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Transition states for psychrophilic and mesophilic (R)-3-hydroxybutyrate dehydrogenase-catalyzed hydride transfer at sub-zero temperatures

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Date
13/07/2021
Author
Machado, Teresa F. G.
Purg, Miha
Åqvist, Johan
da Silva, Rafael G.
Funder
EPSRC
Grant ID
EP/L016419/1
Keywords
Hydride transfer
Redox reactions
Hydrogen isotopes
QD Chemistry
DAS
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Abstract
(R)-3-Hydroxybutyrate dehydrogenase (HBDH) catalyzes the NADH-dependent reduction of 3-oxocarboxylates to (R)-3-hydroxycarboxylates. The active sites of a pair of cold- and warm-adapted HBDHs are identical except for a single residue, yet kinetics evaluated at −5, 0, and 5 °C show a much higher steady-state rate constant (kcat) for the cold-adapted than for the warm-adapted HBDH. Intriguingly, single-turnover rate constants (kSTO) are strikingly similar between the two orthologues. Psychrophilic HBDH primary deuterium kinetic isotope effects on kcat (Dkcat) and kSTO (DkSTO) decrease at lower temperatures, suggesting more efficient hydride transfer relative to other steps as the temperature decreases. However, mesophilic HBDH Dkcat and DkSTO are generally temperature-independent. The DkSTO data allowed calculation of intrinsic primary deuterium kinetic isotope effects. Intrinsic isotope effects of 4.2 and 3.9 for cold- and warm-adapted HBDH, respectively, at 5 °C, supported by quantum mechanics/molecular mechanics calculations, point to a late transition state for both orthologues. Conversely, intrinsic isotope effects of 5.7 and 3.1 for cold- and warm-adapted HBDH, respectively, at −5 °C indicate the transition state becomes nearly symmetric for the psychrophilic enzyme, but more asymmetric for the mesophilic enzyme. His-to-Asn and Asn-to-His mutations in the psychrophilic and mesophilic HBDH active sites, respectively, swap the single active-site position where these orthologues diverge. At 5 °C, the His-to-Asn mutation in psychrophilic HBDH decreases Dkcat to 3.1, suggesting a decrease in transition-state symmetry, while the His-to-Asn mutation in mesophilic HBDH increases Dkcat to 4.4, indicating an increase in transition-state symmetry. Hence, temperature adaptation and a single divergent active-site residue may influence transition-state geometry in HBDHs.
Citation
Machado , T F G , Purg , M , Åqvist , J & da Silva , R G 2021 , ' Transition states for psychrophilic and mesophilic (R)-3-hydroxybutyrate dehydrogenase-catalyzed hydride transfer at sub-zero temperatures ' , Biochemistry , vol. 60 , no. 27 , pp. 2186–2194 . https://doi.org/10.1021/acs.biochem.1c00322
Publication
Biochemistry
Status
Peer reviewed
DOI
https://doi.org/10.1021/acs.biochem.1c00322
ISSN
0006-2960
Type
Journal article
Rights
Copyright © 2021 American Chemical Society. This work has been made available online in accordance with publisher policies or with permission. Permission for further reuse of this content should be sought from the publisher or the rights holder. This is the author created accepted manuscript following peer review and may differ slightly from the final published version. The final published version of this work is available at https://doi.org/10.1021/acs.biochem.1c00322.
Description
This work was supported by the Engineering and Physical Sciences Research Council (EPSRC) (Grant EP/L016419/1) via a CRITICAT Centre for Doctoral Training studentship to T.F.G.M., and by the Swedish Research Council and KAW Foundation grants to J.Å.
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  • University of St Andrews Research
URI
http://hdl.handle.net/10023/25583

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