Lysate of engineered Escherichia coli supports high-level conversion of glucose to 2,3-butanediol.
暂无分享,去创建一个
[1] Hal Alper,et al. Tuning Gene Expression in Yarrowia lipolytica by a Hybrid Promoter Approach , 2011, Applied and Environmental Microbiology.
[2] J. Swartz,et al. Efficient and scalable method for scaling up cell free protein synthesis in batch mode. , 2005, Biotechnology and bioengineering.
[3] A. Glieder,et al. Engineering primary metabolic pathways of industrial micro-organisms. , 2007, Journal of biotechnology.
[4] C. Nakamura,et al. Metabolic engineering for the microbial production of 1,3-propanediol. , 2003, Current opinion in biotechnology.
[5] James R. Swartz,et al. Transforming biochemical engineering with cell-free biology , 2012 .
[6] James Chappell,et al. Creating small transcription activating RNAs. , 2015, Nature chemical biology.
[7] Huimin Zhao,et al. Customized optimization of metabolic pathways by combinatorial transcriptional engineering , 2012, Nucleic acids research.
[8] A. Demain,et al. Microbial Enzymes: Tools for Biotechnological Processes , 2014, Biomolecules.
[9] Volker Sieber,et al. Cell-free metabolic engineering: production of chemicals by minimized reaction cascades. , 2012, ChemSusChem.
[10] Richard M. Murray,et al. Rapidly Characterizing the Fast Dynamics of RNA Genetic Circuitry with Cell-Free Transcription–Translation (TX-TL) Systems , 2014, ACS synthetic biology.
[11] Cuiqing Ma,et al. Systematic metabolic engineering of Escherichia coli for high-yield production of fuel bio-chemical 2,3-butanediol. , 2014, Metabolic engineering.
[12] A. Demain,et al. Enzymes and Bioconversions of Industrial, Pharmaceutical, and Biotechnological Significance , 2011 .
[13] Rui Gan,et al. Cell-free protein synthesis: applications come of age. , 2012, Biotechnology advances.
[14] Chun You,et al. Cell-free biosystems for biomanufacturing. , 2013, Advances in biochemical engineering/biotechnology.
[15] Michelle C. Y. Chang,et al. Enzyme mechanism as a kinetic control element for designing synthetic biofuel pathways. , 2011, Nature chemical biology.
[16] H. Salis. The ribosome binding site calculator. , 2011, Methods in enzymology.
[17] Ashty S. Karim,et al. Cell‐free metabolic engineering: Biomanufacturing beyond the cell , 2015, Biotechnology journal.
[18] Kirill Alexandrov,et al. Cell-Free Protein Synthesis , 2014, Methods in Molecular Biology.
[19] C. J. Murray,et al. Microscale to Manufacturing Scale-up of Cell-Free Cytokine Production—A New Approach for Shortening Protein Production Development Timelines , 2011, Biotechnology and bioengineering.
[20] Yajun Yan,et al. Enantioselective synthesis of pure (R,R)-2,3-butanediol in Escherichia coli with stereospecific secondary alcohol dehydrogenases. , 2009, Organic & biomolecular chemistry.
[21] Michael Köpke,et al. 2,3-Butanediol Production by Acetogenic Bacteria, an Alternative Route to Chemical Synthesis, Using Industrial Waste Gas , 2011, Applied and Environmental Microbiology.
[22] Michael C Jewett,et al. An integrated cell-free metabolic platform for protein production and synthetic biology , 2008, Molecular systems biology.
[23] Keith E. J. Tyo,et al. Isoprenoid Pathway Optimization for Taxol Precursor Overproduction in Escherichia coli , 2010, Science.
[24] Xiao-Jun Ji,et al. Constructing a synthetic metabolic pathway in Escherichia coli to produce the enantiomerically pure (R, R)-2,3-butanediol. , 2015, Biotechnology and bioengineering.
[25] Muhammad Wajid Ullah,et al. Yeast cell-free enzyme system for bio-ethanol production at elevated temperatures , 2014 .
