Solar-to-chemical and solar-to-fuel production from CO2 by metabolically engineered microorganisms.
暂无分享,去创建一个
[1] Keith E. J. Tyo,et al. Isoprenoid Pathway Optimization for Taxol Precursor Overproduction in Escherichia coli , 2010, Science.
[2] A. Melis,et al. Engineering a platform for photosynthetic isoprene production in cyanobacteria, using Synechocystis as the model organism. , 2010, Metabolic engineering.
[3] George M. Church,et al. A new dawn for industrial photosynthesis , 2011, Photosynthesis Research.
[4] D. Bryant,et al. The Tricarboxylic Acid Cycle in Cyanobacteria , 2011, Science.
[5] Kwang Myung Cho,et al. Integrated Electromicrobial Conversion of CO2 to Higher Alcohols , 2012, Science.
[6] Yinjie J. Tang,et al. Photoautotrophic production of D-lactic acid in an engineered cyanobacterium , 2013, Microbial Cell Factories.
[7] Hsin-Ho Huang,et al. Wide-dynamic-range promoters engineered for cyanobacteria , 2013, Journal of Biological Engineering.
[8] Steven W. Singer,et al. Engineering of Ralstonia eutropha H16 for Autotrophic and Heterotrophic Production of Methyl Ketones , 2013, Applied and Environmental Microbiology.
[9] Y. Nakahira,et al. Theophylline-dependent riboswitch as a novel genetic tool for strict regulation of protein expression in Cyanobacterium Synechococcus elongatus PCC 7942. , 2013, Plant & cell physiology.
[10] Rajib Saha,et al. Synthetic biology of cyanobacteria: unique challenges and opportunities , 2013, Front. Microbiol..
[11] D. Brune,et al. The γ‐aminobutyric acid shunt contributes to closing the tricarboxylic acid cycle in Synechocystis sp. PCC 6803 , 2014, Molecular microbiology.
[12] Katsuhiro Kojima,et al. Engineering of a green-light inducible gene expression system in Synechocystis sp. PCC6803 , 2013, Microbial biotechnology.
[13] Z. Ren,et al. Efficient solar water-splitting using a nanocrystalline CoO photocatalyst. , 2014, Nature nanotechnology.
[14] H. Harms,et al. Exploiting mixtures of H2, CO2, and O2 for improved production of methacrylate precursor 2-hydroxyisobutyric acid by engineered Cupriavidus necator strains , 2015, Applied Microbiology and Biotechnology.
[15] Thomas F. Jaramillo,et al. Electrocatalytic conversion of carbon dioxide to methane and methanol on transition metal surfaces. , 2014, Journal of the American Chemical Society.
[16] D. Bryant,et al. Biochemical Validation of the Glyoxylate Cycle in the Cyanobacterium Chlorogloeopsis fritschii Strain PCC 9212* , 2015, The Journal of Biological Chemistry.
[17] Yi Yu,et al. Hybrid bioinorganic approach to solar-to-chemical conversion , 2015, Proceedings of the National Academy of Sciences.
[18] Klaas J Hellingwerf,et al. Engineering cyanobacteria for direct biofuel production from CO2. , 2015, Current opinion in biotechnology.
[19] Christopher J. Chang,et al. Nanowire-bacteria hybrids for unassisted solar carbon dioxide fixation to value-added chemicals. , 2015, Nano letters.
[20] P. Maness,et al. Engineered xylose utilization enhances bio-products productivity in the cyanobacterium Synechocystis sp. PCC 6803. , 2015, Metabolic engineering.
[21] Nymul E. Khan,et al. Metabolic engineering in chemolithoautotrophic hosts for the production of fuels and chemicals. , 2015, Metabolic engineering.
[22] Juan Nogales,et al. Cyanobacteria as photosynthetic biocatalysts: a systems biology perspective. , 2015, Molecular bioSystems.
[23] Kelly M. Wetmore,et al. The essential gene set of a photosynthetic organism , 2015, Proceedings of the National Academy of Sciences.
[24] E. P. Hudson,et al. Genetic and nutrient modulation of acetyl-CoA levels in Synechocystis for n-butanol production , 2015, Microbial Cell Factories.
[25] Kun Guo,et al. Engineering electrodes for microbial electrocatalysis. , 2015, Current opinion in biotechnology.
[26] Nanette R Boyle,et al. Genome Engineering in Cyanobacteria: Where We Are and Where We Need To Go. , 2015, ACS synthetic biology.
[27] M. Ghirardi,et al. Phosphoketolase pathway contributes to carbon metabolism in cyanobacteria , 2015, Nature Plants.
