BACKGROUND Transient reversible myocardial dysfunction has been documented after episodes of exercise-induced ischemia. This study was undertaken to determine whether the duration or intensity of exercise affects the severity of postischemic dysfunction in this setting. METHODS AND RESULTS Ten dogs were instrumented with ultrasonic microcrystals for measurement of wall thickening, with circumflex coronary artery flow probes, and with hydraulic occluders. Dogs performed low-intensity exercise, which was sufficient to increase coronary perfusion 50% above control, and high-intensity exercise, which was sufficient to double coronary blood flow. To investigate the effects of exercise intensity on postischemic dysfunction, we had dogs perform high-intensity exercise for 5 minutes in the presence of a stenosis. On the alternate day, dogs performed low-intensity exercise for 10 minutes in the presence of a stenosis. These two protocols provide equivalent coronary flow debts. Mean transmural blood flow during high-intensity exercise without stenosis (2.61 +/- 0.54 ml/min/g) was significantly higher than that during low-intensity exercise (1.74 +/- 0.61 ml/min/g, p less than 0.002). During high-intensity exercise with coronary artery stenosis, subendocardial blood flow was significantly lower than that during low-intensity exercise with stenosis (0.64 +/- 0.40 versus 1.08 +/- 0.28 ml/min/g, p less than 0.02). This difference in subendocardial perfusion was associated with greater degrees of regional dysfunction during exercise (circumflex wall thickening was 44 +/- 23% of control for high-intensity exercise versus 60 +/- 18% of control for low-intensity exercise, p less than 0.01). In addition, from 10 to 30 minutes after exercise, wall thickening in myocardium perfused by the circumflex coronary artery remained significantly lower after high-intensity exercise than that after low-intensity exercise. To assess the effects of exercise duration on the severity of postischemic dysfunction, we had dogs perform low-intensity exercise in the presence of a coronary stenosis for 10 minutes and low-intensity exercise for only 5 minutes on alternate days. Systolic wall thickening was significantly lower after low-intensity exercise for 10 minutes than after low-intensity exercise for 5 minutes. CONCLUSIONS High-intensity exercise results in greater degrees of subendocardial hypoperfusion and greater degrees of regional dysfunction both during and after exercise-induced ischemia than does low-intensity exercise. Second, exercise duration also exerts an effect on the severity of postischemic dysfunction, although the magnitude of this effect is less important than the effect of exercise intensity.
Coronary vascular responses in regions of reversible postischemic myocardial contractile dysfunction (stunned myocardium) were examined in chronically instrumented, awake dogs. Left anterior descending coronary artery blood flow and oxygen extraction, aortic and left ventricular pressures, and regional myocardial segment shortening were determined. Regional myocardial blood flow was measured with microspheres. Coronary reactive hyperemia and vasodilator reserve, and regional myocardial oxygen consumption were determined. Three sequential 10-minute left anterior descending coronary artery occlusions separated by 30-minute reperfusion periods resulted in progressive postischemic dysfunction so that 1 hour after the final coronary artery occlusion, myocardial segment shortening was reduced to 37% of baseline. Despite this decrease in contractile function, left anterior descending artery flow (19.6 +/- 2.6 vs. 18.4 +/- 3.0 ml/min), myocardial blood flow and the transmural distribution of flow measured with microspheres, and regional myocardial oxygen consumption were unchanged. Although the coronary vasodilator reserve in response to adenosine was unaltered (63 +/- 9 vs. 70 +/- 15 ml/min), the reactive hyperemia response to a 10-second coronary occlusion was decreased in intensity (debt repayment ratio = 474 +/- 78% vs. 322 +/- 74%; p less than 0.05) and duration (57 +/- 9.1 vs. 35 +/- 4.5 seconds; p less than 0.05), while the peak flow response was unchanged (57 +/- 6.8 vs. 60 +/- 7.1 ml/min). Thus, in the intact awake animal postischemic myocardial contractile dysfunction was not associated with decreased myocardial oxygen consumption and did not impair the normal relation between coronary blood flow and myocardial oxygen utilization. Although coronary vessels showed a normal ability to vasodilate in response to adenosine, coronary reactive hyperemia was reduced.
