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October 1, 1988Circulation270 citations

Effect of ischemia on calcium-dependent fluorescence transients in rabbit hearts containing indo 1. Correlation with monophasic action potentials and contraction.

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HLH C LeeRMRajendra MohabirNSNellis A. Smith

Key Result

Acute global ischemia in perfused rabbit hearts rapidly suppressed contraction but produced a concurrent increase in systolic and diastolic calcium transients and intracellular calcium alternans.

Key Points

  • This study investigates how acute global ischemia affects calcium dynamics and mechanical function in rabbit hearts.
  • Used indo 1 fluorescent indicator to assess calcium transients in perfused rabbit hearts.
  • Simultaneous fluorescence measurements were taken at 400 and 550 nm from the left ventricle.
  • Monophasic action potentials and contraction were recorded to correlate with calcium transient changes.
  • Global ischemia led to increased systolic and diastolic calcium levels and prolonged peak duration.
  • Ischemic hearts showed calcium alternans patterns after 2-3 minutes, indicating instability.
  • Reperfusion reversed ischemic effects, and the calcium dynamics were altered by verapamil.

Structured PICO

Does acute global ischemia alter cytosolic calcium transients and contribute to electrical and mechanical dyssynchrony in perfused rabbit hearts?

P
Population
Perfused rabbit hearts loaded with indo 1 to study the effects of acute global ischemia on cytosolic calcium transients.
I
Intervention
Acute global ischemia
C
Comparator
Reperfusion, verapamil inhibition, and perfusion with acidified (CO2-rich) solution
O
Outcome
Cytosolic calcium transients (systolic and diastolic levels, duration of peak, and intracellular calcium alternans)surrogate

Acute global ischemia causes significant abnormalities in intracellular calcium transients, which may be a causal factor in the loss of electrical and mechanical synchrony in the ischemic heart.

Abstract

The effects of acute global ischemia on cytosolic calcium transients were studied in perfused rabbit hearts loaded with the fluorescent calcium indicator indo 1. Indo 1-loaded hearts were illuminated at 360 nm, and fluorescence was recorded simultaneously at 400 and 550 nm from the epicardial surface of the left ventricle. The F400/F550 ratio was calculated by an analog circuit, which allowed cancellation of optical motion artifact. Resulting calcium transients demonstrated a rapid upstroke and slow decay similar to those recorded in isolated ventricular myocytes. Global ischemia rapidly suppressed contraction, but it produced a concurrent increase in the systolic and diastolic levels of the calcium transients, together with an increase in the duration of the peak. The effects of ischemia were reversed by reperfusion, inhibited by verapamil, and mimicked by perfusion of nonischemic hearts with acidified (CO2-rich) solution. In addition to elevation of the calcium transients, ischemia caused a pattern of intracellular calcium alternans that was discernible after 2-3 minutes. The pattern of alternans was stable at a given epicardial site, but it could be out of phase at different sites. Similar nonuniformities were observed in contraction strength and in the duration of monophasic action potentials recorded immediately adjacent to the fiber-optic probe. Abnormalities in intracellular calcium may be a causal factor in the loss of electrical and mechanical synchrony in the acutely ischemic heart.

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Cite This Study

Lee et al. (1988) studied Acute global ischemia. Acute global ischemia vs. Baseline / nonischemic hearts was evaluated on Cytosolic calcium transients, contraction, and monophasic action potentials. Acute global ischemia in perfused rabbit hearts rapidly suppressed contraction but produced a concurrent increase in systolic and diastolic calcium transients and intracellular calcium alternans.

synapsesocial.com/papers/6a1f718d2865985bbe2ad761https://doi.org/10.1161/01.cir.78.4.1047
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