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Natter Perdiguero, A.

Publications and source records attributed to Natter Perdiguero, A..

2 recordsLinked to original sources

Genetic incorporation of diverse non-canonical amino acids for histidine substitution

Using genetic code expansion, canonical amino acid residues can be site-specifically substituted by non-canonical amino acids (ncAAs) with modified chemical properties. This technique has enabled detailed enzymatic studies, the design of enzymes that catalyze novel reactions, and the engineering of enzymes with improved function. In proteins, histidine can play versatile roles in catalysis including as an acid, a base, a nucleophile, and a coordinating ligand to a catalytic metal. However, the current scope of histidine-like ncAAs that can be incorporated is limited. Herein, we develop a toolkit consisting of nine new aminoacyl-tRNA synthetase/tRNA pairs for the site-specific genetic encoding of an expanded set of 12 new histidine-like ncAAs. The 12 ncAAs feature broadly tuned nitrogen pKaH, alternative heterocycles, and varying substitution patterns. We profile the substrate specificity of the developed aaRS/tRNA pairs and uncover many mutually orthogonal substrate specificities, which we validate for six combinations of dual encoded histidine-like ncAAs. We expect that the tools presented herein will be broadly applicable to study histidine residues in catalysis and to tune the properties of histidine residues for enzyme engineering and design.

synthetic biology↗

Hydrophobic tuning with non-canonical amino acids in a copper metalloenzyme

Hydrophobicity controls many aspects of protein and enzyme function. Although hydrophobic tuning can be achieved to a limited extent with canonical amino acids, the incorporation of non-canonical amino acids (ncAAs) further extends this ability to enable new and improved functionality. Herein, we engineer an aminoacyl-tRNA synthetase/tRNA pair for the site-specific genetic encoding of a set of bulky, hydrophobic amino acids, namely cyclopentylalanine, cyclohexylalanine, and cycloheptylalanine. With the resulting orthogonal translations systems, we demonstrate the utility of ncAA-based hydrophobic tuning to engineer a bacterial laccase, which is both a classical metalloenzyme and a high-value catalyst for industrial processes. The resulting mutations conveyed significant improvements in catalytic activity, particularly kcat and total turnover number. The redox potential and structure-function relationships were examined to elucidate the source of this improved functionality. We envision that these tools for hydrophobic tuning will be highly valuable for general enzyme engineering and also in other fields, including peptide chemistry.

synthetic biology↗