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Published on: February 24, 2018
Autoxidation of soluble trypsin-cleaved microsomal ferrocytochrome b5 and formation of superoxide radicals
Abstract:
The rate and mechanism of autoxidation of soluble ferrocytochrome b5, prepared from liver microsomal suspensions, appear to reflect an intrinsic property of membrane-bound cytochrome b5. The first-order rate constant for autoxidation of trypsin-cleaved ferrocytochrome b5, prepared by reduction with dithionite, was 2.00 X 10(-3) +/- 0.19 X 10(-3) S-1 (mean +/- S.E.M., n =8) when measured at 30 degrees C in 10 mM-phosphate buffer, pH 7.4. At 37 degrees C in aerated 10 mM-phosphate buffer (pH 7.4)/0.15 M-KCl, the rate constant was 5.6 X 10(-3) S-1. The autoxidation reaction was faster at lower pH values and at high ionic strengths. Unlike ferromyoglobin, the autoxidation reaction of which is maximal at low O2 concentrations, autoxidation of ferrocytochrome b5 showed a simple O2-dependence with an apparent Km for O2 of 2.28 X 10(-4) M (approx. 20kPa or 150mmHg)9 During autoxidation, 0.25 mol of O2 was consumed per mol of cytochrome oxidized. Cyanide, nucleophilic anions, EDTA and catalase each had little or no effect on autoxidation rates. Adrenaline significantly enhanced autoxidation rates, causing a tenfold increase at 0.6 mM. Ferrocytochrome b5 reduced an excess of cytochrome c in a biphasic manner. An initial rapid phase, independent of O2 concentration, was unaffected by superoxide dismutase. A subsequent slower phase, which continued for up to 60 min, was retarded at low O2 concentrations and inhibited by 65% by superoxide dismutase at a concentration of 3 mug/ml. It is concluded that autoxidation is responsible for a significant proportion of electron flow between cytochrome b5 and O2 in liver endoplasmic membranes, this reaction being capable of generating superoxide anions. A biological role for the reaction is discussed.
Insights
The autoxidation of ferrocytochrome b5 in liver endoplasmic membranes is a key process that generates superoxide anions. This reaction significantly contributes to electron flow between cytochrome b5 and oxygen.
Area of Science:
- Biochemistry
- Cell Biology
- Enzymology
Background:
- Cytochrome b5 is a key hemoprotein in liver endoplasmic membranes involved in various metabolic processes.
- Understanding the autoxidation of ferrocytochrome b5 is crucial for elucidating electron transport pathways and reactive oxygen species generation.
Purpose of the Study:
- To investigate the rate, mechanism, and influencing factors of ferrocytochrome b5 autoxidation.
- To determine the role of ferrocytochrome b5 autoxidation in electron flow and superoxide anion generation within liver endoplasmic membranes.
Main Methods:
- Preparation of soluble ferrocytochrome b5 from liver microsomes.
- Kinetic analysis of autoxidation rates at varying temperatures, pH, and ionic strengths.
- Measurement of oxygen consumption and product analysis, including superoxide dismutase inhibition studies.
- Assay of ferrocytochrome b5 reduction of cytochrome c.
Main Results:
- Autoxidation followed first-order kinetics with a rate constant of 2.00 X 10(-3) S-1 at 30°C.
- The reaction rate increased at lower pH and higher ionic strengths.
- Apparent Km for O2 was 2.28 X 10(-4) M, with 0.25 mol O2 consumed per mol cytochrome oxidized.
- Adrenaline significantly enhanced autoxidation, while cyanide, EDTA, and catalase had minimal effects.
- Ferrocytochrome b5 reduction of cytochrome c occurred biphasically, with the slower phase inhibited by superoxide dismutase, indicating superoxide generation.
Conclusions:
- Autoxidation of ferrocytochrome b5 is an intrinsic property of the membrane-bound form.
- This autoxidation process contributes significantly to electron flow in liver endoplasmic membranes.
- The reaction generates superoxide anions, suggesting a potential biological role in cellular signaling or oxidative stress.
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