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Published September 29, 2004 | Published
Journal Article Open

Do Electrostatic Interactions with Positively Charged Active Site Groups Tighten the Transition State for Enzymatic Phosphoryl Transfer?

Abstract

The effect of electrostatic interactions on the transition-state character for enzymatic phosphoryl transfer has been a subject of much debate. In this work, we investigate the transition state for alkaline phosphatase (AP) using linear free-energy relationships (LFERs). We determined kcat/KM for a series of aryl sulfate ester monoanions to obtain the Brønsted coefficient, βlg, and compared the value to that obtained previously for a series of aryl phosphorothioate ester dianion substrates. Despite the difference in substrate charge, the observed Brønsted coefficients for AP-catalyzed aryl sulfate and aryl phosphorothioate hydrolysis (−0.76 ± 0.14 and −0.77 ± 0.10, respectively) are strikingly similar, with steric effects being responsible for the uncertainties in these values. Aryl sulfates and aryl phosphates react via similar loose transition states in solution. These observations suggest an apparent equivalency of the transition states for phosphorothioate and sulfate hydrolysis reactions at the AP active site and, thus, negligible effects of active site electrostatic interactions on charge distribution in the transition state.

Additional Information

Copyright © 2004 American Chemical Society. Received April 5, 2004. We are grateful to P. Dervan for generously sharing laboratory space and equipment for the aryl sulfate syntheses, A. Heckel and P. Arora for synthetic advice, J. Zalatan for helpful discussions, P. O'Brien and members of the Herschlag and Rees labs for comments on the manuscript. This work was funded by grants from the NIH to D.H. (GM64798) and D.C.R. (GM45162). I.N-H. is an AHA Predoctoral Fellow.

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