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Assessment of Sarcoplasmic Reticulum Calcium Reserve and Intracellular Diastolic Calcium Removal in Isolated Ventricular Cardiomyocytes
Published on: September 18, 2017
Sarcoplasmic reticulum Ca(2+) uptake is impaired in coronary smooth muscle distal to coronary occlusion
Insights
Chronic coronary occlusion impairs calcium uptake in smooth muscle cells. Exercise training did not prevent this impairment, suggesting limited benefits for sarcoplasmic reticulum function in these specific cells.
Area of Science:
- Cardiovascular Physiology
- Smooth Muscle Biology
- Exercise Science
Background:
- Collateral-dependent coronary arteries show altered vasomotor reactivity and calcium handling after chronic occlusion.
- Chronic exercise training is known to prevent these alterations.
Purpose of the Study:
- To test if coronary occlusion diminishes calcium (Ca2+) uptake by the sarcoplasmic reticulum (SR).
- To determine if exercise training prevents impaired SR Ca2+ uptake in coronary smooth muscle cells.
Main Methods:
- Ameroid constrictors created chronic coronary occlusion in swine.
- Smooth muscle cells from occluded (LCx) and non-occluded (LAD) arteries were studied.
- Myoplasmic free Ca2+ was measured using fura 2 microfluorometry after SR Ca2+ depletion and SERCA inhibition.
Main Results:
- Coronary occlusion significantly impaired SR Ca2+ uptake in smooth muscle cells.
- Impaired Ca2+ uptake was observed in occluded arteries compared to non-occluded arteries.
- Exercise training did not prevent the impaired SR Ca2+ uptake, and SERCA protein levels remained unchanged.
Conclusions:
- Chronic coronary occlusion impairs sarcoplasmic reticulum Ca2+ uptake in coronary smooth muscle cells.
- This impairment is independent of SERCA protein levels.
- Exercise training did not prevent the observed deficit in SR Ca2+ uptake.
Abstract:
After chronic occlusion, collateral-dependent coronary arteries exhibit alterations in both vasomotor reactivity and associated myoplasmic free Ca(2+) levels that are prevented by chronic exercise training. We tested the hypotheses that coronary occlusion diminishes Ca(2+) uptake by the sarcoplasmic reticulum (SR) and that exercise training would prevent impaired SR Ca(2+) uptake. Ameroid constrictors were surgically placed around the proximal left circumflex (LCx) artery of female swine 8 wk before initiating 16-wk sedentary (pen confined) or exercise-training (treadmill run) protocols. Twenty-four weeks after Ameroid placement, smooth muscles cells were enzymatically dissociated from both the LCx and nonoccluded left anterior descending (LAD) arteries of sedentary and exercise-trained pigs, and myoplasmic free Ca(2+) was studied using fura 2 microfluorometry. After the SR Ca(2+) store was partially depleted with caffeine (5 mM), KCl-induced membrane depolarization produced a significant decrease in the time to half-maximal (t(1/2)) myoplasmic free Ca(2+) accumulation in LCx versus LAD cells of sedentary pigs. Furthermore, inhibition of sarco(endo)plasmic reticulum Ca(2+)-ATPase (SERCA; 10 microM cyclopiazonic acid) significantly reduced t(1/2) in cells isolated from the LAD but not from the LCx. Exercise training did not prevent the differences in t(1/2) myoplasmic free Ca(2+) accumulation observed between LCx and LAD cells. Occlusion or exercise training did not alter SERCA protein levels. These results support our hypothesis of impaired SR Ca(2+) uptake in coronary smooth muscle cells isolated distal to chronic occlusion. Impaired SR Ca(2+) uptake was independent of SERCA protein levels and was not prevented by exercise training.
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