The emerging age of cell‐free synthetic biology
暂无分享,去创建一个
Bradley C. Bundy | Mark T. Smith | A. M. Bennett | Jeremy M Hunt | Mark Thomas Smith | Bradley C Bundy | Kristen M. Wilding | Anthony M Bennett | Kristen M Wilding
[1] Sriram Kosuri,et al. Causes and Effects of N-Terminal Codon Bias in Bacterial Genes , 2013, Science.
[2] T. Tsuboi,et al. An efficient approach to the production of vaccines against the malaria parasite. , 2010, Methods in molecular biology.
[3] E. Winfree,et al. Diversity in the dynamical behaviour of a compartmentalized programmable biochemical oscillator. , 2014, Nature chemistry.
[4] J. Oakeshott,et al. In situ deprotection and incorporation of unnatural amino acids during cell-free protein synthesis. , 2013, Chemistry.
[5] E. Kobatake,et al. Genetic PEGylation , 2012, PloS one.
[6] M. Jewett,et al. Cell-free synthetic biology: thinking outside the cell. , 2012, Metabolic engineering.
[7] Antoine Danchin,et al. Scaling up synthetic biology: Do not forget the chassis , 2012, FEBS letters.
[8] Thomas Huber,et al. Multiple-site labeling of proteins with unnatural amino acids. , 2012, Angewandte Chemie.
[9] Marco G. Casteleijn,et al. Expression without boundaries: cell-free protein synthesis in pharmaceutical research. , 2013, International journal of pharmaceutics.
[10] C. Ahern,et al. Unnatural amino acids as probes of ligand-receptor interactions and their conformational consequences. , 2013, Annual review of pharmacology and toxicology.
[11] P. Chuawong,et al. The nondiscriminating aspartyl-tRNA synthetase from Helicobacter pylori: anticodon-binding domain mutations that impact tRNA specificity and heterologous toxicity. , 2006, Biochemistry.
[12] Alfonso Jaramillo,et al. Perspectives on the automatic design of regulatory systems for synthetic biology , 2012, FEBS letters.
[13] Junhao Yang,et al. Rapid expression of vaccine proteins for B-cell lymphoma in a cell-free system. , 2005, Biotechnology and bioengineering.
[14] K. Überla,et al. Selection of a T7 promoter mutant with enhanced in vitro activity by a novel multi-copy bead display approach for in vitro evolution , 2012, Nucleic acids research.
[15] Takuya Ueda,et al. Cell-free translation reconstituted with purified components , 2001, Nature Biotechnology.
[16] Rui Gan,et al. Cell-free protein synthesis: applications come of age. , 2012, Biotechnology advances.
[17] Michael C Jewett,et al. Synthetic in vitro circuits. , 2012, Current opinion in chemical biology.
[18] Andrew D Griffiths,et al. A completely in vitro ultrahigh-throughput droplet-based microfluidic screening system for protein engineering and directed evolution. , 2012, Lab on a chip.
[19] Christina D Smolke,et al. A yeast‐based rapid prototype platform for gene control elements in mammalian cells , 2013, Biotechnology and bioengineering.
[20] Claus Duschl,et al. Production of functional antibody fragments in a vesicle-based eukaryotic cell-free translation system. , 2013, Journal of biotechnology.
[21] N. Dixon,et al. High-yield cell-free protein synthesis for site-specific incorporation of unnatural amino acids at two sites. , 2012, Biochemical and biophysical research communications.
[22] Erik Winfree,et al. Ensemble Bayesian analysis of bistability in a synthetic transcriptional switch. , 2012, ACS synthetic biology.
[23] Michael Christopher Jewett,et al. Transforming Synthetic Biology with Cell-Free Systems , 2013 .
[24] I. Oh,et al. Cell-free production of functional antibody fragments , 2010, Bioprocess and biosystems engineering.
[25] Bradley Charles Bundy,et al. Streamlined extract preparation for Escherichia coli-based cell-free protein synthesis by sonication or bead vortex mixing. , 2012, BioTechniques.
[26] Henrike Niederholtmeyer,et al. Real-time mRNA measurement during an in vitro transcription and translation reaction using binary probes. , 2013, ACS synthetic biology.
[27] E. Winfree,et al. Synthetic in vitro transcriptional oscillators , 2011, Molecular systems biology.
[28] M. L. Simpson,et al. Micro/nanofabricated environments for synthetic biology. , 2011, Current opinion in biotechnology.
[29] L. Alfonta,et al. Enhanced Yield of Recombinant Proteins with Site-Specifically Incorporated Unnatural Amino Acids Using a Cell-Free Expression System , 2013, PloS one.
