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
- 3 July 2002
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 99 (15), 9715-9720
- https://doi.org/10.1073/pnas.142220099
Abstract
Tyrosyl–tRNA synthetase (TyrRS) from Escherichia coli was engineered to preferentially recognize 3-iodo-l-tyrosine rather than l-tyrosine for the site-specific incorporation of 3-iodo-l-tyrosine into proteins in eukaryotic translation systems. The wild-type TyrRS does not recognize 3-iodo-l-tyrosine, because of the bulky iodine substitution. On the basis of the reported crystal structure of Bacillus stearothermophilus TyrRS, three residues, Y37, Q179, and Q195, in the l-tyrosine-binding site were chosen for mutagenesis. Thirty-four single amino acid replacements and 16 of their combinations were screened by in vitro biochemical assays. A combination of the Y37V and Q195C mutations changed the amino acid specificity in such a way that the variant TyrRS activates 3-iodo-l-tyrosine 10-fold more efficiently than l-tyrosine. This engineered enzyme, TyrRS(V37C195), was tested for use in the wheat germ cell-free translation system, which has recently been significantly improved, and is now as productive as conventional recombinant systems. During the translation in the wheat germ system, an E. coli suppressor tRNATyr was not aminoacylated by the wheat germ enzymes, but was aminoacylated by the E. coli TyrRS(V37C195) variant with 3-iodo-l-tyrosine. After the use of the 3-iodotyrosyl–tRNA in translation, the resultant uncharged tRNA could be aminoacylated again in the system. A mass spectrometric analysis of the produced protein revealed that more than 95% of the amino acids incorporated for an amber codon were iodotyrosine, whose concentration was only twice that of l-tyrosine in the translation. Therefore, the variant enzyme, 3-iodo-l-tyrosine, and the suppressor tRNA can serve as an additional set orthogonal to the 20 endogenous sets in eukaryotic in vitro translation systems.Keywords
This publication has 47 references indexed in Scilit:
- Adding l-3-(2-Naphthyl)alanine to the Genetic Code of E. coliJournal of the American Chemical Society, 2002
- Crucial Role of the HIGH-loop Lysine for the Catalytic Activity of Arginyl-tRNA SynthetasePublished by Elsevier ,2001
- A Mutant Escherichia coli Tyrosyl-tRNA Synthetase Utilizes the Unnatural Amino Acid Azatyrosine More Efficiently than TyrosineJournal of Biological Chemistry, 2000
- Quadruplet codons: implications for code expansion and the specification of translation step sizeJournal of Molecular Biology, 2000
- Structure of a replication-terminator protein complexed with DNANature, 1996
- Receptor-Binding Affinities of Human Epidermal Growth Factor Variants Having Unnatural Amino Acid Residues in Position 23Biochemistry, 1994
- Molecular Recognition of the Identity-determinant Set of Isoleucine Transfer RNA from Escherichia coliJournal of Molecular Biology, 1994
- Amino acid substrate specificity of Escherichia coli phenylalanyl-tRNA synthetase altered by distinct mutationsJournal of Molecular Biology, 1991
- Conformation of guanosine 5'-diphosphate as bound to a human c-Ha-ras mutant protein: a nuclear Overhauser effect studyBiochemistry, 1989
- Structure of tyrosyl-tRNA synthetase refined at 2.3 Å resolutionJournal of Molecular Biology, 1989