Abstract
Bond bundle analysis is used to investigate enzymatic catalysis in the ketosteroid isomerase (KSI) active site. We identify the unique bonding regions in five KSI systems, including those exposed to applied oriented electric fields and those with amino acid mutations, and calculate the precise redistribution of electron density and other regional properties that accompanies either enhancement or inhibition of KSI catalytic activity. We find that catalytic enhancement results from promoting both inter- and intra-molecular electron density redistribution, between bond bundles and bond wedges within the KSI-docked substrate molecule, in the forward direction of the catalyzed reaction. Though the redistribution applies to both types of perturbed systems, and is thus suggestive of a general catalytic role, we observe that bond properties (e.g. volume vs. energy vs. electron count) can respond independently and disproportionately depending on the type of perturbation. We conclude that the resulting catalytic enhancement/inhibition proceeds via different mechanisms, where some bond properties are utilized more by one type of perturbation than the other. Additionally, we find that the correlations between bond wedge properties and catalyzed reaction barrier energies are additive to predict those of bond bundles and atomic basins, providing a rigorous grounding for connecting changes in local charge density to resulting shifts in reaction barrier energy.
Supplementary materials
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Supplementary information
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• 3D depictions of some of the regions discussed in the manuscript
• Coordinates and energies of ab-initio calculations
• Atomic basin, bond bundle, and bond wedge tabulated integration values with many more
properties than are included in this manuscript
• Mmulti-variable bar charts of simplified regional property correlations
• Plots of fits of each region and property with reaction barrier energy
• Correlations among regional properties
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Source code for analysis used in manuscript
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Source code for the gradient bundle decomposition algorithm and for the post-processing statistical analysis and plotting presented in the manuscript.
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