[30] Ron Weiss,et al. Rapid, modular and reliable construction of complex mammalian gene circuits , 2013, Nucleic acids research.
[31] J. Keasling. Synthetic biology and the development of tools for metabolic engineering. , 2012, Metabolic engineering.
[32] Sarjeet S. Gill,et al. Insect control: biological and synthetic agents. , 2010 .
[33] James R. Swartz,et al. Site-specific incorporation of p-propargyloxyphenylalanine in a cell-free environment for direct protein-protein click conjugation. , 2010, Bioconjugate chemistry.
[34] Ulrich Schwaneberg,et al. A roadmap to directed enzyme evolution and screening systems for biotechnological applications. , 2013, Biological research.
[35] Vincent Noireaux,et al. Genome replication, synthesis, and assembly of the bacteriophage T7 in a single cell-free reaction. , 2012, ACS synthetic biology.
[36] Ronald Levy,et al. A vaccine directed to B cells and produced by cell-free protein synthesis generates potent antilymphoma immunity , 2012, Proceedings of the National Academy of Sciences.
[37] Keith E. J. Tyo,et al. Virus-like particles: the future of microbial factories and cell-free systems as platforms for vaccine development , 2013, Current Opinion in Biotechnology.
[38] James R. Swartz,et al. Production and stabilization of the trimeric influenza hemagglutinin stem domain for potentially broadly protective influenza vaccines , 2013, Proceedings of the National Academy of Sciences.
[39] R. Zimmer,et al. Experiment and mathematical modeling of gene expression dynamics in a cell-free system. , 2012, Integrative biology : quantitative biosciences from nano to macro.
[40] Mark Thomas Smith,et al. Reengineering viruses and virus-like particles through chemical functionalization strategies. , 2013, Current opinion in biotechnology.
[41] S. Mikami,et al. Cell-free protein synthesis systems with extracts from cultured human cells. , 2010, Methods in molecular biology.
[42] M. Jewett,et al. Optimized extract preparation methods and reaction conditions for improved yeast cell‐free protein synthesis , 2013, Biotechnology and bioengineering.
[43] Herbert M Sauro,et al. Randomized BioBrick assembly: a novel DNA assembly method for randomizing and optimizing genetic circuits and metabolic pathways. , 2013, ACS synthetic biology.
[44] Hong Wang,et al. An optimized yeast cell-free system: sufficient for translation of human papillomavirus 58 L1 mRNA and assembly of virus-like particles. , 2008, Journal of bioscience and bioengineering.
[45] Bradley C. Bundy,et al. Lyophilized Escherichia coli-based cell-free systems for robust, high-density, long-term storage. , 2014, BioTechniques.
[46] G. Church,et al. Cas9 as a versatile tool for engineering biology , 2013, Nature Methods.
[47] M. L. Simpson,et al. Probing cell-free gene expression noise in femtoliter volumes. , 2013, ACS synthetic biology.
[48] 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.
[49] Paul S. Freemont,et al. Validation of an entirely in vitro approach for rapid prototyping of DNA regulatory elements for synthetic biology , 2013, Nucleic acids research.
[50] J. Rühe,et al. Time-resolved analysis of biological reactions based on heterogeneous assays in liquid plugs of nanoliter volume. , 2013, Analytical chemistry.
[51] Anna K. Hawes,et al. Alternative fermentation conditions for improved Escherichia coli-based cell-free protein synthesis for proteins requiring supplemental components for proper synthesis , 2014 .
[52] Michael L Simpson,et al. Cell-free synthetic biology: a bottom-up approach to discovery by design , 2006, Molecular systems biology.
[53] Piro Siuti,et al. Continuous protein production in nanoporous, picolitre volume containers. , 2011, Lab on a chip.
[54] J. Swartz,et al. Energy systems for ATP regeneration in cell-free protein synthesis reactions. , 2007, Methods in molecular biology.
[55] S. Yokoyama,et al. Reconstitution of eukaryotic translation initiation factor 3 by co-expression of the subunits in a human cell-derived in vitro protein synthesis system. , 2013, Protein expression and purification.
[56] C. J. Murray,et al. Production of site-specific antibody-drug conjugates using optimized non-natural amino acids in a cell-free expression system. , 2014, Bioconjugate chemistry.
[57] Michael C Jewett,et al. Molecular Systems Biology Peer Review Process File in Vitro Integration of Ribosomal Rna Synthesis, Ribosome Assembly, and Translation Transaction Report , 2022 .
