Altering the sequence specificity of HaeIII methyltransferase by directed evolution using in vitro compartmentalization
Open Access
- 1 January 2004
- journal article
- research article
- Published by Oxford University Press (OUP) in Protein Engineering, Design and Selection
- Vol. 17 (1), 3-11
- https://doi.org/10.1093/protein/gzh001
Abstract
Engineering the specificity of DNA‐modifying enzymes has proven extremely challenging, as sequence recognition by these enzymes is poorly understood. Here we used directed evolution to generate a variant of HaeIII methyltransferase that efficiently methylates a novel target site. M.HaeIII methylates the internal cytosine of the canonical sequence GGCC, but there is promiscuous methylation of a variety of non‐canonical sites, notably AGCC, at a reduced rate. Using in vitro compartmentalization (IVC), libraries of M.HaeIII genes were selected for the ability to efficiently methylate AGCC. A two‐step mutagenesis strategy, involving initial randomization of DNA‐contacting residues followed by randomization of the loop that lies behind these residues, yielded a mutant with a 670‐fold improvement in catalytic efficiency (kcat/KmDNA) using AGCC and a preference for AGCC over GGCC. The mutant methylates three sites efficiently (AGCC, CGCC and GGCC). Indeed, it methylates CGCC slightly more efficiently than AGCC. However, the mutant discriminates against other non‐canonical sites, including TGCC, as effectively as the wild‐type enzyme. This study provides a rare example of a laboratory‐evolved enzyme whose catalytic efficiency surpasses that of the wild‐type enzyme with the principal substrate.Keywords
This publication has 21 references indexed in Scilit:
- Conformational diversity and protein evolution – a 60-year-old hypothesis revisitedTrends in Biochemical Sciences, 2003
- Protein engineering 20 years onNature Reviews Molecular Cell Biology, 2002
- An efficient system for the evolution of aminoacyl-tRNA synthetase specificityNature Biotechnology, 2002
- Directed Evolution of Restriction Endonuclease BstYI to Achieve Increased Substrate SpecificityJournal of Molecular Biology, 2002
- The Escherichia coli Dam DNA Methyltransferase Modifies DNA in a Highly Processive ReactionJournal of Molecular Biology, 2002
- Circular permutation of DNA cytosine-N4 methyltransferases: in vivo coexistence in the BcnI system and in vitro probing by hybrid formationNucleic Acids Research, 2002
- Changing the target base specificity of the EcoRV DNA methyltransferase by rational de novo protein-designNucleic Acids Research, 2001
- In vitro Evolution of Beta-glucuronidase into a Beta-galactosidase Proceeds Through Non-specific IntermediatesJournal of Molecular Biology, 2001
- The crystal structure of Haelll methyltransferase covalently complexed to DNA: An extrahelical cytosine and rearranged base pairingCell, 1995
- Hhal methyltransferase flips its target base out of the DNA helixCell, 1994