Adiabatic pulses have been employed in spectroscopic imaging and relaxation rate measurements at 4.7 T to demonstrate the feasibility of obtaining spectroscopic data from the complete sensitive volume of a surface coil using the surface coil as a transmitter and receiver. With conventional B 1 sensitive pulses, spectroscopic localization or imaging techniques, such as chemical‐shift imaging, yield resonance intensities that are distorted severely as a function of space, and maximal signal is detected from a small region within the complete sensitive volume of the coil. With adiabatic pulses, however, this problem is eliminated completely. In addition, a new method of spatial localization is introduced. This method, referred to as FLAX‐ISIS, is a derivative of longitudinally modulated Fourier series window and ISIS approaches and utilizes adiabatic inversion and excitation pulses. The method allows construction of localized spectra for multiple regions along the surface coil axis by postacquisition data manipulation of a single set of free induction decays. These techniques were applied to the study of the myocardium using an implanted surface coil in an instrumented closed‐chest canine model and in an open‐chest preparation. The results demonstrate that one‐dimensional techniques are adequate for transmural detection of metabolites provided signal origin is restricted to a column perpendicular to the left ventricle wall. © 1989 Academic Press, Inc.
To determine whether progressive regional myocardial dysfunction occurs after repetitive episodes of exercise-induced ischemia, 10 dogs were instrumented with ultrasonic microcrystals for determination of regional myocardial wall thickening, circumflex artery electromagnetic flow probes, and hydraulic coronary artery occluders. Dogs performed treadmill exercise in the presence of a coronary artery stenosis, which limited coronary blood flow to control levels. Dogs performed a single 10-min exercise period one day and three identical runs separated by 1-h rest periods on the alternate day. At rest before the first exercise period, circumflex wall thickening was 18.8 +/- 6.7% and increased to 25.5 +/- 10.6% during exercise before the application of coronary stenosis. On the day that three exercise trials were performed, circumflex systolic wall thickening at rest before the third exercise period (9.7 +/- 4.0%) and during exercise without coronary stenosis (17.3 +/- 7.3%) were both significantly lower than during the first exercise period (P less than 0.0125). During exercise with stenosis, circumflex systolic wall thickening fell to 4.6 +/- 4.7% during a single run, and 5.0 +/- 2.0% during the third of three consecutive runs. Wall thickening was significantly lower 2 h after the third consecutive run (9.1 +/- 2.4%) than 2 h after a single period of exercise-induced ischemia (14.8 +/- 7.6%; P 0.0125). Transmural myocardial blood flow to circumflex myocardium during the third period of exercise-induced ischemia (0.93 +/- 0.47 ml.min-1.g-1) was not different than during the single period of exercise (0.84 +/- 0.47 ml.min-1.g-1). It is concluded that repetitive episodes of exercise-induced ischemia result in cumulative postexercise regional myocardial dysfunction.
This study was carried out to determine the relative importance of alpha 1- and alpha 2-adrenergic vasoconstriction in opposing the increase in coronary blood flow, which occurs during exercise. The response of left circumflex coronary artery blood flow was examined during treadmill exercise in 16 chronically instrumented dogs during control conditions, after selective alpha 1-adrenergic blockade with intracoronary prazosin, and after alpha 2-blockade with intracoronary idazoxan. During control conditions, graded treadmill exercise resulted in progressive increases of coronary blood flow and decreases of coronary vascular resistance. Prazosin produced highly selective alpha 1-adrenergic blockade; coronary blood flow was significantly higher and coronary vascular resistance significantly lower during all but the heaviest exercise stage after prazosin. Idazoxan produced highly effective, but only moderately selective, alpha 2-adrenergic blockade. However, after idazoxan, coronary blood flow and coronary vascular resistance during exercise were not significantly different from control. Combined alpha 1- and alpha 2-adrenergic blockade was not more effective in increasing coronary blood flow during exercise than was alpha 1-adrenergic blockade alone. These data support a role for alpha 1-adrenergic coronary vasoconstriction in limiting the increase in coronary blood flow, which occurs during exercise, but do not support a role for alpha 2-mediated coronary vasoconstriction during exercise.
Phosphorus-31 nuclear magnetic resonance (31P NMR) has been applied to study the canine heart prior to and during regional myocardial ischemia induced by partial flow reduction in the left anterior descending coronary artery (LAD). NMR data were acquired in a transmural fashion by restricting the signal to a column perpendicular to the heart wall using B0 gradients and obtaining spectroscopic spatial resolution along the third dimension using the B1 gradient and adiabatic excitation. With this approach, transmural spectra were accumulated in five separate voxels spanning the wall of the left ventricle from the epicardium to the endocardium. In the normal canine myocardium the levels of high-energy phosphates CP and ATP were relatively constant throughout the left ventricular wall, with only minor evidence of free inorganic phosphate in any of the transmural voxels. However, during sustained partial occlusion of the LAD, significant regional differences between the epi- and the endocardium were noted. The data demonstrate the importance of studying cardiac bioenergetics with transmural differentiation.
