Cell-free Protein Synthesis from a Release Factor 1 Deficient Escherichia coli Activates Efficient and Multiple Site-specific Nonstandard Amino Acid Incorporation
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Michael C. Jewett | Farren J. Isaacs | Adrian D. Haimovich | Neil L. Kelleher | Seok Hoon Hong | N. Kelleher | M. Jewett | Ioanna Ntai | A. Haimovich | S. Hong | Ioanna Ntai
[1] R. Sauer,et al. Proline Residues at the C Terminus of Nascent Chains Induce SsrA Tagging during Translation Termination* 210 , 2002, The Journal of Biological Chemistry.
[2] James Swartz,et al. Amino acid stabilization for cell-free protein synthesis by modification of the Escherichia coli genome. , 2004, Metabolic engineering.
[3] James R. Swartz,et al. Transforming biochemical engineering with cell-free biology , 2012 .
[4] T. Yamane,et al. Reduction of protein degradation by use of protease-deficient mutants in cell-free protein synthesis system of Escherichia coli. , 2002, Journal of bioscience and bioengineering.
[5] J. Chin,et al. Evolved orthogonal ribosomes enhance the efficiency of synthetic genetic code expansion , 2007, Nature Biotechnology.
[6] Peter G Schultz,et al. Synthesis of site-specific antibody-drug conjugates using unnatural amino acids , 2012, Proceedings of the National Academy of Sciences.
[7] Shigeyuki Yokoyama,et al. Codon reassignment in the Escherichia coli genetic code , 2010, Nucleic acids research.
[8] Kim A Woodrow,et al. Cell-free protein synthesis with prokaryotic combined transcription-translation. , 2004, Methods in molecular biology.
[9] T. Umehara,et al. Genetic-code evolution for protein synthesis with non-natural amino acids. , 2011, Biochemical and biophysical research communications.
[10] Michael C Jewett,et al. An integrated cell-free metabolic platform for protein production and synthetic biology , 2008, Molecular systems biology.
[11] 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.
[12] M. Jewett,et al. Mimicking the Escherichia coli cytoplasmic environment activates long‐lived and efficient cell‐free protein synthesis , 2004, Biotechnology and bioengineering.
[13] Rui Gan,et al. Cell-free protein synthesis: applications come of age. , 2012, Biotechnology advances.
[14] M. Jewett,et al. Cell-free synthetic biology: thinking outside the cell. , 2012, Metabolic engineering.
[15] Thomas Huber,et al. Multiple-site labeling of proteins with unnatural amino acids. , 2012, Angewandte Chemie.
[16] Peter G. Schultz,et al. Genomically Recoded Organisms Expand Biological Functions , 2013, Science.
[17] Matthew D. Schultz,et al. RF1 Knockout Allows Ribosomal Incorporation of Unnatural Amino Acids at Multiple Sites , 2011, Nature chemical biology.
[18] C. A. Thomas,et al. Molecular cloning. , 1977, Advances in pathobiology.
[19] Farren J. Isaacs,et al. Programming cells by multiplex genome engineering and accelerated evolution , 2009, Nature.
[20] 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.
[21] James Swartz,et al. Increasing PCR Fragment Stability and Protein Yields in a Cell-Free System with Genetically Modified Escherichia coli Extracts , 2005, Journal of Molecular Microbiology and Biotechnology.
[22] N. Budisa,et al. Performance Analysis of Orthogonal Pairs Designed for an Expanded Eukaryotic Genetic Code , 2012, PloS one.
[23] Jason W. Chin,et al. Encoding multiple unnatural amino acids via evolution of a quadruplet-decoding ribosome , 2010, Nature.
[24] J. W. Whittaker,et al. Cell-free protein synthesis: the state of the art , 2012, Biotechnology Letters.
[25] Nediljko Budisa,et al. Recent advances in genetic code engineering in Escherichia coli. , 2012, Current opinion in biotechnology.
[26] Takuya Ueda,et al. Cell-free translation reconstituted with purified components , 2001, Nature Biotechnology.
[27] D. Söll,et al. Expanding the Genetic Code of Escherichia coli with Phosphoserine , 2011, Science.
[28] B. E. Kimmel,et al. Optimized clinical performance of growth hormone with an expanded genetic code , 2011, Proceedings of the National Academy of Sciences.
[29] Y. Aoyama,et al. A Concept for Selection of Codon-Suppressor tRNAs Based on Read-Through Ribosome Display in an In Vitro Compartmentalized Cell-Free Translation System , 2012, Journal of nucleic acids.
[30] Peter G Schultz,et al. Protein conjugation with genetically encoded unnatural amino acids. , 2013, Current opinion in chemical biology.
[31] R. Giegé,et al. Ribozyme processed tRNA transcripts with unfriendly internal promoter for T7 RNA polymerase: production and activity , 1998, FEBS letters.
[32] 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 .
[33] Koreaki Ito,et al. The Ribosomal Exit Tunnel Functions as a Discriminating Gate , 2002, Cell.
[34] R. Sauer,et al. SsrA‐mediated peptide tagging caused by rare codons and tRNA scarcity , 1999, The EMBO journal.
[35] 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.
[36] Farren J. Isaacs,et al. Enhanced phosphoserine insertion during Escherichia coli protein synthesis via partial UAG codon reassignment and release factor 1 deletion , 2012, FEBS letters.
[37] Genetic Code: Evolution , 2008 .
[38] Karen M Polizzi. What is synthetic biology? , 2013, Methods in molecular biology.
[39] Colin J Jackson,et al. Improving a natural enzyme activity through incorporation of unnatural amino acids. , 2011, Journal of the American Chemical Society.
[40] Peter G Schultz,et al. An enhanced system for unnatural amino acid mutagenesis in E. coli. , 2010, Journal of molecular biology.
[41] K. Keiler. Biology of trans-translation. , 2008, Annual review of microbiology.
[42] D. Söll,et al. Pyrrolysine analogues as substrates for pyrrolysyl‐tRNA synthetase , 2006, FEBS letters.
[43] P. Schultz,et al. Adding amino acids with novel reactivity to the genetic code of Saccharomyces cerevisiae. , 2003, Journal of the American Chemical Society.
[44] Jim Swartz,et al. Developing cell-free biology for industrial applications , 2006, Journal of Industrial Microbiology and Biotechnology.
[45] J. Sambrook,et al. Molecular Cloning: A Laboratory Manual , 2001 .
[46] D. Söll,et al. Decameric SelA•tRNASec Ring Structure Reveals Mechanism of Bacterial Selenocysteine Formation , 2013, Science.
[47] James R. Swartz,et al. High‐level cell‐free synthesis yields of proteins containing site‐specific non‐natural amino acids , 2009, Biotechnology and bioengineering.
[48] Michael C Jewett,et al. Cell-free biology: exploiting the interface between synthetic biology and synthetic chemistry. , 2012, Current opinion in biotechnology.
[49] Susan E. Brown,et al. Using a genetically encoded fluorescent amino acid as a site-specific probe to detect binding of low-molecular-weight compounds. , 2011, Assay and drug development technologies.
[50] Joseph D Puglisi,et al. Quantitative polysome analysis identifies limitations in bacterial cell-free protein synthesis. , 2005, Biotechnology and bioengineering.
[51] Peter G Schultz,et al. Adding new chemistries to the genetic code. , 2010, Annual review of biochemistry.
[52] Matthew D. Schultz,et al. Release Factor One Is Nonessential in Escherichia coli , 2012, ACS chemical biology.
[53] K. Janes. When microarrays Met epidermal-cell migration , 2008, Molecular systems biology.