Key result
Hypothermia at 29.5°C significantly improved functional recovery, including left ventricular developed pressure and O2 consumption, during reoxygenation in isolated rabbit hearts (P<0.05 vs. control).
Why the study?
Does hypothermia preserve myocardial function during hypoxia and reoxygenation in isolated rabbit hearts?
Does hypothermia preserve myocardial function during hypoxia and reoxygenation in isolated rabbit hearts?
p-value: p=<0.05
Hypothermia preserves cardiac function after hypoxia in a hypoxic high-coronary flow model, indicating that hypothermic protection does not occur exclusively through cold-induced alterations in anaerobic metabolism.
Hypothesis-generating for hypothermic cardioprotection in hypoxia; leaves open translation to clinical ischemia-reperfusion.
Hypothermia before and/or during no-flow ischemia promotes cardiac functional recovery and maintains mRNA expression for stress proteins and mitochondrial membrane proteins (MMP) during reperfusion. Adaptation and protection may occur through cold-induced change in anaerobic metabolism. Accordingly, the principal objective of this study was to test the hypothesis that hypothermia preserves myocardial function during hypoxia and reoxygenation. Hypoxic conditions in these experiments were created by reducing O2 concentration in perfusate, thereby maintaining or elevating coronary flow (CF). Isolated Langendorff-perfused rabbit hearts were subjected to perfusate (Po2 = 38 mmHg) with glucose (11.5 mM) and perfusion pressure (90 mmHg). The control (C) group was at 37 degrees C for 30 min before and 45 min during hypoxia, whereas the hypothermia (H) group was at 29.5 degrees C for 30 min before and 45 min during hypoxia. Reoxygenation occurred at 37 degrees C for 45 min for both groups. CF increased during hypoxia. The H group markedly improved functional recovery during reoxygenation, including left ventricular developed pressure (DP), the product of DP and heart rate, dP/dtmax, and O2 consumption (MVo2) (P < 0.05 vs. control). MVo2 decreased during hypothermia. Lactate and CO2 gradients across the coronary bed were the same in C and H groups during hypoxia, implying similar anaerobic metabolic rates. Hypothermia preserved MMP betaF1-ATPase mRNA levels but did not alter adenine nucleotide translocator-1 or heat shock protein-70 mRNA levels. In conclusion, hypothermia preserves cardiac function after hypoxia in the hypoxic high-CF model. Thus hypothermic protection does not occur exclusively through cold-induced alterations in anaerobic metabolism.
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Ning et al. (2003) studied Hypoxia and reoxygenation. Hypothermia vs. Normothermia (37 degrees C) was evaluated on Functional recovery during reoxygenation (left ventricular developed pressure, dP/dtmax, O2 consumption) (p=<0.05). Hypothermia at 29.5°C significantly improved functional recovery, including left ventricular developed pressure and O2 consumption, during reoxygenation in isolated rabbit hearts (P<0.05 vs. control).
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