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Updated: May 20, 2026

Isolation and Functional Analysis of Mitochondria from Cultured Cells and Mouse Tissue
Published on: March 23, 2015
Complex I and ATP synthase mediate membrane depolarization and matrix acidification by isoflurane in mitochondria
Danijel Pravdic1, Naoyuki Hirata, Lauren Barber
1Department of Anesthesiology, Medical College of Wisconsin, Milwaukee, WI 53226, USA.
Abstract:
Short application of the volatile anesthetic isoflurane at reperfusion after ischemia exerts strong protection of the heart against injury. Mild depolarization and acidification of the mitochondrial matrix are involved in the protective mechanisms of isoflurane, but the molecular basis for these changes is not clear. In this study, mitochondrial respiration, membrane potential, matrix pH, matrix swelling, ATP synthesis and -hydrolysis, and H(2)O(2) release were assessed in isolated mitochondria. We hypothesized that isoflurane induces mitochondrial depolarization and matrix acidification through direct action on both complex I and ATP synthase. With complex I-linked substrates, isoflurane (0.5mM) inhibited mitochondrial respiration by 28 ± 10%, and slightly, but significantly depolarized membrane potential and decreased matrix pH. With complex II- and complex IV-linked substrates, respiration was not changed, but isoflurane still decreased matrix pH and depolarized mitochondrial membrane potential. Depolarization and matrix acidification were attenuated by inhibition of ATP synthase with oligomycin, but not by inhibition of mitochondrial ATP- and Ca(2+)-sensitive K(+) channels or uncoupling proteins. Isoflurane did not induce matrix swelling and did not affect ATP synthesis and hydrolysis, but decreased H(2)O(2) release in the presence of succinate in an oligomycin- and matrix pH-sensitive manner. Isoflurane modulated H(+) flux through ATP synthase in an oligomycin-sensitive manner. Our results indicate that isoflurane-induced mitochondrial depolarization and acidification occur due to inhibition of the electron transport chain at the site of complex I and increased proton flux through ATP synthase. K(+) channels and uncoupling proteins appear not to be involved in the direct effects of isoflurane on mitochondria.
Insights
Isoflurane protects the heart by altering mitochondrial function. It causes mild depolarization and acidification of the mitochondrial matrix through effects on complex I and ATP synthase, reducing injury.
Area of Science:
- Mitochondrial Physiology
- Anesthesiology
- Cardioprotection
Background:
- Volatile anesthetics like isoflurane offer cardioprotection during reperfusion.
- Mitochondrial matrix depolarization and acidification are implicated in isoflurane's protective effects.
- The precise molecular mechanisms remain unclear.
Purpose of the Study:
- To investigate the direct effects of isoflurane on isolated mitochondria.
- To elucidate the molecular basis of isoflurane-induced mitochondrial depolarization and matrix acidification.
- To test the hypothesis that isoflurane acts on complex I and ATP synthase.
Main Methods:
- Isolated mitochondria were used to assess respiration, membrane potential, matrix pH, swelling, ATP dynamics, and hydrogen peroxide release.
- Specific substrates for mitochondrial respiratory chain complexes were employed.
- Inhibitors of ATP synthase, K(+) channels, and uncoupling proteins were utilized.
Main Results:
- Isoflurane (0.5mM) inhibited respiration with complex I substrates but not with complex II or IV substrates.
- Isoflurane induced mitochondrial depolarization and matrix acidification, effects attenuated by oligomycin (ATP synthase inhibitor).
- Isoflurane reduced H(2)O(2) release in an oligomycin- and pH-sensitive manner, suggesting modulation of proton flux through ATP synthase.
Conclusions:
- Isoflurane-induced mitochondrial depolarization and acidification result from complex I inhibition and altered proton flux via ATP synthase.
- Mitochondrial K(+) channels and uncoupling proteins are not directly involved in isoflurane's acute mitochondrial effects.
- These findings clarify the molecular mechanisms underlying isoflurane's cardioprotective properties.
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