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Isolation of mitochondrial succinate: ubiquinone reductase, cytochrome c reductase and cytochrome c oxidase from Neurospora crassa using nonionic detergent.

The electron transfer complexes, succinate: ubiquinone reductase, ubiquinone: cytochrome c reductase, and cytochrome c: O2 oxidase were isolated from the mitochondrial membranes of Neurospora crassa by the following steps. Modification of the contents of the complexes in mitochondria by growing cells on chloramphenicol; solubilisation of the complexes by Triton X-100; affinity chromatography on immobilized cytochrome c and ion exchange and gel chromatography. Ubiquinone reductase was obtained in a monomeric form (Mr approximately 130 000) consisting of a flavin subunit (Mr 72 000) an iron-sulfur subunit (Mr 28 000) and a cytochrome b subunit (Mr probably 14 000). Cytochrome c reductase was obtained in a dimeric form (Mr approximately 550 000), the monomeric unit comprising the cytochromes b (Mr each 30 000), a cytochrome c1 (Mr 31 000), the iron-sulfur subunit (Mr 25 000), and six subunits without known prosthetic groups (Mr 9000, 11 000, 14 000, 45 000, 45 000, and 52 000). Cytochrome c oxidase was also isolated in a dimeric form (Mr approximately 320 000) comprising two copies each of seven subunits (Mr 9000, 12 000, 14 000, 18 000, 21 000, 29 000, and 40 000). The complexes were essentially free of phospholipid. Each bound one micelle of Triton X-100 (Mr approximately 90 000). After isolation, the bound Triton X-100 could be replaced by other nonionic detergents such as: alkylphenyl polyoxyethylene ethers, alkyl polyoxyethylene ethers and acyl polyoxyethylene sorbitan esters.

Chloramphenicol↗

NADH-methemoglobin reductase (cytochrome b5 reductase) levels in two groups of American blacks and whites.

BACKGROUND: Sickle cell trait, glucose-6-phosphate dehydrogenase (G6PD) deficiency and alpha-thalassemia trait are common genetic abnormalities among the American Black population. Under oxidative stress, the presence of any of these conditions would predispose the hemoglobin (Hb) to oxidation resulting in accelerated methemoglobin (metHb) formation. It was hypothesized that red cells phenotypic for these genetic variants should have more or different levels of metHb reductase (cytochrome b5 reductase) activity. METHODS: To test this hypothesis, we measured the red cell metHb reductase activity in 558 male subjects (316 Blacks and 242 Whites), by the procedure described by Beutler. All Black patients also had G6PD spot test and Hb electrophoresis. In addition, all patients had a complete blood count (CBC). If the hematocrit was < 35% a reticulocyte count was also done. Patients with corrected reticulocyte (retic count X hematocrit/45) index over 2% were excluded regardless of other findings. RESULTS: The results showed that Blacks had different metHb reductase activity levels than Whites (mean = 3.19 vs 2.89 IU/gHb, respectively with p = 0.03). However, the differences in metHb reductase activities in patients with sickle cell trait, G6PD deficiency, and low MCV < 80 micron3 (presumptively having alpha-thalassemia) in small subgroups did not reach statistical significance (p = 0.2), although, all 3 groups were comprised of small numbers. CONCLUSIONS: It is concluded that American Blacks have significantly different metHb reductase activity. The different metHb reductase activity in Blacks seems to be unrelated to the presence of G6PD deficiency, sickle cell trait, or alpha-thalassemia and it may be the result of genetic polymorphism. However, our study samples do not exactly represent the cross-sections of the Black and White populations. In addition, all patients were male in this study. Therefore, this study should be confirmed using larger and more population-representative samples. The clinical significance of this problem is not clear at this time.

Adult↗

Biogenesis of mitochondrial ubiquinol:cytochrome c reductase (cytochrome bc1 complex). Precursor proteins and their transfer into mitochondria.

