Catalytic activity of cytochromes c and c1 in mitochondria and submitochondrial particles

Insights

Beef heart mitochondria and submitochondrial particles show distinct cytochrome ratios and turnover rates. A near-equilibrium between cytochromes c1 and c facilitates electron transfer, suggesting endogenous cytochrome c is bound to cytochrome aa3.

Area of Science:

  • Biochemistry
  • Mitochondrial respiration
  • Electron transport chain

Background:

  • Beef heart mitochondria and Keilin-Hartree submitochondrial particles exhibit specific cytochrome c1:c:aa3 ratios.
  • Submitochondrial particle membranes are often in an 'inverted' configuration, affecting cytochrome c accessibility.
  • Endogenous cytochrome c turnover rates differ between mitochondria and particles.

Purpose of the Study:

  • To investigate the ratios and turnover rates of cytochromes c1, c, and aa3 in beef heart mitochondria and submitochondrial particles.
  • To elucidate the electron transfer kinetics and interactions between cytochromes c1 and c.
  • To understand the role of cytochrome c binding in mitochondrial respiration.

Main Methods:

  • Spectrophotometric analysis of cytochrome redox states.
  • Kinetic measurements of electron transfer rates.
  • Assays involving succinate and ascorbate plus TMPD as electron donors.
  • Inhibition studies with azide and cyanide.

Main Results:

  • Isolated mitochondria show a cytochrome c1:c:aa3 ratio of 0.65:1.0:1.0, while particles show 0.65:0.4:1.0.
  • Maximal turnover rates for endogenous cytochrome c are higher in particles (450–550 s−1) than in mitochondria (300–400 s−1).
  • A near-equilibrium exists between cytochromes c1 and c (rate constant > 10^3 s−1), explaining kinetic behaviors and inhibition patterns.
  • Endogenous cytochrome c appears bound to cytochrome aa3 units in situ.

Conclusions:

  • The c1/c step operates under near-equilibrium conditions, influencing the overall succinate-cytochrome c reductase system.
  • Cytochrome c1 directly reduces the cytochrome c-cytochrome aa3 complex or requires minimal additional cytochrome c.
  • These findings clarify the functional organization and electron transfer dynamics within the mitochondrial respiratory chain.

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