Kinetic mechanism of histidinol dehydrogenase: histidinol binding and exchange reactions
- 16 June 1987
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 26 (12) , 3369-3373
- https://doi.org/10.1021/bi00386a018
Abstract
Salmonella typhimurium histidinol dehydrogenase produces histidine from the amino alcohol histidinol by two sequential NAD-linked oxidations which form and oxidize a stable enzyme-bound histidinaldehyde intermediate. The enzyme was found to catalyze the exchange of 3H between histidol and [4(R)-3H]NADH and between NAD and [4(S)-3H]NADH. The latter reaction proceeded at rates greater than kcat for the net reaction and was about 3-fold faster than the former. Histidine did not support an NAD/NADH exchange, demonstrating kinetic irreversibility in the second half-reaction. Specific activity measurements on [3H]histidinol produced during the histidinol/NADH exchange reaction showed that only a single hydrogen was exchanged between the two reactants, demonstrating that under the conditions employed this exchange reaction arises only from the reversal of the alcohol dehydrogenase step and not the aldehyde dehydrogenase reaction. The kinetics of the NAD/NADH exchange reaction demonstrated a hyperbolic dependence on the concentration of NAD and NADH when the two were present in a 1:2 molar ratio. The histidinol/NADH exchange showed severe inhibition by high NAD and NADH under the same conditions, indicating that histidinol cannot dissociate directly from the ternary enzyme-NAD-histidinol complex; in other words, the binding of substrate is ordered with histidinol leading. Binding studies indicated that [3H]histidinol bound to 1.7 sites on the dimeric enzyme (0.85 site/monomer) with a KD of 10 .mu.M. No binding of [3H]NAD or [3]NADH was detected. The nucleotides could, however, displace histidinol dehydrogenase form Cibacron Blue-agarose. We conclude that the first half-reaction of histidinol dehydrogenase follows an ordered mechanism in which L-histidinol leads, in confirmation of the mechanism proposed from steady-state kinetics [Burger, E., and Gorisch, H. (1981) Eur. J. Biochem. 116, 137-142].This publication has 6 references indexed in Scilit:
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