The precursor proteins to the subunits of ubiquinol:cytochrome c reductase (cytochrome bc1 complex) of Neurospora crassa were synthesized in a reticulocyte lysate. These precursors were immunoprecipitated with antibodies prepared against the individual subunits and compared to the mature subunits immunoprecipitated or isolated from mitochondria. Most subunits were synthesized as precursors with larger apparent molecular weights (subunits I, 51,500 versus 50,000; subunit II, 47,500 versus 45,000; subunit IV (cytochrome c1), 38,000 versus 31,000; subunit V (Fe-S protein), 28,000 versus 25,000; subunit VII, 12,000 versus 11,500; subunit VIII, 11,600 versus 11,200). Subunit VI (14,000) was synthesized with the same apparent molecular weight. The post-translational transfer of subunits I, IV, V, and VII was studied in an in vitro system employing reticulocyte lysate and isolated mitochondria. The transfer and proteolytic processing of these precursors was found to be dependent on the mitochondrial membrane potential. In the transfer of cytochrome c1, the proteolytic processing appears to take place in two separate steps via an intermediate both in vivo and in vitro. In vivo, the intermediate form accumulated when cells were kept at 8 degrees C and was chased into mature cytochrome c1 at 25 degrees C. Both processing steps were energy-dependent.

Animals↗

Congenital methemoglobin-reductase (cytochrome b5 reductase) deficiency associated with mental retardation in a Spanish girl.

Methemoglobinemia and mental retardation associated with NADH-diaphorase deficiency was found in a 2-year-old girl of Spanish origin. She showed no NADH-diaphorase activity in either erythrocytes or leukocytes, but electrophoretic studies of the hemolysate showed traces of an enzyme with normal mobility. Cytochrome b5 reductase activity was also found to be absent in the leukocytes of the propostius. Intermediate NADH-diaphorase activity was found in erythrocytes and leukocytes in her parents and her sister in accordance with the autosomal recessive mode of inheritance of this enzymopathy. The relationship between a generalized cytochrome b5 reductase deficiency and the progressive neurological involvement in our patient is discussed briefly.

Child, Preschool↗

Properties of ubiquinol oxidase reconstituted from ubiquinol-cytochrome c reductase, cytochrome c and cytochrome c oxidase.

Ubiquinol-cytochrome c reductase (Complex III), cytochrome c and cytochrome c oxidase can be combined to reconstitute antimycin-sensitive ubiquinol oxidase activity. In 25 mM-acetate/Tris, pH 7.8, cytochrome c binds at high-affinity sites (KD = 0.1 microM) and low-affinity sites (KD approx. 10 microM). Quinol oxidase activity is 50% of maximal activity when cytochrome c is bound to only 25% of the high affinity sites. The other 50% of activity seems to be due to cytochrome c bound at low-affinity sites. Reconstitution in the presence of soya-bean phospholipids prevents aggregation of cytochrome c oxidase and gives rise to much higher rates of quinol oxidase. The cytochrome c dependence was unaltered. Antimycin curves have the same shape regardless of lipid/protein ratio, Complex III/cytochrome c oxidase ratio or cytochrome c concentration. Proposals on the nature of the interaction between Complex III, cytochrome c and cytochrome c oxidase are considered in the light of these results.

Antimycin A↗

Transient kinetics of intracomplex electron transfer in the human cytochrome b5 reductase-cytochrome b5 system: NAD+ modulates protein-protein binding and electron transfer.