[58] T. Yomo,et al. Effects of compartment size on the kinetics of intracompartmental multimeric protein synthesis. , 2012, ACS synthetic biology.
[59] Pamela A. Silver,et al. Building Synthetic Memory , 2013, Current Biology.
[60] W. Myers,et al. The HydG Enzyme Generates an Fe(CO)2(CN) Synthon in Assembly of the FeFe Hydrogenase H-Cluster , 2014, Science.
[61] Yen-Hsiang Wang,et al. Synthetic biology: advancing the design of diverse genetic systems. , 2013, Annual review of chemical and biomolecular engineering.
[62] Taichi E. Takasuka,et al. Cell-free translation of biofuel enzymes. , 2014, Methods in molecular biology.
[63] Cem Albayrak,et al. Cell-free co-production of an orthogonal transfer RNA activates efficient site-specific non-natural amino acid incorporation , 2013, Nucleic acids research.
[64] Vincent Noireaux,et al. Synthesis of 2.3 mg/ml of protein with an all Escherichia coli cell-free transcription-translation system. , 2014, Biochimie.
[65] Gunvor Røkke,et al. BioBrick assembly standards and techniques and associated software tools. , 2014, Methods in molecular biology.
[66] David K. Karig,et al. Multi-Input Regulation and Logic with T7 Promoters in Cells and Cell-Free Systems , 2013, PloS one.
[67] Shang-Chieh Ting,et al. Locally enhanced concentration and detection of oligonucleotides in a plug-based microfluidic device. , 2012, Lab on a chip.
[68] Michael C Jewett,et al. Cell-free biology: exploiting the interface between synthetic biology and synthetic chemistry. , 2012, Current opinion in biotechnology.
[69] Tsz Kin Tam,et al. New biotechnology paradigm: cell-free biosystems for biomanufacturing , 2013 .
[70] Kedar G. Patel,et al. Surface functionalization of virus-like particles by direct conjugation using azide-alkyne click chemistry. , 2011, Bioconjugate chemistry.
[71] Y.‐H.P. Zhang,et al. Simpler Is Better: High-Yield and Potential Low-Cost Biofuels Production through Cell-Free Synthetic Pathway Biotransformation (SyPaB) , 2011 .
[72] Christopher A. Voigt,et al. Realizing the potential of synthetic biology , 2014, Nature Reviews Molecular Cell Biology.
[73] Volker Dötsch,et al. Advances in cell-free protein synthesis for the functional and structural analysis of membrane proteins. , 2011, New biotechnology.
[74] Arlo Z. Randall,et al. Profiling humoral immune responses to P. falciparum infection with protein microarrays , 2008, Proteomics.
[75] Jae Kwang Song,et al. Expression of functional Candida antarctica lipase B in a cell‐free protein synthesis system derived from Escherichia coli , 2009, Biotechnology progress.
[76] Alexander S. Spirin,et al. Cell-Free Protein Synthesis , 2007 .
[77] 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.
[78] Wei Chan,et al. Escherichia coli‐based cell free production of flagellin and ordered flagellin display on virus‐like particles , 2013, Biotechnology and bioengineering.
[79] A. Spirin. High-throughput cell-free systems for synthesis of functionally active proteins. , 2004, Trends in biotechnology.
[80] Bradley C. Bundy,et al. Efficient disulfide bond formation in virus-like particles. , 2011, Journal of biotechnology.
[81] W. Stiege,et al. Cell-free synthesis of functional and endotoxin-free antibody Fab fragments by translocation into microsomes. , 2012, BioTechniques.
[82] Bradley C. Bundy,et al. The incorporation of the A2 protein to produce novel Qβ virus‐like particles using cell‐free protein synthesis , 2012, Biotechnology progress.
[83] Y. Sakai,et al. Programming an in vitro DNA oscillator using a molecular networking strategy , 2011, Molecular systems biology.
[84] Farren J. Isaacs,et al. Programming cells by multiplex genome engineering and accelerated evolution , 2009, Nature.
[85] R. Murray,et al. Timing molecular motion and production with a synthetic transcriptional clock , 2011, Proceedings of the National Academy of Sciences.
[86] C. J. Murray,et al. Aglycosylated antibodies and antibody fragments produced in a scalable in vitro transcription-translation system , 2012, mAbs.
[87] Chang-Gil Park,et al. Cell‐free synthesis and multifold screening of Candida antarctica lipase B (CalB) variants after combinatorial mutagenesis of hot spots , 2011, Biotechnology progress.
