Literature DB >> 29478278

Impact of the access tunnel engineering on catalysis is strictly ligand-specific.

Shubhangi Kaushik1, Sérgio M Marques1,2, Prashant Khirsariya2,3, Kamil Paruch2,3, Lenka Libichova1, Jan Brezovsky1,2, Zbynek Prokop1,2, Radka Chaloupkova1,2, Jiri Damborsky1,2.   

Abstract

The traditional way of rationally engineering enzymes to change their biocatalytic properties utilizes the modifications of their active sites. Another emerging approach is the engineering of structural features involved in the exchange of ligands between buried active sites and the surrounding solvent. However, surprisingly little is known about the effects of mutations that alter the access tunnels on the enzymes' catalytic properties, and how these tunnels should be redesigned to allow fast passage of cognate substrates and products. Thus, we have systematically studied the effects of single-point mutations in a tunnel-lining residue of a haloalkane dehalogenase on the binding kinetics and catalytic conversion of both linear and branched haloalkanes. The hotspot residue Y176 was identified using computer simulations and randomized through saturation mutagenesis, and the resulting variants were screened for shifts in binding rates. Strikingly, opposite effects of the substituted residues on the catalytic efficiency toward linear and branched substrates were observed, which was found to be due to substrate-specific requirements in the critical steps of the respective catalytic cycles. We conclude that not only the catalytic sites, but also the access pathways must be tailored specifically for each individual ligand, which is a new paradigm in protein engineering and de novo protein design. A rational approach is proposed here to address more effectively the task of designing ligand-specific tunnels using computational tools.
© 2018 Federation of European Biochemical Societies.

Entities:  

Keywords:  de novo protein design; enzyme catalysis; enzyme tunnels engineering; haloalkane dehalogenases; protein engineering

Mesh:

Substances:

Year:  2018        PMID: 29478278     DOI: 10.1111/febs.14418

Source DB:  PubMed          Journal:  FEBS J        ISSN: 1742-464X            Impact factor:   5.542


  14 in total

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4.  Evaluation of lipase access tunnels and analysis of substance transport in comparison with experimental data.

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7.  Structural and catalytic effects of surface loop-helix transplantation within haloalkane dehalogenase family.

Authors:  Martin Marek; Radka Chaloupkova; Tatyana Prudnikova; Yukari Sato; Pavlina Rezacova; Yuji Nagata; Ivana Kuta Smatanova; Jiri Damborsky
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9.  Prediction of Ligand Transport along Hydrophobic Enzyme Nanochannels.

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Journal:  Comput Struct Biotechnol J       Date:  2019-06-11       Impact factor: 7.271

10.  Modulating D-amino acid oxidase (DAAO) substrate specificity through facilitated solvent access.

Authors:  Kalyanasundaram Subramanian; Artur Góra; Ruud Spruijt; Karolina Mitusińska; Maria Suarez-Diez; Vitor Martins Dos Santos; Peter J Schaap
Journal:  PLoS One       Date:  2018-06-15       Impact factor: 3.240

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