To determine whether ischemia in the exercising dog is associated with preservation of subepicardial thickening relative to subendocardial thickening, 10 dogs were chronically instrumented with circumflex artery flow probes, hydraulic occluders, and pairs of ultrasonic microcrystals for determination of wall thickness in the circumflex artery distribution. One pair of crystals spanned the entire ventricular wall (transmural), and the other spanned the outer half of the ventricular wall. Inner wall thickness was computed as the difference between transmural wall thickness and outer wall thickness. Dogs performed control treadmill exercise and exercise with a coronary stenosis that reduced circumflex artery flow to resting control levels. Percent systolic thickening at rest for the transmural, inner, and outer regions was 21.3 +/- 11.8%, 35.5 +/- 20.3%, and 10.3 +/- 5.0% (mean +/- SD), respectively. During exercise without stenosis, systolic thickening increased to 143 +/- 37% of control for outer wall crystals and 137 +/- 26% of control for the inner portion of the wall. During exercise, the addition of a coronary stenosis caused a reduction in thickening to 17.7 +/- 28.5% of control for the outer wall and 40.1 +/- 32.3% of control for the inner portion of the wall; these were not significantly different. In contrast, normalized inner wall blood flow during exercise with circumflex artery stenosis (25.0 +/- 16.0%) was significantly less than for the outer portion of the wall (48.5 +/- 20.9%). Further, there was a close relation between changes in inner wall thickening and inner wall blood flow (r = 0.84), whereas there was only a very weak relation between changes in outer wall blood flow and function (r = 0.62; p = 0.04). During ischemia in the exercising dog, outer wall thickening is depressed out of proportion to reductions in outer wall blood flow and is not preserved relative to inner wall thickening.
Myocardial dysfunction may occur in areas remote from an acutely occluded coronary artery if those areas are served by a critically stenosed vessel. Although subendocardial hypoperfusion of such remote myocardium has been demonstrated in experimental preparations of this situation, this study was undertaken to determine whether actual reductions in subendocardial perfusion below control levels were necessary for such dysfunction to occur. A 20 mg dose of pentobarbital was injected into the left anterior descending artery (LAD) in 14 anesthetized dogs to create a large anterior regional wall motion abnormality without drawing significant collateral flow from the circumflex vascular bed. Circumflex subendocardial flow was found to rise during injections of pentobarbital and occlusion of the LAD (1.12 +/- 0.38 and 1.17 +/- 0.34 ml/min/g, respectively, vs control 0.91 +/- 0.23 ml/min/g; p less than .05) in the absence of circumflex stenosis. In the presence of circumflex stenosis, circumflex subendocardial flow fell during left anterior descending occlusion (0.59 +/- 0.21 vs 0.89 +/- 0.19 ml/min/g control; p less than .01) but did not change during pentobarbital injections in the LAD (0.77 +/- 0.36 ml/min/g). In the absence of circumflex stenosis, circumflex segment shortening increased during injection of pentobarbital or occlusion of the LAD (14.3 +/- 4.9% and 14.4 +/- 3.5%, respectively, vs 12.3 +/- 3.3% control). In the presence of circumflex stenosis, it did not change (12.5 +/- 4.0% pentobarbital, 11.8 +/- 3.6 LAD occlusion vs 13.1 +/- 4.0% control). We concluded that the presence of large regional wall motion abnormalities may increase the oxygen consumption of remaining myocardium and that dysfunction of that myocardium may result from relative hypoperfusion if blood flow cannot increase appropriately.
Nifedipine reduces reactive hyperemia following brief coronary artery occlusions. To determine whether this is related to improvement in collateral blood flow to ischemic myocardium or alterations in myocardial oxygen consumption, ten chloralose anesthetized dogs were instrumented with coronary sinus catheters, circumflex artery flowmeters, and ultrasonic microcrystals for measurement of myocardial segment shortening. Myocardial oxygen consumption and circumflex coronary artery flow were determined at rest and during incremental infusions of isoproterenol. Myocardial blood flow measured with microspheres and segmental function were assessed during and following 30- and 60-second coronary artery occlusions. Thirty minutes after the intravenous administration of nifedipine, 10 μg/kg iv, all measurements were repeated. Nifedipine did not alter myocardial oxygen consumption or the relationship between oxygen consumption and circumflex coronary artery flow either at rest or during isoproterenol infusion. Following 60-second coronary occlusions, nifedipine reduced peak circumflex coronary artery flow (176±99 vs. 128±68 cc/min) and reactive hyperemia debt repayment (221±84 vs. 158±66%; p<0.01). Nifedipine did not alter flow to ischemic segments during coronary artery occlusions (0.16±0.10 vs. 0.19±0.13 ml/min/g mean transmural flow). Furthermore, nifedipine did not affect the severity of ischemic segment dysfunction, nor the rate of recovery of ischemic segment function following release of coronary artery occlusion. We conclude that the reduction in reactive hyperemia induced by nifedipine was not related to alterations in the severity of hypoperfusion in ischemic areas, or alterations in myocardial oxygen consumption. Reductions in reactive hyperemia produced by nifedipine did not impair recovery of mechanical function in postischemic myocardium.
