Synthesis and site-directed fluorescence labeling of azido proteins using eukaryotic cell-free orthogonal translation systems.
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Helmut Merk | Stefan Kubick | S. Kubick | Robert B Quast | Michael Gerrits | Iris Claussnitzer | H. Merk | M. Gerrits | Iris Claussnitzer | R. Quast
[1] V. Dötsch,et al. Cell‐free expression as an emerging technique for the large scale production of integral membrane protein , 2006, The FEBS journal.
[2] Michael M. Madden,et al. A photoinducible 1,3-dipolar cycloaddition reaction for rapid, selective modification of tetrazole-containing proteins. , 2008, Angewandte Chemie.
[3] H. Vogel,et al. A general method for the covalent labeling of fusion proteins with small molecules in vivo , 2003, Nature Biotechnology.
[4] Frank F. Bier,et al. Synthesis of membrane proteins in eukaryotic cell‐free systems , 2013 .
[5] Jason W. Chin,et al. Designer proteins: applications of genetic code expansion in cell biology , 2012, Nature Reviews Molecular Cell Biology.
[6] P. Schimmel,et al. A bacterial amber suppressor in Saccharomyces cerevisiae is selectively recognized by a bacterial aminoacyl-tRNA synthetase , 1990, Molecular and cellular biology.
[7] T. Ohtsuki,et al. Design of carrier tRNAs and selection of four-base codons for efficient incorporation of various nonnatural amino acids into proteins in Spodoptera frugiperda 21 (Sf21) insect cell-free translation system. , 2006, Journal of bioscience and bioengineering.
[8] Peter G. Schultz,et al. A chemical toolkit for proteins — an expanded genetic code , 2006, Nature Reviews Molecular Cell Biology.
[9] Jung-Won Keum,et al. Prolonged cell‐free protein synthesis using dual energy sources: Combined use of creatine phosphate and glucose for the efficient supply of ATP and retarded accumulation of phosphate , 2007, Biotechnology and bioengineering.
[10] U. RajBhandary,et al. Twenty-first aminoacyl-tRNA synthetase–suppressor tRNA pairs for possible use in site-specific incorporation of amino acid analogues into proteins in eukaryotes and in eubacteria , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[11] O. Nishimura,et al. Protein prenylation in an insect cell‐free protein synthesis system and identification of products by mass spectrometry , 2007, Proteomics.
[12] S. Yokoyama,et al. Protein photo-cross-linking in mammalian cells by site-specific incorporation of a photoreactive amino acid , 2005, Nature Methods.
[13] R. Tsien,et al. The Fluorescent Toolbox for Assessing Protein Location and Function , 2006, Science.
[14] S. Yokoyama,et al. Site-specific incorporation of an unnatural amino acid into proteins in mammalian cells. , 2002, Nucleic acids research.
[15] Y Endo,et al. A highly efficient and robust cell-free protein synthesis system prepared from wheat embryos: plants apparently contain a suicide system directed at ribosomes. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[16] Peter G Schultz,et al. Efficient incorporation of unnatural amino acids into proteins in Escherichia coli , 2006, Nature Methods.
[17] P. Schimmel,et al. A single base pair dominates over the novel identity of an Escherichia coli tyrosine tRNA in Saccharomyces cerevisiae. , 1991, Molecular and cellular biology.
[18] Michael W. Davidson,et al. The fluorescent protein palette: tools for cellular imaging. , 2009, Chemical Society reviews.
[19] James R. Swartz,et al. High‐level cell‐free synthesis yields of proteins containing site‐specific non‐natural amino acids , 2009, Biotechnology and bioengineering.
[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] Gerd Ulrich Nienhaus,et al. Fluorescent proteins for live cell imaging: Opportunities, limitations, and challenges , 2009, IUBMB life.
[22] Peter G Schultz,et al. An Expanded Eukaryotic Genetic Code , 2003, Science.
