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August 1, 1992The Journal of Physiology88 citationsOpen Access

Metabolic changes during ischaemia and their role in contractile failure in isolated ferret hearts.

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AEA. ElliottGSGodfrey L. SmithDEDavid Eisner

Structured PICO

P
Population
Isolated whole ferret hearts
I
Intervention
Global ischemia (brief 10 min and prolonged up to 70-90 min) and exposure to cyanide with alpha-cyano-4-hydroxycinnamate
C
Comparator
Control (pre-ischemic or non-ischemic state)
O
Outcome
Changes in phosphorus metabolites (PCr, Pi, ATP), intracellular pH (pHi), and left ventricular developed pressure (LVDP)surrogate

In isolated ferret hearts, the fall in developed pressure during early ischemia is primarily driven by intracellular acidosis and increased inorganic phosphate rather than ATP depletion or action potential shortening.

Abstract

The effects of global ischaemia on phosphorus metabolites, intracellular pH (pHi) and developed pressure were measured in isolated whole ferret hearts using 31P nuclear magnetic resonance (NMR) spectroscopy. 2. Brief (10 min) periods of global ischaemia reduced left ventricular developed pressure (LVDP) to undetectable levels. This fall in LVDP was accompanied by a fall in the intracellular concentration of phosphocreatine (PCr) and increases in the concentrations of inorganic phosphate (Pi) and phosphomonoesters. There was no change in the intracellular ATP concentration (ATPi). pHi fell approximately linearly at a rate of 0.04 pH units min-1. 3. When ferret hearts were exposed to cyanide (CN-) in the presence of alpha-cyano-4-hydroxycinnamate (CHC), a blocker of lactate efflux, the changes in pHi and Pii which occurred were similar to those observed during global ischaemia. However, developed pressure only fell to around 15% of the control value. 4. Removing the intracellular acidosis (by reducing the CO2 level of the gas with which the perfusate was equilibrated) during exposure to CN- and CHC caused an increase in developed pressure, consistent with the fall in pHi being responsible for a substantial fraction of the fall in developed pressure. 5. Taken together, these results suggest that most, but not all, of the fall in developed pressure during ischaemia can be explained by the effects of the changes in pHi and Pii on the contractile apparatus. 6. Action potential recordings made with a suction electrode during short periods of global ischaemia showed that there was no decrease in action potential duration over the period when developed pressure was falling, eliminating action potential shortening as a possible cause of the fall in developed pressure. 7. In hearts in which the rate of glycolysis had been reduced by glycogen depletion, global ischaemia led to a marked shortening of the action potential. NMR experiments showed that under these conditions ATPi decreased by around 50% over the first 10 jin of ischaemia, while the intracellular acidosis which occurred was smaller than that in a control ischaemic period. 8. The time course of the decline of ATPi was examined in several hearts during long (45 min and over) ischaemic periods without prior glycogen depletion. After 45 min of ischaemia ATPi fell to around two-thirds of the control value, while pHi declined to approximately 6.1. Resting pressure did not increase. On reperfusion pHi recovered rapidly to control levels. ATPi, however, did not recover. 9. If ischaemia was prolonged further, ATPi eventually became undetectable after 70-90 min.(ABSTRACT TRUNCATED AT 400 WORDS)

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Cite This Study

Elliott et al. (1992) studied this question.

synapsesocial.com/papers/6a22171c89ae9bae15e2301fhttps://doi.org/10.1113/jphysiol.1992.sp019274
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