Transient kinetics of reduction and interprotein electron transfer in the human cytochrome b5 reductase-cytochrome b5 (b5R-b5) system was studied by laser flash photolysis in the presence of 5-deazariboflavin and EDTA at pH 7.0. Flash-induced reduction of the FAD cofactor of b5R by deazariboflavin semiquinone (in the absence of b5) occurred in a rapid second-order reaction (k2 = 3.1 x 10(8) M-1 s-1) and resulted in a neutral (blue) FAD semiquinone. The heme of cytochrome b5 (in the absence of b5R) was also rapidly reduced in this system with k2 = 3.1 x 10(8) M-1 s-1. When the two proteins were mixed at low ionic strength, a strong complex was formed. Although the heme of complexed b5 could be directly reduced by deazariboflavin semiquinone, the second-order rate constant was nearly an order of magnitude smaller than that of free b5 (k2 = 3.4 x 10(7) M-1 s-1). In contrast, access to the FAD of b5R by the external reductant was decreased by considerably more than an order of magnitude (k2 < 1 x 10(7) M-1 s-1). When an excess of b5R was titrated with small increments of b5 and then subjected to laser flash photolysis in the presence of deazariboflavin/EDTA, interprotein electron transfer from the b5R FAD semiquinone to the heme of b5 could be observed. At low ionic strength (I = 16 mM), the reaction showed saturation behavior with respect to the b5 concentration, with a limiting first-order rate constant for interprotein electron transfer k1 = 375 s-1, and a dissociation constant for protein-protein transient complex formation of approximately 1 microM. The observed rate constants for interprotein electron transfer decreased 23-fold when the ionic strength was increased to 1 M, indicating a plus-minus electrostatic interaction between the two proteins. Saturation kinetics were also observed at I = 56, 96, and 120 mM, with limiting first-order rate constants of 195, 155, and 63 s-1, respectively. In the presence of NAD+, the transient protein-protein complex was stabilized by approximately a factor of two, and limiting first-order rate constants of 360 s-1 were obtained at both I = 56 mM and I = 96 mM and 235 s-1 at I = 120 mM. Thus, NAD+ appears to stabilize as well as to optimize the protein-protein complex with respect to electron transfer. Another effect of NAD+ is to appreciably slow autoxidation and disproportionation of the FAD semiquinone.(ABSTRACT TRUNCATED AT 250 WORDS)

Cytochrome Reductases↗

Temperature dependence of cytochrome P-450 reduction. A model for NADPH-cytochrome P-450 reductase:cytochrome P-450 interaction.

The NADPH-dependent reduction of rat hepatic microsomal cytochrome P-450 has been studied as a function of temperature. In the temperature range 4-37 degrees the reduction reaction was found to be biphasic and composed of two concurrent first order processes. This phenomenon was observed with microsomes from untreated and phenobarbital-induced animals in the presence or absence of exogenous Type I substrates. The amount of cytochrome P-450 reduced in the fast phase comprised approximately 70% of the total cytochrome P-450 at temperatures above 20 degrees. The temperature dependence of the fast phase was unusual for a membrane-bound enzyme system in that it lacked a discontinuity in the Arrhenius plot at a presumed phase transition temperature for the microsomal membrane. The slow phase of reduction behaved in a normal fashion for a membrane-bound enzyme system with a break in the Arrhenius plot at about 20 degrees. The data presented here combined with previous observations which include (a) the ratio of cytochrome P-450 to NADPH cytochrome P-450 reductase (NADPH:ferricytochrome oxidoreductase, EC 1.6.2.4) is 20:1, (b) the catalytic portion of the reductase molecule probably protrudes above the surface of the membrane, and (c) the cytochrome P-450 molecules are presumably embedded in the membrane support the hypothesis that the hepatic microsomal drug-metabolizing system exists as clusters with most of the cytochrome P-450 molecules arranged about a central reductase molecule. This central flavoprotein reductase is able to randomly reduce those cytochrome P-450 molecules within the cluster without translational motion through the microsomal membrane. The slow phase of reduction represents the reduction of those molecules not directly associated with the clusters.

Animals↗

NADPH-cytochrome P-450 reductase, cytochrome P-450 2C11 and P-450 1A1, and the aryl hydrocarbon receptor in livers of rats fed methyl-folate-deficient diets.

