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Designing logical codon reassignment – Expanding the chemistry in biology

Chemical Science · 2014 · Vol. 6(1) · pp. 50–69
Anaëlle DumasLukas LercherChristopher D. SpicerBenjamin G. Davis

Abstract

Over the last decade, the ability to genetically encode unnatural amino acids (UAAs) has evolved rapidly. The programmed incorporation of UAAs into recombinant proteins relies on the reassignment or suppression of canonical codons with an amino-acyl tRNA synthetase/tRNA (aaRS/tRNA) pair, selective for the UAA of choice. In order to achieve selective incorporation, the aaRS should be selective for the designed tRNA and UAA over the endogenous amino acids and tRNAs. Enhanced selectivity has been achieved by transferring an aaRS/tRNA pair from another kingdom to the organism of interest, and subsequent aaRS evolution to acquire enhanced selectivity for the desired UAA. Today, over 150 non-canonical amino acids have been incorporated using such methods. This enables the introduction of a large variety of structures into proteins, in organisms ranging from prokaryote, yeast and mammalian cells lines to whole animals, enabling the study of protein function at a level that could not previously be achieved. While most research to date has focused on the suppression of 'non-sense' codons, recent developments are beginning to open up the possibility of quadruplet codon decoding and the more selective reassignment of sense codons, offering a potentially powerful tool for incorporating multiple amino acids. Here, we aim to provide a focused review of methods for UAA incorporation with an emphasis in particular on the different tRNA synthetase/tRNA pairs exploited or developed, focusing upon the different UAA structures that have been incorporated and the logic behind the design and future creation of such systems. Our hope is that this will help rationalize the design of systems for incorporation of unexplored unnatural amino acids, as well as novel applications for those already known.

RNA and protein synthesis mechanismsChemical Synthesis and AnalysisRNA modifications and cancerGenetic codeTransfer RNAAmino acidAminoacylationComputational biologyBiologyTranslation (biology)Amino Acyl-tRNA SynthetasesSynthetic biologyAminoacyl tRNA synthetase

Funding

  • Engineering and Physical Sciences Research Council
  • Biotechnology and Biological Sciences Research Council
Citations
495
FWCI
12.39
field-weighted impact
References
234
Percentile
99%
vs. same field & year
Citations per year
References
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Annual Review of Biochemistry · 2010 · 1,727 citations
Bioorthogonal Chemistry: Fishing for Selectivity in a Sea of Functionality
Angewandte Chemie International Edition · 2009 · 3,061 citations
Selenocysteine: the 21st amino acid
Molecular Microbiology · 1991 · 680 citations
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