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Updated: Apr 26, 2026

Assessment of Open Probability of the Mitochondrial Permeability Transition Pore in the Setting of Coenzyme Q Excess
Published on: June 1, 2022
Functional crosstalk between the mitochondrial PTP and KATP channels determine arrhythmic vulnerability to oxidative
Chaoqin Xie1, Justin Kauffman1, Fadi G Akar1
1Department of Medicine, Cardiovascular Institute, Mount Sinai School of Medicine New York, NY, USA.
Background:
Mitochondrial permeability transition pore (mPTP) opening is a terminal event leading to mitochondrial dysfunction and cell death under conditions of oxidative stress (OS). However, mPTP blockade with cyclosporine A (CsA) has shown variable efficacy in limiting post-ischemic dysfunction and arrhythmias. We hypothesized that strong feedback between energy dissipating (mPTP) and cardioprotective (mKATP) channels determine vulnerability to OS.
Methods And Results:
Guinea pig hearts (N = 61) were challenged with H2O2 (200 μM) to elicit mitochondrial membrane potential (ΔΨm) depolarization. High-resolution optical mapping was used to measure ΔΨm or action potentials (AP) across the intact heart. Hearts were treated with CsA (0.1 μM) under conditions that altered the activity of mKATP channels either directly or indirectly via its regulation by protein kinase C. mPTP blockade with CsA markedly blunted (P < 0.01) OS-induced ΔΨm depolarization and delayed loss of LV pressure (LVP), but did not affect arrhythmia propensity. Surprisingly, prevention of mKATP activation with the chemical phosphatase BDM reversed the protective effect of CsA, paradoxically exacerbating OS-induced ΔΨm depolarization and accelerating arrhythmia onset in CsA treated compared to untreated hearts (P < 0.05). To elucidate the putative molecular mechanisms, mPTP inhibition by CsA was tested during conditions of selective PKC inhibition or direct mKATP channel activation or blockade. Similar to BDM, the specific PKC inhibitor, CHE (10 μM) did not alter OS-induced ΔΨm depolarization directly. However, it completely abrogated CsA-mediated protection against OS. Direct pharmacological blockade of mKATP, a mitochondrial target of PKC signaling, equally abolished the protective effect of CsA on ΔΨm depolarization, whereas channel activation with 30 μM Diazoxide protected against ΔΨm depolarization (P < 0.0001). Conditions that prevented mKATP activation either directly or indirectly via PKC inhibition led to accelerated ΔΨm depolarization and early onset of VF in response to OS. Investigation of the electrophysiological substrate revealed accelerated APD shortening in response to OS in arrhythmia-prone hearts.
Conclusions:
Cardioprotection by CsA requires mKATP channel activation through a PKC-dependent pathway. Increasing mKATP activity during CsA administration is required for limiting OS-induced electrical dysfunction.
Insights
Cyclosporine A (CsA) protects against oxidative stress by opening mitochondrial ATP-sensitive potassium (mKATP) channels via protein kinase C (PKC). This mKATP channel activation is crucial for CsA
Area of Science:
- Cardiovascular Research
- Mitochondrial Biology
- Cell Death Mechanisms
Background:
- Mitochondrial permeability transition pore (mPTP) opening causes cell death during oxidative stress (OS).
- Cyclosporine A (CsA) blockade of mPTP shows variable efficacy in limiting post-ischemic injury.
- Feedback between mPTP and cardioprotective mitochondrial ATP-sensitive potassium (mKATP) channels influences OS vulnerability.
Purpose of the Study:
- To investigate the hypothesis that feedback between mPTP and mKATP channels determines vulnerability to OS.
- To elucidate the role of protein kinase C (PKC) in mediating the interaction between mPTP and mKATP channels.
Main Methods:
- Guinea pig hearts (N=61) were subjected to H2O2-induced oxidative stress.
- High-resolution optical mapping measured mitochondrial membrane potential (ΔΨm) and action potentials (AP).
- Hearts were treated with CsA, phosphatase inhibitors (BDM), PKC inhibitors (CHE), or mKATP channel modulators (Diazoxide).
Main Results:
- CsA blunted OS-induced ΔΨm depolarization and delayed cardiac dysfunction but did not prevent arrhythmias.
- Inhibition of mKATP channel activation (via BDM or CHE) reversed CsA's protective effects, exacerbating ΔΨm depolarization and accelerating arrhythmias.
- Direct mKATP channel activation with Diazoxide protected against ΔΨm depolarization.
Conclusions:
- Cardioprotection by CsA is dependent on mKATP channel activation through a PKC-dependent pathway.
- Enhancing mKATP channel activity during CsA administration is essential for mitigating OS-induced electrical dysfunction.
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