[88] Curtis J. Layton,et al. Integration of cell‐free protein coexpression with an enzyme‐linked immunosorbent assay enables rapid analysis of protein–protein interactions directly from DNA , 2011, Protein science : a publication of the Protein Society.
[89] James C Liao,et al. Next generation biofuel engineering in prokaryotes. , 2013, Current opinion in chemical biology.
[90] Ulrich Gerland,et al. Supplementary Material to: Biological signal processing with a genetic toggle switch , 2013 .
[91] Rui Gan,et al. A combined cell-free transcription-translation system from Saccharomyces cerevisiae for rapid and robust protein synthe. , 2014, Biotechnology journal.
[92] Junhao Yang,et al. Cell-free production of scFv fusion proteins: an efficient approach for personalized lymphoma vaccines. , 2007, Blood.
[93] Frank F. Bier,et al. Synthesis of membrane proteins in eukaryotic cell‐free systems , 2013 .
[94] Teruo Fujii,et al. Nucleic acids for the rational design of reaction circuits. , 2013, Current opinion in biotechnology.
[95] Bradley C. Bundy,et al. Enhanced protein stability through minimally invasive, direct, covalent, and site‐specific immobilization , 2013, Biotechnology progress.
[96] J. Swartz,et al. High-Yield Expression of Heterologous [FeFe] Hydrogenases in Escherichia coli , 2010, PloS one.
[97] Miniaturized fluid array for high‐throughput protein expression , 2010, Biotechnology progress.
[98] H. Hellinga,et al. Visualization of Synaptic Inhibition with an Optogenetic Sensor Developed by Cell-Free Protein Engineering Automation , 2013, The Journal of Neuroscience.
[99] Y.‐H.P. Zhang,et al. Production of biocommodities and bioelectricity by cell-free synthetic enzymatic pathway biotransformations: challenges and opportunities. , 2010, Biotechnology and bioengineering.
[100] R. Schmid,et al. Functional expression of Candida antarctica lipase B in the Escherichia coli cytoplasm—a screening system for a frequently used biocatalyst , 2006, Applied Microbiology and Biotechnology.
[101] J. Stapleton,et al. Cell‐free synthesis and maturation of [FeFe] hydrogenases , 2008, Biotechnology and bioengineering.
[102] Timothy B. Stockwell,et al. Complete Chemical Synthesis, Assembly, and Cloning of a Mycoplasma genitalium Genome , 2008, Science.
[103] A. Ellington,et al. Residue-specific incorporation of unnatural amino acids into proteins in vitro and in vivo. , 2013, Methods in molecular biology.
[104] Cem Albayrak,et al. Using E. coli-based cell-free protein synthesis to evaluate the kinetic performance of an orthogonal tRNA and aminoacyl-tRNA synthetase pair. , 2013, Biochemical and biophysical research communications.
[105] David A Weitz,et al. Protein expression, aggregation, and triggered release from polymersomes as artificial cell-like structures. , 2012, Angewandte Chemie.
[106] Henrike Niederholtmeyer,et al. Implementation of cell-free biological networks at steady state , 2013, Proceedings of the National Academy of Sciences.
[107] Inchan Kwon,et al. Controlling enzyme inhibition using an expanded set of genetically encoded amino acids , 2013, Biotechnology and bioengineering.
[108] W. Myers,et al. Nuclear resonance vibrational spectroscopy and electron paramagnetic resonance spectroscopy of 57Fe-enriched [FeFe] hydrogenase indicate stepwise assembly of the H-cluster. , 2013, Biochemistry.
[109] Teruo Fujii,et al. In vitro regulatory models for systems biology. , 2013, Biotechnology advances.
[110] Peter G Schultz,et al. Adding new chemistries to the genetic code. , 2010, Annual review of biochemistry.
[111] Dong-Myung Kim,et al. Applications of cell‐free protein synthesis in synthetic biology: Interfacing bio‐machinery with synthetic environments , 2013, Biotechnology journal.
[112] Dong-Myung Kim,et al. Prolonged production of proteins in a cell-free protein synthesis system using polymeric carbohydrates as an energy source , 2011 .
[113] V. Noireaux,et al. An E. coli cell-free expression toolbox: application to synthetic gene circuits and artificial cells. , 2012, ACS synthetic biology.
[114] Bradley Charles Bundy,et al. Cell-free unnatural amino acid incorporation with alternative energy systems and linear expression templates. , 2014, New biotechnology.
[115] Le Cong,et al. Multiplex Genome Engineering Using CRISPR/Cas Systems , 2013, Science.