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July 29, 2014PLoS ONE99 citationsOpen Access

KCNMA1 Encoded Cardiac BK Channels Afford Protection against Ischemia-Reperfusion Injury

ESEwa SoltysinskaBBBo Hjorth BentzenMBMaria Barthmes

Key Result

Ischemic preconditioning limited infarct size to 28% of the area at risk in wild-type mouse hearts but failed to protect BK-deficient hearts (58%), demonstrating that BK channels mediate protection.

Structured PICO

P
Population
Wild-type and BK channel knockout (BK-/-) mice subjected to ex-vivo models of ischemia/reperfusion injury to assess the cardioprotective role of mitochondrial BK channels.
I
Intervention
Ischemic pre-conditioning (IP) prior to ischemia/reperfusion (I/R) injury
C
Comparator
Wild-type vs BK-/- hearts
O
Outcome
Infarct area, coronary flow, and heart rates upon I/R injurysurrogate

Cardiac BK channels mediate the beneficial effects of ischemic pre-conditioning and protect against ischemia-reperfusion injury by modulating oxidative energy supply and ROS production.

Main Result

Absolute Event Rate: 28% vs 58%

p-value: p=<0.01

Limitations

  • Ex-vivo isolated heart model may not fully replicate in-vivo physiological conditions
  • Animal model findings may not directly translate to human clinical outcomes

Abstract

Mitochondrial potassium channels have been implicated in myocardial protection mediated through pre-/postconditioning. Compounds that open the Ca2+- and voltage-activated potassium channel of big-conductance (BK) have a pre-conditioning-like effect on survival of cardiomyocytes after ischemia/reperfusion injury. Recently, mitochondrial BK channels (mitoBKs) in cardiomyocytes were implicated as infarct-limiting factors that derive directly from the KCNMA1 gene encoding for canonical BKs usually present at the plasma membrane of cells. However, some studies challenged these cardio-protective roles of mitoBKs. Herein, we present electrophysiological evidence for paxilline- and NS11021-sensitive BK-mediated currents of 190 pS conductance in mitoplasts from wild-type but not BK-/- cardiomyocytes. Transmission electron microscopy of BK-/- ventricular muscles fibres showed normal ultra-structures and matrix dimension, but oxidative phosphorylation capacities at normoxia and upon re-oxygenation after anoxia were significantly attenuated in BK-/- permeabilized cardiomyocytes. In the absence of BK, post-anoxic reactive oxygen species (ROS) production from cardiomyocyte mitochondria was elevated indicating that mitoBK fine-tune the oxidative state at hypoxia and re-oxygenation. Because ROS and the capacity of the myocardium for oxidative metabolism are important determinants of cellular survival, we tested BK-/- hearts for their response in an ex-vivo model of ischemia/reperfusion (I/R) injury. Infarct areas, coronary flow and heart rates were not different between wild-type and BK-/- hearts upon I/R injury in the absence of ischemic pre-conditioning (IP), but differed upon IP. While the area of infarction comprised 28±3% of the area at risk in wild-type, it was increased to 58±5% in BK-/- hearts suggesting that BK mediates the beneficial effects of IP. These findings suggest that cardiac BK channels are important for proper oxidative energy supply of cardiomyocytes at normoxia and upon re-oxygenation after prolonged anoxia and that IP might indeed favor survival of the myocardium upon I/R injury in a BK-dependent mode stemming from both mitochondrial post-anoxic ROS modulation and non-mitochondrial localizations.

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Cite This Study

Soltysinska et al. (2014) studied Ischemia-Reperfusion Injury. Ischemic preconditioning (IP) vs. BK-/- hearts subjected to ischemic preconditioning was evaluated on Infarct size as percentage of area at risk (AAR) (p=<0.01). Ischemic preconditioning limited infarct size to 28% of the area at risk in wild-type mouse hearts but failed to protect BK-deficient hearts (58%), demonstrating that BK channels mediate protection.

synapsesocial.com/papers/6a5e387144d40cfb0237c7e6https://doi.org/10.1371/journal.pone.0103402
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