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The hydroxylation of tryptophan
Z Maskos1, J D Rush, W H Koppenol
1Biodynamics Institute, Louisiana State University, Baton Rouge 70803-1800.
Archives of Biochemistry and Biophysics
|August 1, 1992
Summary
Chemical hydroxylation of tryptophan using Fenton, Udenfriend, and ionizing radiation reactions produces similar products. Hydroxyl radicals attack tryptophan
Area of Science:
- Biochemistry
- Chemical Kinetics
- Radiation Chemistry
Background:
- Tryptophan undergoes hydroxylation via various chemical and radiation-induced pathways.
- Understanding the reaction mechanisms and products is crucial for biochemical and radiochemical studies.
Purpose of the Study:
- To compare the products of tryptophan hydroxylation by Fenton, Udenfriend, and ionizing radiation.
- To elucidate the reaction mechanisms, including hydroxyl radical attack sites and product formation pathways.
Main Methods:
- Gamma-radiolysis of nitrous oxide-saturated tryptophan solutions.
- Fenton and Udenfriend chemical hydroxylation reactions.
- Analysis of reaction products using spectrophotometry and chromatography.
Main Results:
- Similar hydroxylation products (four hydroxytryptophans, oxindole-3-alanine, N-formylkynurenine) were observed across all methods.
- Hydroxyl radical attacks the aromatic nucleus and pyrrole ring of tryptophan.
- Dimerization/polymerization occurred in gamma-radiolysis without oxygen/ferric edta, forming a yellow product (λmax 425 nm).
- Disproportionation of hydroxyl radical adducts led to hydroxylated derivatives in Fenton/ferric edta systems.
- Yields of hydroxytryptophans were proportional to ferric edta concentration, reaching a limiting yield of 54%.
Conclusions:
- Chemical and radiation-induced hydroxylation of tryptophan share common product profiles and mechanistic insights.
- The specific reaction conditions (presence of oxygen, ferric edta) influence product distribution and yield.
- The study provides detailed information on tryptophan's reactivity towards hydroxyl radicals.