bioRxiv · 10.1101/2025.07.17.664155
Deciphering the evolutionary origin of the stereoselectivity of short-chain dehydrogenases in the oxidation of the monoterpenol 1-borneol
Abstract
Enzyme engineering has produced numerous methods to optimize enzymes for biotechnological processes; however, less is known about how natural evolution creates new functionalities. We investigate the evolutionary emergence of enantioselectivity in plant borneol dehydrogenases (BDHs), which feature hydrophobic active-sites and are enantioselective towards dibornane-type monoterpenols. Ancestral sequence reconstruction provided a trajectory from the oldest unselective BDH ancestor N30 (E=12) toward a more recent selective ancestor N32, involving 19 mutations: 18 mutations are peripheral, one (I111L) occurs in the active-site. The mutation L111I in the hydrophobic pocket increased the selectivity of N30, while the back-mutation I111L decreased the selectivity of N32. Additional peripheral mutations (V136L/G169A/V183I) were required for high selectivity. Crystal structures suggested that protein dynamics, rather than structural changes shape these catalytic properties; this was confirmed by ML/MM simulations of ligand binding. Funnel-metadynamics simulations revealed a correlation between the active-sites solvent-accessible surface area (SASA) and selectivity. This potential evolutionary pathway shapes enantioselectivity, and guides future enzyme engineering campaigns.
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Zuson, J., Helmer, C. P. O., Di Geronimo, B., Chanique, A. M., Kavciakova, K., Teijeiro, R. J., Drienovska, I., Brickel, S., Kracher, D., Kamerlin, L., Loll, B., Kourist, R.. 2025-07-18. Deciphering the evolutionary origin of the stereoselectivity of short-chain dehydrogenases in the oxidation of the monoterpenol 1-borneol. https://doi.org/10.1101/2025.07.17.664155
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