Respiration-dependent Removal of Exogenous H2O2 in Brain Mitochondria: Inhibition by Ca2+
Overview
Affiliations
In brain mitochondria, state 4 respiration supported by the NAD-linked substrates glutamate/malate in the presence of EGTA promotes a high rate of exogenous H2O2 removal. Omitting EGTA decreases the H2O2 removal rate by almost 80%. The decrease depends on the influx of contaminating Ca2+, being prevented by the Ca2+ uniporter inhibitor ruthenium red. Arsenite is also an inhibitor (maximal effect approximately 40%, IC50, 12 microm). The H2O2 removal rate (EGTA present) is decreased by 20% during state 3 respiration and by 60-70% in fully uncoupled conditions. H2O2 removal in mitochondria is largely dependent on glutathione peroxidase and glutathione reductase. Both enzyme activities, as studied in disrupted mitochondria, are inhibited by Ca2+. Glutathione reductase is decreased by 70% with an IC50 of about 0.9 microm, and glutathione peroxidase is decreased by 38% with a similar IC50. The highest Ca2+ effect with glutathione reductase is observed in the presence of low concentrations of H2O2. With succinate as substrate, the removal is 50% less than with glutamate/malate. This appears to depend on succinate-supported production of H2O2 by reverse electron flow at NADH dehydrogenase competing with exogenous H2O2 for removal. Succinate-dependent H2O2 is inhibited by rotenone, decreased DeltaPsi, as described previously, and by ruthenium red and glutamate/malate. These agents also increase the measured rate of exogenous H2O2 removal with succinate. Succinate-dependent H2O2 generation is also inhibited by contaminating Ca2+. Therefore, Ca2+ acts as an inhibitor of both H2O2 removal and the succinate-supported H2O2 production. It is concluded that mitochondria function as intracellular Ca2+-modulated peroxide sinks.
Calvo-Rodriguez M, Kharitonova E, Snyder A, Hou S, Sanchez-Mico M, Das S Mol Neurodegener. 2024; 19(1):6.
PMID: 38238819 PMC: 10797952. DOI: 10.1186/s13024-024-00702-2.
Mitochondrial Properties in Skeletal Muscle Fiber.
Dong H, Tsai S Cells. 2023; 12(17).
PMID: 37681915 PMC: 10486962. DOI: 10.3390/cells12172183.
Main E, Cruz T, Bowlin G Regen Biomater. 2023; 10:rbad070.
PMID: 37663015 PMC: 10468651. DOI: 10.1093/rb/rbad070.
Therapeutic Efficiency of Humic Acids in Intoxications.
Vaskova J, Stupak M, Vidova Ugurbas M, Zatko D, Vasko L Life (Basel). 2023; 13(4).
PMID: 37109500 PMC: 10143271. DOI: 10.3390/life13040971.
Levine S, Tsau S, Gunewardena S Brain Sci. 2023; 13(3).
PMID: 36979320 PMC: 10046656. DOI: 10.3390/brainsci13030511.