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Towards Rational Computational Engineering of Psychrophilic Enzymes

Permanent link
https://hdl.handle.net/10037/17530
DOI
https://doi.org/10.1038/s41598-019-55697-4
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Date
2019-12-16
Type
Journal article
Tidsskriftartikkel
Peer reviewed

Author
Socan, Jaka; Isaksen, Geir Villy; Brandsdal, Bjørn Olav; Åqvist, Johan Lennart Gösta
Abstract
Cold-adapted enzymes from psychrophilic species achieve their high catalytic efficiency at low temperature by a different partitioning of the activation free energy into its enthalpic and entropic components, compared to orthologous mesophilic enzymes. Their lower activation enthalpy, partly compensated by an increased entropic penalty, has been suggested to originate from changes in flexibility of the protein surface. Multiple sequence alignments of psychrophilic and mesophilic enzymes also show characteristic motifs located in surface loops of the protein. Here, we use computer simulations to examine the effects of a number of designed surface mutations of psychrophilic and mesophilic elastases on the temperature dependence of the catalyzed peptide cleavage reaction. For each of 14 mutant enzyme variants we report calculations of their thermodynamic activation parameters. The results show that substitution of psychrophilic loop residues into the mesophilic enzyme consistently changes both the activation parameters and loop flexibilities towards the former, and vice versa for opposite substitutions.
Publisher
Nature Research
Citation
Socan J, Isaksen GVI, Brandsdal BO, Åqvist JLG. Towards Rational Computational Engineering of Psychrophilic Enzymes. Scientific Reports. 2019;9(19147)
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