Key result
Aged rat myocytes exhibited a much greater and more prolonged accumulation of diastolic Ca(2+) and increased mechanical alternans in ischemia and early reperfusion compared with younger animals.
Age-related increases in diastolic Ca(2+) accumulation and mechanical alternans during ischemia and reperfusion may explain the aging heart's increased sensitivity to ischemia-reperfusion injury.
May underlie age-related ischemia-reperfusion vulnerability; leaves open human translation.
This study examined the impact of age on contractile function, Ca(2+) homeostasis, and cell viability in isolated myocytes exposed to simulated ischemia and reperfusion. Ventricular myocytes were isolated from anesthetized young adult (3 mo) and aged (24 mo) male Fischer 344 rats. Cells were field-stimulated at 4 Hz (37 degrees C), exposed to simulated ischemia, and reperfused with Tyrode solution. Cell shortening and intracellular Ca(2+) were measured simultaneously with an edge detector and fura-2. Cell viability was assessed by Trypan blue exclusion. Ischemia (20-45 min) depressed amplitudes of contraction equally in isolated myocytes from young adult and aged animals. The degree of postischemic contractile depression (stunning) was comparable in both groups. Ca(2+) transient amplitudes were depressed in early reperfusion in young adult and aged cells and then recovered to preischemic levels in both groups. Cell viability also declined equally in reperfusion in both groups. In short, some cellular responses to simulated ischemia and reperfusion were similar in both groups. Even so, aged myocytes exhibited a much greater and more prolonged accumulation of diastolic Ca(2+) in ischemia and in early reperfusion compared with myocytes from younger animals. In addition, the degree of mechanical alternans in ischemia increased significantly with age. The observation that there is an age-related increase in accumulation of diastolic Ca(2+) in ischemia and early reperfusion may account for the increased sensitivity to ischemia and reperfusion injury in the aging heart. The occurrence of mechanical alternans in ischemia may contribute to contractile dysfunction in ischemia in the aging heart.
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O'Brien et al. (2008) studied Simulated ischemia and reperfusion. Advanced age (24 months) vs. Young adult age (3 months) was evaluated on Contractile function, Ca(2+) homeostasis, and cell viability. Aged rat myocytes exhibited a much greater and more prolonged accumulation of diastolic Ca(2+) and increased mechanical alternans in ischemia and early reperfusion compared with younger animals.
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