We investigated three hepatic cytochrome P-450 isozymes and the aryl hydrocarbon (Ah) receptor in rats fed one of the following three diets for 15 months: a diet containing the AIN vitamin mixture (control), the control diet devoid of choline and folate (CFD), or the CFD diet devoid of niacin (CFND). Hepatic tumors developed in all CFD- and CFND-fed rats. Western blot analyses of nontumor hepatic tissue showed that NADPH-cytochrome P-450 reductase (P-450 reductase) increased significantly in the CFD and CFND groups compared with the control group. Hepatic cytochrome P-450 2C11 (CYP2C11) was not detectable in the CFD and CFND groups compared with the control group. Ah receptor and cytochrome P-450 1A1 (CYP1A1) were detected in higher amounts in livers of both deficient groups. CYP1A1 is an enzyme associated with bioactivation of exogenous genotoxins. To our knowledge, this is the first time it has been shown that CYP1A1 and the Ah receptor are induced by dietary deficiencies.

Animals↗

NADPH-cytochrome P-450 reductase-cytochrome b5 interactions: crosslinking of the phospholipid vesicle-associated proteins by a water-soluble carbodiimide.

Detergent-solubilized and purified rabbit liver microsomal NADPH-cytochrome P-450 reductase and cytochrome b5 were coreconstituted into phospholipid vesicles. When the proteoliposomes were incubated with a water-soluble carbodiimide, 1-ethyl-3-(3-dimethylaminopropyl)carbodiimide (EDC), a new higher-molecular-weight band was seen by sodium dodecyl sulfate-polyacrylamide gel electrophoresis. The band was purified by chromatography on DEAE-Sepharose CL-6B, 2'5'-ADP-Sepharose 4B, and Sephadex G-100. The heme absorption spectrum and fluorophotometric assay of flavin of the purified material demonstrate that this product is a 1:1 crosslinked complex containing one molecule each of the flavoprotein and cytochrome. Proteolysis of the crosslinked form indicates that the hydrophilic catalytic domains participate in the covalent attachment, and that the hydrophobic membrane-attachment peptide is necessary for the protein interaction. The purified crosslinked derivative showed no activities for reduction of either cytochrome c or ferricyanide. About half of the enzyme-associated flavin was reduced rapidly by NADPH, as was 20-30% of the crosslinked cytochrome, indicating that, in at least some of the complexes, the flavin-mediated pathway for reduction of cytochrome by pyridine nucleotide was intact. These data suggest that the output- rather than the input-electron transfer site(s) in the flavoprotein was (were) blocked by the covalently attached cytochrome.

Animals↗

Reduction of nitro and azo compounds by NADPH-cytochrome P-450 reductase-cytochrome c heme peptide system.

Octa heme peptide, an enzymic digestion product of Candida Krusei cytochrome c, was found to catalyze nitro and azo reduction in the presence of NADPH and NADPH-cytochrome P-450 reductase under anerobic conditions. The reduction was dependent on the concentrations of heme peptide and reductase, and inhibited by carbon monoxide and oxygen. Comparison of the activities of the reductase-heme peptide system with liver microsomes revealed that heme peptide was as effective as cytochrome P-450 in nitro reduction, although less effective in azo reduction. Thus, cytochrome c heme peptide may serve as an artificial substitute for cytochrome P-450 at least in the reductive metabolism of xenobiotics.

Amino Acid Sequence↗

A specific interaction between NADPH-cytochrome reductase and phosphatidylserine and phosphatidylinositol.

