The role of external and matrix pH in mitochondrial reactive oxygen species generation

Vitaly A Selivanov1, Jennifer A Zeak, Josep Roca

  • 1Department of Biochemistry and Molecular Biology, Associated Unit to Consejo Superior de Investigaciones Científicas, Institute of Biomedicine of the University of Barcelona, Barcelona, Spain.

Insights

Alkaline conditions significantly boost mitochondrial reactive oxygen species (ROS) production by stabilizing radicals. This occurs even without a pH gradient, impacting cell function and disease.

Area of Science:

  • Mitochondrial biochemistry
  • Cellular redox homeostasis
  • Pathophysiology

Background:

  • Mitochondrial reactive oxygen species (ROS) are byproducts of cellular respiration, crucial for normal function and disease.
  • Alkalization of mitochondrial matrix and cytosol can stabilize semiquinone radicals, implicated in superoxide production.

Purpose of the Study:

  • To test the hypothesis that proton deficiency (alkalization) enhances mitochondrial ROS generation.
  • To investigate the pH dependence of ROS release from isolated mitochondria.

Main Methods:

  • Mitochondria were incubated in media with pH ranging from 6 to 8.
  • Respiration was driven by either complex II (succinate) or complex I (glutamate and malate) substrates.
  • Matrix pH was modulated using inorganic phosphate, nigericin, uncouplers, or valinomycin.

Main Results:

  • High external pH markedly increased mitochondrial free radical generation across all tested conditions.
  • This ROS increase was observed even without a pH gradient (DeltapH=0) when using nigericin.
  • Alkalization enhanced ROS production with intact mitochondria and in the presence of the complex I inhibitor rotenone.

Conclusions:

  • Mitochondrial ROS production is strongly promoted by alkaline conditions, independent of the proton motive force.
  • These findings elucidate mechanisms of mitochondrial ROS generation, particularly concerning uncoupling proteins.
  • Understanding pH-dependent ROS production is vital for cellular physiology and pathology.

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