[28] Brian F. Pfleger,et al. Synthetic Biology Toolbox for Controlling Gene Expression in the Cyanobacterium Synechococcus sp. strain PCC 7002 , 2014, ACS synthetic biology.
[29] Pamela A. Silver,et al. Correction: Efficient solar-to-fuels production from a hybrid microbial - Water-splitting catalyst system (Proc Natl Acad Sci USA (2015) 112 (2337-2342) 10.1073/pnas.1424872112) , 2015 .
[30] P. Dürre,et al. C1-carbon sources for chemical and fuel production by microbial gas fermentation. , 2015, Current opinion in biotechnology.
[31] Benjamin E. Rubin,et al. The circadian oscillator in Synechococcus elongatus controls metabolite partitioning during diurnal growth , 2015, Proceedings of the National Academy of Sciences.
[32] A. Melis,et al. A phycocyanin·phellandrene synthase fusion enhances recombinant protein expression and β-phellandrene (monoterpene) hydrocarbons production in Synechocystis (cyanobacteria). , 2015, Metabolic engineering.
[33] Susan E. Cohen,et al. Circadian Rhythms in Cyanobacteria , 2001, Microbiology and Molecular Reviews.
[34] Pamela A Silver,et al. Efficient solar-to-fuels production from a hybrid microbial–water-splitting catalyst system , 2015, Proceedings of the National Academy of Sciences.
[35] Ahmed Abdel-Wahab,et al. Photosynthesis of formate from CO2 and water at 1% energy efficiency via copper iron oxide catalysis , 2015 .
[36] P. Maness,et al. The plasticity of cyanobacterial metabolism supports direct CO2 conversion to ethylene , 2015, Nature Plants.
[37] S. Atsumi,et al. 2,3 Butanediol production in an obligate photoautotrophic cyanobacterium in dark conditions via diverse sugar consumption. , 2016, Metabolic engineering.
[38] Yin Li,et al. From cyanochemicals to cyanofactories: a review and perspective , 2016, Microbial Cell Factories.
[39] Brian F. Pfleger,et al. CRISPR interference as a titratable, trans-acting regulatory tool for metabolic engineering in the cyanobacterium Synechococcus sp. strain PCC 7002. , 2016, Metabolic engineering.
[40] S. Atsumi,et al. Cyanobacterial chemical production. , 2016, Journal of biotechnology.
[41] Cheryl M. Immethun,et al. Oxygen‐responsive genetic circuits constructed in Synechocystis sp. PCC 6803 , 2016, Biotechnology and bioengineering.
[42] P. Yang,et al. Self-photosensitization of nonphotosynthetic bacteria for solar-to-chemical production , 2016, Science.
[43] H. Woo,et al. Engineering of a modular and synthetic phosphoketolase pathway for photosynthetic production of acetone from CO 2 in Synechococcus elongatus PCC 7942 under light and aerobic condition , 2016, Plant biotechnology journal.
[44] Hyun Jeong Lee,et al. Photosynthetic conversion of CO2 to farnesyl diphosphate-derived phytochemicals (amorpha-4,11-diene and squalene) by engineered cyanobacteria , 2016, Biotechnology for Biofuels.
[45] W. Martin,et al. The Entner–Doudoroff pathway is an overlooked glycolytic route in cyanobacteria and plants , 2016, Proceedings of the National Academy of Sciences.
[46] Brian F. Pfleger,et al. Construction of new synthetic biology tools for the control of gene expression in the cyanobacterium Synechococcus sp. strain PCC 7002 , 2016, Biotechnology and bioengineering.
[47] A. Melis,et al. Sustainable heterologous production of terpene hydrocarbons in cyanobacteria , 2016, Photosynthesis Research.
[48] C. Maranas,et al. Diurnal Regulation of Cellular Processes in the Cyanobacterium Synechocystis sp. Strain PCC 6803: Insights from Transcriptomic, Fluxomic, and Physiological Analyses , 2016, mBio.
[49] Huimin Zhao,et al. CRISPR/Cas9 mediated targeted mutagenesis of the fast growing cyanobacterium Synechococcus elongatus UTEX 2973 , 2016, Microbial Cell Factories.
[50] Pamela A. Silver,et al. Water splitting–biosynthetic system with CO2 reduction efficiencies exceeding photosynthesis , 2016, Science.
[51] E. P. Hudson,et al. Multiple Gene Repression in Cyanobacteria Using CRISPRi. , 2016, ACS synthetic biology.
[52] J. Liao,et al. Fuelling the future: microbial engineering for the production of sustainable biofuels , 2016, Nature Reviews Microbiology.
[53] Engineering the methylerythritol phosphate pathway in cyanobacteria for photosynthetic isoprene production from CO2 , 2018, New Biotechnology.