To determine whether regional myocardial dysfunction occurring after exercise-induced ischemic might be caused by continued abnormalities of myocardial blood flow in the post-exercise period, nine dogs were instrumented with ultrasonic microcrystals for determination of circumferential segment shortening, circumflex artery electromagnetic flow probes, and hydraulic coronary artery occluders. Dogs performed treadmill exercise during partial inflation of the coronary artery occluder. When the stenosis was maintained after exercise (persistent stenosis), subendocardial flow = 0.79 +/- 0.42 ml/min per g vs. 1.39 +/- 0.43 ml/min per g control), and this was associated with continued dysfunction in the ischemic zone (segment shortening 45.4 +/- 36.9% of resting control). When the stenosis was released immediately after exercise (temporary stenosis), however, flow was markedly increased 1 min post-exercise (mean transmural flow 4.24 +/- 1.22 ml/min per g; subendocardial flow 4.18 +/- 1.52 ml/min per g), and this was associated with a transient increase in segment shortening to 104.5 +/- 9.3% of resting control. 5 min after exercise, however, moderate reductions in ischemic segment shortening were noted after both temporary stenosis and persistent stenosis runs, and these persisted for 30 min post-exercise. It is concluded that regional left ventricular dysfunction may persist for a significant period of time after exercise-induced ischemia. Furthermore, early after exercise, dysfunction is related to persistent abnormalities of myocardial blood flow, whereas late after exercise it is independent of primary reductions in myocardial blood flow.
This study was performed to test the hypothesis that growth of coronary vasculature would be facilitated if myocardial hypertrophy occurred during the period of normal body growth rather than in mature adult animals. Left ventricular hypertrophy was produced by banding the ascending aorta in eight young dogs 7 wk of age and in nine adult dogs. Adult dogs were studied 2 mo after aortic banding, whereas young dogs were allowed to grow to adulthood before study. Left ventricular weight-to-body weight ratios were increased to 6.88 +/- 0.36 g/kg in the young dogs and 6.64 +/- 0.47 in adult dogs; both were significantly greater than seven normal control animals (4.32 +/- 0.05; each P less than 0.01). Myocardial blood flow per gram measured with microspheres during quiet resting conditions was significantly higher in young dogs with left ventricular hypertrophy than in normal dogs. Myocardial blood flow rates during maximum coronary vasodilation with adenosine (4 mumol X kg-1 X min-1 iv) were similar in all three groups. However, since mean coronary perfusion pressure was higher in the dogs with aortic banding, minimum coronary vascular resistance per gram of myocardium was significantly higher in both young (21.1 +/- 3.1 mmHg X ml-1 X min X g) and adult dogs with left ventricular hypertrophy (21.8 +/- 2.2) than in the normal dogs (16.8 +/- 3.1; each P less than 0.01). Mean coronary vascular resistance for the total left ventricle was similar in all three groups of animals, suggesting that growth of coronary vasculature did not occur as the myocardium underwent hypertrophy.(ABSTRACT TRUNCATED AT 250 WORDS)
To determine whether function is depressed in areas of myocardium adjacent to an area of myocardial ischemia, 16 open-chest dogs were studied with both two-dimensional echocardiography and ultrasonic microcrystals. Regional myocardial blood flow was measured with radioactive microspheres during control periods and after coronary arterial ligation. Segments of myocardium adjacent to the area of ischemia were found to have no significant change in transmural blood flow (1.02 +/- 0.38 ml/g/min control vs 0.95 +/- 0.3 ml/g/min after ligation) or subendocardial flow (1.18 +/- 0.41 ml/g/min control vs. 1.19 +/- 0.37 ml/g/min after ligation). Regional function assessed echocardiographically as percent change in segment area was significantly depressed in these normally perfused adjacent areas (69.5 +/- 18.8% control vs 52.5 +/- 19.8% after ligation; p less than .01). There was a significant relationship between proximity to border of infarction and degree of adjacent dysfunction (r = .50, p less than .01 for echocardiography; r = .70, p less than .01 for ultrasonic microcrystals). It is concluded that systolic performance is depressed in nonischemic myocardium directly adjacent to the lateral border of an area of acute myocardial ischemia.