Trypanothione reductase from Trypanosoma cruzi. Purification and characterization of the crystalline enzyme
- 1 April 1987
- journal article
- research article
- Published by Wiley in European Journal of Biochemistry
- Vol. 164 (1) , 123-128
- https://doi.org/10.1111/j.1432-1033.1987.tb11002.x
Abstract
The structural differences between trypanothione reductase of Trypanosoma cruzi and human glutathione reductase, an enzyme of known three-dimensional structure, offer an opportunity for rational drug design against Chagas'' disease. As a first step in the analysis of the parasite enzyme we report its purification and characterization. 1. 2.2 mg trypanothione reductase was extracted from 33 g wet weight of cultured epimastigotes or from 4 g lyophilized cells. The flavoenzyme was purified 2400-fold to homogeneity in three steps with an overall yield of 45%. 2. The enzyme is a dimer with a subunit Mr of 50,000. Using NADPH (Km=5 .mu.M) and trypanothione disulfide (Km=45 .mu.M) as substrates, a turnover number of 14200 min-1 was estimated. Trypanothione reductase, the parasite enzyme, and glutathione reductase, the host enzyme, exhibit mutually exclusive specificities for their respective disulfide substrates. 3. When screening cell cultures or column eulates for the presence of trypanothione reductase, a microassay based on Ellman''s reagent as indicator was used. A mixture of regioisomeric glutathionylspermidine disulfides isolated from Escherichia coli served as substrate in this microassay. 4. Experimentally, the catalytic cycle of the enzyme can be subdivided into the half-reactions Eox + ADPH + H+ .fwdarw. EN2 + NADP+, and EH2 + trypanothione disulfide .fwdarw. Eox + dihydrotrypanothione. This is also true for the crystallized enzyme in the presence of 2 M (NH4)2SO4. 5. The spectral properties of trypanothione reductase both in the oxidized form (Eox) and in the two-electron reduced form (EH2) closely resemble those of human glutathione reductase. Both proteins contain a flavin and a redox-active disulfite at the catalytic site. After reduction of Eox to EH2, trypanthione reductase can be inactivated by specifically alkylating one of the nascent active-site thiols.This publication has 26 references indexed in Scilit:
- The biosynthesis of trypanothione and N1-glutathionylspermidine in Crithidia fasciculataMolecular and Biochemical Parasitology, 1986
- Proteinkristallographie und Computer‐Graphik – auf dem Weg zu einer planvollen ArzneimittelentwicklungAngewandte Chemie, 1986
- Hydrogen peroxide metabolism in Trypanosoma bruceiMolecular and Biochemical Parasitology, 1986
- Synthesis of the trypanosomatid metabolites trypanothione, and N 1-mono- and N 8-mono-glutathionylspermidineJournal of the Chemical Society, Chemical Communications, 1986
- Trypanothione: A Novel Bis(glutathionyl)spermidine Cofactor for Glutathione Reductase in TrypanosomatidsScience, 1985
- Interaction of a glutathione S‐conjugate with glutathione reductase Kinetic and X‐ray crystallographic studiesEuropean Journal of Biochemistry, 1984
- Biochemistry of trypanosomiasis and rational approaches to chemotherapyTrends in Biochemical Sciences, 1982
- Glutathione Reductase from Human ErythrocytesEuropean Journal of Biochemistry, 1982
- Glutathione Reductase from Human Erythrocytes. Amino-Acid Sequence of the Structurally Known FAD-Binding DomainEuropean Journal of Biochemistry, 1981
- Crystals of human erythrocyte glutathione reductaseFEBS Letters, 1975