2015
DOI: 10.1021/acs.biochem.5b00958
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Dissecting Proton Delocalization in an Enzyme’s Hydrogen Bond Network with Unnatural Amino Acids

Abstract: Extended hydrogen bond networks are a common structural motif of enzymes. A recent analysis proposed quantum delocalization of protons as a feature present in the hydrogen bond network spanning a triad of tyrosines (Y16, Y32, and Y57) in the active site of ketosteroid isomerase (KSI), contributing to its unusual acidity and large isotope shift. In this study, we utilized amber suppression to substitute each tyrosine residue with 3-chlorotyrosine to test the delocalization model and the proton affinity balance … Show more

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Cited by 20 publications
(47 citation statements)
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“…Similar to the effect on the catalysis of the slow substrate 5(10)-estrene-3,17-dione (Table S1) 10 , small but systematic changes were observed in these conservative variants, making them ideal candidates to critically test the electric field/activation free energy correlations mapped by vibrational Stark spectroscopy. 3 …”
Section: Resultsmentioning
confidence: 74%
See 1 more Smart Citation
“…Similar to the effect on the catalysis of the slow substrate 5(10)-estrene-3,17-dione (Table S1) 10 , small but systematic changes were observed in these conservative variants, making them ideal candidates to critically test the electric field/activation free energy correlations mapped by vibrational Stark spectroscopy. 3 …”
Section: Resultsmentioning
confidence: 74%
“…More specifically in the case of KSI (and a number of other enzymes), the removal of specific H-bond interactions prevents a direct comparison of electrostatic stabilization with a widely-discussed alternative proposal that KSI’s active site preferentially forms a strong, short H-bond with the intermediate relative to the substrate to provide additional stabilization energy. 7,8 Therefore, in this work we introduce more subtle and conservative changes by site-specifically replacing each of the key Tyr residues with 3-Cl-Tyr (Cl-Y) 9 in the KSI active site 10 to provide a critical test of the earlier analysis on electric field/activation free energy correlations. We then probe the physical basis of the large electric field and demonstrate the functional connection between the preferential H-bond interactions and electrostatic stabilization.…”
Section: Introductionmentioning
confidence: 99%
“…If the asymmetrically labeled F n Y 32 side chains have multiple rotameric states, 18,49 it has little influence on their E °’s.…”
Section: Discussionmentioning
confidence: 99%
“…As shown in Table I, in Cl-Tyr16 KSI D40N f 16 /f 57 is increased by 1.34-fold compared to the unlabeled protein, which is in excellent agreement with the experimentally measured value of 1.45-fold. 33 In contrast, chlorinating Tyr57 reduces proton sharing in the triad, which decreases f 16 /f 57 by 1.2 fold compared to the unlabeled case.…”
Section: A Change In Partial Ionizations In Response To Mutationsmentioning
confidence: 99%
“…2a and 2b, respectively. In aqueous solution, chlorination lowers the side-chain pK a of tyrosine by 1.8 units, 33 which is equivalent to stabilizing the deprotonated state by 2.5 kcal/mol. If one were to assume a simple two-state model to describe the proton transfer between Tyr16 and Tyr57, i.e., H16 is attached to either one tyrosine or the other (Fig.…”
Section: A Change In Partial Ionizations In Response To Mutationsmentioning
confidence: 99%