2005, BMC Bioinformatics.
[60] S. Hohmann. Osmotic Stress Signaling and Osmoadaptation in Yeasts , 2002, Microbiology and Molecular Biology Reviews.
[61] M. Sauer,et al. Metabolic engineering of yeast , 2001 .
[62] J Villadsen,et al. Optimization of ethanol production in Saccharomyces cerevisiae by metabolic engineering of the ammonium assimilation. , 2000, Metabolic engineering.
[63] L. Gustafsson,et al. Improved ethanol production by glycerol-3-phosphate dehydrogenase mutants of Saccharomyces cerevisiae , 1998, Applied Microbiology and Biotechnology.
[64] J M Thevelein,et al. The two isoenzymes for yeast NAD+‐dependent glycerol 3‐phosphate dehydrogenase encoded by GPD1 and GPD2 have distinct roles in osmoadaptation and redox regulation , 1997, The EMBO journal.