Hydrogen Tunneling in Enzyme Reactions

Primary and secondary protium-to-tritium (H/T) and deuterium-to-tritium (D/T) kinetic isotope effects for the catalytic oxidation of benzyl alcohol to benzaldehyde by yeast alcohol dehydrogenase (YADH) at 25 degrees Celsius have been determined. Previous studies showed that this reaction is nearly o...

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Veröffentlicht in:Science (American Association for the Advancement of Science) 1989-03, Vol.243 (4896), p.1325-1330
Hauptverfasser: Cha, Yuan, Murray, Christopher J., Klinman, Judith P.
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Sprache:eng
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Zusammenfassung:Primary and secondary protium-to-tritium (H/T) and deuterium-to-tritium (D/T) kinetic isotope effects for the catalytic oxidation of benzyl alcohol to benzaldehyde by yeast alcohol dehydrogenase (YADH) at 25 degrees Celsius have been determined. Previous studies showed that this reaction is nearly or fully rate limited by the hydrogen-transfer step. Semiclassical mass considerations that do not include tunneling effects would predict that k$_{\text{H}}$/k$_{\text{T}}$ = (k$_{\text{D}}$/k$_{\text{T}}$)$^{3.26}$, where k$_{\text{H}}$, k$_{\text{D}}$, and k$_{\text{T}}$ are the rate constants for the reaction of protium, deuterium, and tritium derivatives, respectively. Significant deviations from this relation have now been observed for both primary and especially secondary effects, such that experimental H/T ratios are much greater than those calculated from the above expression. These deviations also hold in the temperature range from 0 to 40 degrees Celsius. Such deviations were previously predicted to result from a reaction coordinate containing a significant contribution from hydrogen tunneling.
ISSN:0036-8075
1095-9203
DOI:10.1126/science.2646716