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October 1, 2001British Journal of Pharmacology74 citationsOpen Access

The KATP channel opener diazoxide protects cardiac myocytes during metabolic inhibition without causing mitochondrial depolarization or flavoprotein oxidation

CLCaryn LawrenceBBBrian BillupsGRGlenn C. Rodrigo

Key Result

Diazoxide reduced the percentage of cardiac myocytes hypercontracting after metabolic inhibition from 63.7% to 24.2% (p<0.0001) without causing mitochondrial depolarization.

Structured PICO

P
Population
Freshly isolated ventricular myocytes from adult male Wistar rats subjected to metabolic inhibition to evaluate cardioprotection.
I
Intervention
Diazoxide (100 or 200 microM) applied prior to metabolic inhibition (2 mM NaCN + 1 mM iodoacetic acid)
C
Comparator
Control (normal Tyrode solution) prior to metabolic inhibition
O
Outcome
Mitochondrial membrane potential (DeltaPsi_m) measured by TMRE fluorescence, flavoprotein autofluorescence, and percentage of cells hypercontracting after metabolic inhibitionsurrogate

Diazoxide protects isolated adult rat cardiac myocytes against metabolic inhibition without causing mitochondrial depolarization or flavoprotein oxidation, challenging previous mechanistic hypotheses.

Main Result

Absolute Event Rate: 24.2% vs 63.7%

p-value: p=<0.0001

Limitations

  • In vitro study using isolated rat cardiac myocytes, which may not fully replicate intact heart physiology.
  • TMRE fluorescence calibration in intact cells is assumed linear based on isolated mitochondria.
  • Differences in experimental conditions (e.g., temperature, glucose availability) compared to previous studies in rabbit myocytes.

Abstract

The K(ATP) channel opener diazoxide has been proposed to protect cardiac muscle against ischaemia by opening mitochondrial K(ATP) channels to depolarize the mitochondrial membrane potential, DeltaPsi(m). We have used the fluorescent dye TMRE to measure DeltaPsi(m) in adult rat freshly isolated cardiac myocytes exposed to diazoxide and metabolic inhibition. 2. Diazoxide, at concentrations that are highly cardioprotective (100 or 200 microM), caused no detectable increase in TMRE fluorescence (n=27 cells). However, subsequent application of the protonophore FCCP, which should collapse DeltaPsi(m), led to large increases in TMRE fluorescence (>300%). 3. Metabolic inhibition (MI: 2 mM NaCN+1 mM iodoacetic acid (IAA) led to an immediate partial depolarization of DeltaPsi(m), followed after a few minutes delay by complete depolarization which was correlated with rigor contracture. Removal of metabolic inhibition led to abrupt mitochondrial repolarization followed in many cells by hypercontracture, indicated by cell rounding and loss of striated appearance. 4. Prior application of diazoxide (100 microM) reduced the number of cells that hypercontracted after metabolic inhibition from 63.7+/-4.7% to 24.2+/-1.8% (P< 0.0001). 5-hydroxydeanoate (100 microM) reduced the protection of diazoxide (46.8+/-2.7% cells hypercontracted, P< 0.0001 vs diazoxide alone). 5. Diazoxide caused no detectable change in flavoprotein autofluorescence (n=26 cells). 6. Our results suggest that mitochondrial depolarization and flavoprotein oxidation are not inevitable consequences of diazoxide application in intact cardiac myocytes, and that they are also not essential components of the mechanism by which it causes protection.

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Cite This Study

Lawrence et al. (2001) studied Simulated ischemia (metabolic inhibition) in cardiac myocytes. Diazoxide vs. Control (Tyrode solution) was evaluated on Percentage of cells hypercontracting after metabolic inhibition (p=<0.0001). Diazoxide reduced the percentage of cardiac myocytes hypercontracting after metabolic inhibition from 63.7% to 24.2% (p<0.0001) without causing mitochondrial depolarization.

synapsesocial.com/papers/6a9d7243894d4c85b98b102ahttps://doi.org/10.1038/sj.bjp.0704289
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