[26] Sven Panke,et al. The good of two worlds: increasing complexity in cell-free systems. , 2013, Current opinion in biotechnology.
[27] Tsz Kin Tam,et al. New biotechnology paradigm: cell-free biosystems for biomanufacturing , 2013 .
[28] Matthias Heinemann,et al. Optimization of a blueprint for in vitro glycolysis by metabolic real-time analysis. , 2011, Nature chemical biology.
[29] P. Ouyang,et al. Microbial 2,3-butanediol production: a state-of-the-art review. , 2011, Biotechnology advances.
[30] C. J. Murray,et al. Aglycosylated antibodies and antibody fragments produced in a scalable in vitro transcription-translation system , 2012, mAbs.
[31] R. Kwok. Five hard truths for synthetic biology , 2010, Nature.
[32] Jay D Keasling,et al. BglBricks: A flexible standard for biological part assembly , 2010, Journal of biological engineering.
[33] James C Liao,et al. Next generation biofuel engineering in prokaryotes. , 2013, Current opinion in chemical biology.
[34] David K. Karig,et al. Expression optimization and synthetic gene networks in cell-free systems , 2011, Nucleic acids research.
[35] Matthias Heinemann,et al. Exploiting cell‐free systems: Implementation and debugging of a system of biotransformations , 2010, Biotechnology and bioengineering.
[36] N. Kelleher,et al. Improving Cell‐Free Protein Synthesis through Genome Engineering of Escherichia coli Lacking Release Factor 1 , 2015, Chembiochem : a European journal of chemical biology.
[37] V. Noireaux,et al. An E. coli cell-free expression toolbox: application to synthetic gene circuits and artificial cells. , 2012, ACS synthetic biology.
[38] Vincent Noireaux,et al. Linear DNA for rapid prototyping of synthetic biological circuits in an Escherichia coli based TX-TL cell-free system. , 2014, ACS synthetic biology.
[39] Robert K. Scopes,et al. Studies on cell-free metabolism: Ethanol production by a yeast glycolytic system reconstituted from purified enzymes , 1985 .
[40] J. Keasling,et al. High-level semi-synthetic production of the potent antimalarial artemisinin , 2013, Nature.
[41] M. Jewett,et al. Cell-free synthetic biology: thinking outside the cell. , 2012, Metabolic engineering.
[42] Vincent Noireaux,et al. A cost-effective polyphosphate-based metabolism fuels an all E. coli cell-free expression system. , 2015, Metabolic engineering.
[43] Vincent Noireaux,et al. Integration of biological parts toward the synthesis of a minimal cell. , 2014, Current opinion in chemical biology.
[44] Shuang Li,et al. Technology Prospecting on Enzymes: Application, Marketing and Engineering , 2012, Computational and structural biotechnology journal.
[45] J. Swartz,et al. Energizing cell-free protein synthesis with glucose metabolism. , 2005, Biotechnology and bioengineering.
[46] K. Prather,et al. Metabolic engineering of acetoin and meso‐2, 3‐butanediol biosynthesis in E. coli , 2010, Biotechnology journal.
[47] D. G. Gibson,et al. Enzymatic assembly of DNA molecules up to several hundred kilobases , 2009, Nature Methods.
[48] Martin Fussenegger,et al. Engineering synergy in biotechnology. , 2014, Nature chemical biology.
[49] Jiangning Song,et al. Computational enzyme design approaches with significant biological outcomes: progress and challenges , 2012, Computational and structural biotechnology journal.
[50] アルパー,ハル,エス.,et al. Global transcription machinery engineering , 2006 .
[51] Jeong Wook Lee,et al. Systems metabolic engineering of microorganisms for natural and non-natural chemicals. , 2012, Nature chemical biology.
[52] G. Stephanopoulos,et al. Global transcription machinery engineering: a new approach for improving cellular phenotype. , 2007, Metabolic engineering.
[53] M. Jewett,et al. Mimicking the Escherichia coli cytoplasmic environment activates long‐lived and efficient cell‐free protein synthesis , 2004, Biotechnology and bioengineering.