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Updated: Jun 27, 2026

Assessment of Open Probability of the Mitochondrial Permeability Transition Pore in the Setting of Coenzyme Q Excess
Published on: June 1, 2022
Inhibitory modulation of the mitochondrial permeability transition by minocycline
Anne Gieseler1, Adrian Tilman Schultze, Kathleen Kupsch
1Institute of Medical Neurobiology, Otto-von-Guericke University Magdeburg, Leipziger Str. 44, D-39120 Magdeburg, Germany.
Abstract:
The semi-synthetic tetracycline derivative minocycline exerts neuroprotective properties in various animal models of neurodegenerative disorders. Although anti-inflammatory and anti-apoptotic effects are reported to contribute to the neuroprotective action, the exact molecular mechanisms underlying the beneficial properties of minocycline remain to be clarified. We analyzed the effects of minocycline in a cell culture model of neuronal damage and in single-channel measurements on isolated mitoplasts. Treatment of neuron-enriched cortical cultures with rotenone, a high affinity inhibitor of the mitochondrial complex I, resulted in a deregulation of the intracellular Ca2+-dynamics, as recorded by live cell imaging. Minocycline (100 microM) and cyclosporin A (2 microM), a known inhibitor of the mitochondrial permeability transition pore, decreased the rotenone-induced Ca2+-deregulation by 60.9% and 37.6%, respectively. Investigations of the mitochondrial permeability transition pore by patch-clamp techniques revealed for the first time a dose-dependent reduction of the open probability by minocycline (IC(50)=190 nM). Additionally, we provide evidence for the high antioxidant potential of MC in our model. In conclusion, the present data substantiate the beneficial properties of minocycline as promising neuroprotectant by its inhibitory activity on the mitochondrial permeability transition pore.
Insights
Minocycline, a neuroprotective drug, inhibits the mitochondrial permeability transition pore, reducing calcium dysregulation in neuronal damage models. This action, alongside its antioxidant effects, supports its potential as a neuroprotective agent.
Area of Science:
- Neuroscience
- Pharmacology
- Cell Biology
Background:
- Minocycline (MC) shows neuroprotective effects in neurodegenerative disorders.
- Its precise molecular mechanisms, beyond anti-inflammatory and anti-apoptotic actions, require clarification.
Purpose of the Study:
- To investigate minocycline's effects on neuronal damage models.
- To elucidate minocycline's molecular mechanisms, particularly its impact on mitochondrial function.
Main Methods:
- Utilized a cell culture model with rotenone to induce neuronal damage.
- Employed live cell imaging for intracellular calcium (Ca2+) dynamics.
- Performed single-channel patch-clamp measurements on isolated mitoplasts.
Main Results:
- Minocycline significantly reduced rotenone-induced Ca2+ deregulation.
- Minocycline dose-dependently inhibited the mitochondrial permeability transition pore (MPTP) opening (IC50=190 nM).
- Minocycline demonstrated significant antioxidant potential.
Conclusions:
- Minocycline's neuroprotective properties are partly mediated by inhibiting the MPTP.
- Minocycline's ability to regulate Ca2+ dynamics and its antioxidant capacity contribute to its neuroprotective effects.
- Minocycline is a promising neuroprotectant candidate for neurodegenerative disorders.
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