Abstract
In the present study, we address the effect of active site structure and dynamics of different dihydrofolate reductase (DHFR) isoforms on the pK a of the bound substrate 7,8-dihydrofolate, in an attempt to understand possible evolutionary trends. We apply a hybrid QM/MM free energy perturbation method to estimate the pK a of the N5 position of the bound substrate. We observe a gradual increase in N5 basicity as we move from primitive to more evolved DHFR isoforms. Structural analysis of these isoforms reveals a gradual sequestering of water molecules from the active site in the more evolved enzymes, thereby modulating the local dielectric environment near the substrate. Furthermore, the present study reveals a clear correlation between active site hydration and the N5 pK a of the substrate. We emphasize the role of the M20 loop in controlling the active site hydration level, via a preorganized active site with a more hydrophobic environment and reduced loop flexibility as evolution progresses from bacterial to the human enzyme.
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CITATION STYLE
Mhashal, A. R., Pshetitsky, Y., Cheatum, C. M., Kohen, A., & Major, D. T. (2018). Evolutionary Effects on Bound Substrate p K a in Dihydrofolate Reductase. Journal of the American Chemical Society, 140(48), 16650–16660. https://doi.org/10.1021/jacs.8b09089
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