[23] H. Pelham,et al. An efficient mRNA-dependent translation system from reticulocyte lysates. , 1976, European journal of biochemistry.
[24] B. Paterson,et al. Efficient translation of tobacco mosaic virus RNA and rabbit globin 9S RNA in a cell-free system from commercial wheat germ. , 1973, Proceedings of the National Academy of Sciences of the United States of America.
[25] S. Semrau,et al. Protein Incorporation in Giant Lipid Vesicles under Physiological Conditions , 2010, Chembiochem : a European journal of chemical biology.
[26] A. Tarentino,et al. Demonstration of peptide:N-glycosidase F activity in endo-beta-N-acetylglucosaminidase F preparations. , 1984, The Journal of biological chemistry.
[27] Stefan Kubick,et al. In Vitro Translation in an Insect-Based Cell-Free System , 2003 .
[28] C. Weise,et al. Chemoselective Staudinger-phosphite reaction of azides for the phosphorylation of proteins. , 2009, Angewandte Chemie.
[29] Geoffrey Chang,et al. The past, present and future of cell-free protein synthesis. , 2005, Trends in biotechnology.
[30] P. Schultz,et al. Site-specific incorporation of biophysical probes into proteins. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[31] Daisuke Kiga,et al. An engineered Escherichia coli tyrosyl–tRNA synthetase for site-specific incorporation of an unnatural amino acid into proteins in eukaryotic translation and its application in a wheat germ cell-free system , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[32] Atsushi Miyawaki,et al. Lighting up cells: labelling proteins with fluorophores. , 2003, Nature cell biology.
[33] A. Spirin,et al. A continuous cell-free translation system capable of producing polypeptides in high yield. , 1988, Science.
[34] M. Sisido,et al. FRET analysis of protein conformational change through position-specific incorporation of fluorescent amino acids , 2006, Nature Methods.
[35] M. Sisido,et al. Efficient Incorporation of Nonnatural Amino Acids with Large Aromatic Groups into Streptavidin in In Vitro Protein Synthesizing Systems , 1999 .
[36] Shigeyuki Yokoyama,et al. An efficient mammalian cell-free translation system supplemented with translation factors. , 2006, Protein expression and purification.
[37] W. Stiege,et al. Cell-free synthesis of functional and endotoxin-free antibody Fab fragments by translocation into microsomes. , 2012, BioTechniques.
[38] P. Schultz,et al. Adding amino acids with novel reactivity to the genetic code of Saccharomyces cerevisiae. , 2003, Journal of the American Chemical Society.
[39] W. Bannwarth,et al. A Novel Method for the Labelling of Peptides and Proteins through a Bioorthogonal Staudinger Reaction by Using 2‐Cyanoethyl Phosphoramidites , 2012, Chembiochem : a European journal of chemical biology.
[40] Lei Wang,et al. Improving orthogonal tRNA-synthetase recognition for efficient unnatural amino acid incorporation and application in mammalian cells. , 2009, Molecular bioSystems.
[41] S. Kubick,et al. The protease‐activated receptor 1 possesses a functional and cleavable signal peptide which is necessary for receptor expression , 2012, FEBS letters.
[42] Shigemichi Nishikawa,et al. Establishment and characterization of cell-free translation/glycosylation in insect cell (Spodoptera frugiperda 21) extract prepared with high pressure treatment , 2001, Applied Microbiology and Biotechnology.
[43] Volker A. Erdmann,et al. Chapter 2 In Vitro Synthesis of Posttranslationally Modified Membrane Proteins , 2009 .
[44] Masaaki Suzuki,et al. Detection of structural changes in a cofactor binding protein by using a wheat germ cell‐free protein synthesis system coupled with unnatural amino acid probing , 2007, Proteins.
[45] Jennifer A. Prescher,et al. A comparative study of bioorthogonal reactions with azides. , 2006, ACS chemical biology.