In the present study the interaction of NADPH-cytochrome reductase with phospholipids was investigated using 31P-NMR, thin-layer chromatography combined with chemical analysis, fluorescence spectroscopy and kinetic studies with purified rat liver cytochrome P450 IIB1. 31P-NMR analysis demonstrates that the composition of the phospholipids that remain associated to NADPH-cytochrome reductase upon its purification is significantly different from the phospholipid composition of the microsomal membrane. Thin-layer chromatography followed by chemical analysis of the phospholipid composition demonstrates that the isolated NADPH-cytochrome reductase was enriched in L-alpha-1,2-diacyl-sn-glycero-3-phosphoserine (acyl2GroPSer) and L-alpha-1,2-diacyl-sn-glycero-3-phosphoinositol (acyl2GroPIns) compared to the microsomal membrane. The observed preference of NADPH-cytochrome reductase for acyl2GroPSer and acyl2GroPIns appeared not to be a result of the procedure for solubilisation and/or purification of the protein. The specific interaction of NADPH-cytochrome reductase with acyl2GroPSer and acyl2GroPIns was further investigated by comparison of the effect of acyl2GroPSer and acyl2GroPIns with that of acyl2GroPCho and acyl2GroPEtn on the 2-[3-(diphenylhexatrienyl)propanoyl]-1-hexadecanoyl-sn-glycero-3- phosphocholine-(DphPamGroPCho)-dependent quenching of the tryptophan fluorescence of purified NADPH-cytochrome reductase. The results demonstrate that the addition of acyl2GroPSer or acyl2GroPIns affects the DphPamGroPCho-dependent quenching of the tryptophan fluorescence in a manner significantly different from the addition of acyl2GroPCho or acyl2GroPEtn. The relatively larger DphPamGroPCho-induced quenching of the tryptophan fluorescence of NADPH-cytochrome reductase in the presence of acyl2GroPSer and acyl2GroPIns must result from a change in the conformation of NADPH-cytochrome reductase induced by the latter two lipids. Finally, the possible consequences of this special interaction of acyl2GroPSer and acyl2GroPIns with NADPH-cytochrome reductase on the kinetic characteristics of the cytochrome P450 system were studied using cytochrome-P450-IIB1-dependent O-dealkylation of pentoxyresorufin as the model reaction. These studies demonstrate that a 1:1 mixture of acyl2GroPCho and acyl2GroPSer results in a significantly higher apparent maximum rate (V) of O-dealkylation than a 1:1 mixture of acyl2GroPCho and acyl2ProPEtn or acyl2GroPCho alone. This increase in the apparent V can be ascribed to an acyl2GroPSer-dependent improvement of the interaction of NADPH-cytochrome reductase with cytochrome P450. This improvement of the interaction of the proteins cannot, however, be exclusively ascribed to the negative charge of acyl2GroPSer, since the other negatively charged phospholipid investigated, namely acyl2GroPIns, resulted in a significant decrease in the apparent V.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Expression of cytochrome P450 3A7 in Escherichia coli: effects of 5' modification and catalytic characterization of recombinant enzyme expressed in bicistronic format with NADPH-cytochrome P450 reductase.

Cytochrome P450 3A7 is the major P450 form present in fetal liver tissue and may be responsible for the detoxification of many drugs that reach the fetal circulation. We report the development of bacterial expression systems for P450 3A7. Maximal yields (up to 50 nmol P450/liter culture) were obtained with a construct in which the 5'-terminus of the 3A7 cDNA was modified to include the MALLLAVFL N-terminal sequence of recombinant bovine P450 17A (H. J. Barnes, M. P. Arlotto, and M. R. Waterman, Proc. Natl. Acad. Sci. USA 88, 5597-5601, 1991) and to incorporate several downstream amino acid substitutions derived from the P450 3A5 sequence. This sequence also appeared optimal for expression of P450 3A4 and 3A5. Recombinant P450 3A7 was partially purified using ion-exchange and hydroxylapatite chromatography and reconstituted with NADPH-cytochrome P450 reductase, cytochrome b5, and lipids. Activity comparable to that of P450 3A4 was demonstrated toward a number of procarcinogens. An alternative approach was used to further characterize recombinant 3A7 due to low yields of recombinant protein in the expression and poor recovery in the purification. P450 3A7 was subcloned into a bicistronic vector containing human NADPH-cytochrome P450 reductase and expressed in bacteria. Recombinant P450 3A7 coexpressed in bacterial membranes with NADPH-cytochrome P450 reductase showed similar levels of activity toward erythromycin (N-demethylation) and ethylmorphine (N-demethylation) to P450 3A4 and 3A5 expressed in the same system, whereas 3A7 was less active toward midazolam (1'- and 4-hydroxylation) and nifedipine (oxidation).

Amino Acid Sequence↗