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June 25, 1999Circulation Research179 citations

Intracellular Sodium Accumulation During Ischemia as the Substrate for Reperfusion Injury

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KIKenichi ImahashiHKHideo KusuokaKHKatsuji Hashimoto

Structured PICO

P
Population
Isolated perfused rat hearts
I
Intervention
Ischemia of varying durations (9, 15, 21, and 27 minutes) followed by reperfusion with low-calcium (0.15 mmol/L) or high-calcium (5 mmol/L) solutions, or a selective Na+/Ca2+ exchanger inhibitor
C
Comparator
Standard reperfusion with 2.0 mmol/L calcium solution
O
Outcome
Intracellular Na+ concentration ([Na+]i) measured by 23Na nuclear magnetic resonance spectroscopy and recovery of developed pressuresurrogate

Intracellular sodium accumulation during ischemia is a key substrate for reperfusion injury, and its kinetics during reperfusion, coupled with calcium influx, determine the extent of functional recovery.

Abstract

To elucidate the role of intracellular Na+ kinetics during ischemia and reperfusion in postischemic contractile dysfunction, intracellular Na+ concentration (Na+i) was measured in isolated perfused rat hearts using 23Na nuclear magnetic resonance spectroscopy. The extension of the ischemic period from 9 minutes to 15, 21, and 27 minutes (at 37 degrees C) increased Na+i at the end of ischemia from 270.0+/-10.4% of preischemic level (mean+/-SE, n=5) to 348.4+/-12.0% (n=5), 491.0+/-34.0% (n=7), and 505.3+/-12.1% (n=5), respectively, whereas the recovery of developed pressure worsened with the prolongation of the ischemic period (95.1+/-4.2%, 84.3+/-1. 2%, 52.8+/-13.7%, and 16.9+/-6.4% of preischemic level). The kinetics of Na+i recovery during reperfusion was analyzed by the fitting of a monoexponential function. When the hearts were reperfused with low-Cao (0.15 mmol/L) solution, the time constants of the recovery (tau) after 15-minute (8.07+/-0.85 minutes, n=5) and 21-minute ischemia (6.44+/-0.90, n=5) were significantly extended, with better functional recovery (98.5+/-1.4% for 15-minute P<0.05; 98.0+/-1.0% for 21-minute P<0.05) compared with standard reperfusion (Cao=2.0 mmol/L, tau=3.58+/-0.28 minutes for 15-minute P<0.0001; tau=3.02+/-0.20 for 21-minute P<0.0001). A selective inhibitor of Na+/Ca2+ exchanger also decelerated the Na+i recovery, which suggests that the recovery reflects the Na+/Ca2+ exchange activity. In contrast, high-Cao reperfusion (5 mmol/L) accelerated the Na+i recovery after 9-minute ischemia (tau=2.48+/-0.11 minute, n=5 P<0.0001) and 15-minute ischemia (tau=2.10+/-0.07, n=6 P<0. 05), but functional recovery deteriorated only in the hearts with 15-minute ischemia (29.8+/-9.4% P<0.05). Na+i recovery after 27-minute ischemia was incomplete and decelerated by low-Cao reperfusion, with limited improvement of functional recovery (42. 5+/-7.9%, n=5 P<0.05). These results indicate that intracellular Na+ accumulation during ischemia is the substrate for reperfusion injury and that the Na+i kinetics during reperfusion, which is coupled with Ca2+ influx, also determines the degree of injury.

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Cite This Study

Imahashi et al. (1999) studied this question.

synapsesocial.com/papers/6a7863f1a7498e5110af4eadhttps://doi.org/10.1161/01.res.84.12.1401
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