Search PubMed⌕ Search

Biomedical subjects

C S Apstein

Publications and source records attributed to C S Apstein.

At least 109 records · Page 6Linked to original sources

Effects of reperfusion after coronary artery occlusion on post-infarction scar tissue.

Early reperfusion after a coronary occlusion may reduce myocardial infarct size, but late reperfusion into necrotic myocardium may alter post-infarction healing. In rabbits, we compared 1- or 3-week-old scars resulting from permanent coronary occlusion to those resulting from a 1- or 3-hour occlusion followed by reperfusion. Reperfusion at 1 hour post-occlusion did not affect scar mechanical properties assessed at 1 week post-infarction, but at 3 weeks post-infarction, these scars had a tensile strength significantly lower than those not reperfused (78 +/- 11 vs. 158 +/- 15 g/mm2, P less than 0.001). They also were composed of a mixture of fibrous tissue (58 +/- 8%) and myocytes (43 +/- 8%) with a hydroxyproline content of 23 +/- 2.5 mg/g dry weight. The nonreperfused scars had a higher proportion of fibrous tissue (73 +/- 3%) by histological evaluation and a 35% higher hydroxyproline content (31 +/- 2 mg/g dry weight, P less than 0.001) than the scars reperfused after 1 hour. In contrast, 3-week-old scars resulting from "late" reperfusion at 3 hours post-occlusion were similar to nonreperfused scars in fibrous tissue composition and hydroxyproline content. Nonetheless, the tensile strength of these scars reperfused 3 hours post-occlusion was significantly less than that of the nonreperfused scars (72 +/- 5 vs. 158 +/- 15 g/mm2, P less than 0.001). The lower tensile strength was associated with a lower collagen cross-link density in this reperfused group of scars. At physiological stress levels (approximately 3 g/mm2), all groups of reperfused and nonreperfused scars had similar mechanical properties in terms of natural strain, stiffness, creep, and stress relaxation. Thus, although the reperfused scars ruptured more easily at high stresses, when assessed at physiological stresses their mechanical properties were not significantly different from those of nonreperfused scars.

Animals↗

Protective effects of cardioplegia on diastolic function of hypertrophied rat hearts after hypothermic ischaemic arrest.

This study was undertaken to assess the effects of hypothermia and chemical cardioplegia on the functional recovery of hypertrophied non-failing rat hearts subjected to an extended period of global ischaemia. Left ventricular hypertrophy was produced by constriction of the abdominal aorta. Hearts were studied an average of 8 weeks following this procedure. Sham-operated animals served as controls. Twenty-nine isolated isovolumic perfused rat heart preparations were then subjected to 2 h of ischaemic arrest at 15-18 degrees C followed by 45 min of normothermic reperfusion. In one series of hearts (8 sham, 8 hypertrophied), myocardial protection consisted of hypothermia alone. In another series (6 sham, 7 hypertrophied), repeated infusions of cardioplegic solution at 30-min intervals throughout arrest were added to hypothermia. Hypothermia alone resulted in a similar preservation of contractility as evidenced by the recovery of dp/dtmax/left ventricular (LV) systolic pressure after 45 min of reperfusion (91.6 +/- 5.9% of control values in sham vs 78.6 +/- 6.5% in hypertrophied hearts). Conversely, the recovery of compliance was much more impaired in hypertrophied hearts as indicated by a significantly higher percentage of increase in post-ischaemic LV diastolic pressure (DP) (at 45 min of reperfusion: 243.8 +/- 27.5% of control values vs 167.1 +/- 23.8% in sham, P less than 0.05). The addition of cardioplegia improved the preservation of contractility in both groups but its major effect was to normalize the recovery of compliance in hypertrophied hearts so that post-ischaemic LVDP values were no longer different from those recorded in normal hearts (at 45 min of reperfusion: 102.1 +/- 32.8% vs 98.5 +/- 14.2% of pre-ischaemic values respectively).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Failure of nifedipine and reperfusion to reduce infarct size relative to region at risk as measured by NADH fluorophotography.

In this report we describe a new technique for the measurement of region at risk after coronary artery ligation in the rabbit by NADH fluorophotography. We also describe the application of this technique to a study of nifedipine combined with reperfusion in experimental myocardial infarction. In 16 untreated rabbits the epicardial surface area of NADH fluorescence immediately after coronary ligation correlated with infarct size at 24 hr after coronary occlusion, as measured by nitro blue tetrazolium staining (r = .84, p less than .001). In 24 rabbits we studied the effect of nifedipine administered immediately after coronary ligation and combined with reperfusion at 1 hr after occlusion. Nifedipine had no significant effect on region at risk or infarct size.

Animals↗

Determinants of a protective effect of glucose and insulin on the ischemic myocardium. Effects on contractile function, diastolic compliance, metabolism, and ultrastructure during ischemia and reperfusion.

The efficacy of hyperglycemia and insulin therapy for reducing ischemic myocardial injury is controversial and unproven. Accordingly, factors that might influence the effects of hyperglycemia and insulin were studied in isolated perfused rabbit hearts at two degrees of global ischemia, either "severe" or "moderate." During the ischemic period, different groups (n = 15-28/group) received either 100 mg/100 ml glucose-no insulin (control group), 500 mg/100 ml glucose + 100 mU/ml insulin (G + I), or 100 mg/100 ml glucose + 400 mg/100 ml mannitol (osmotic control). During moderate ischemia, effective washout of myocardial lactate was maintained, and hyperglycemia and insulin doubled the glycolytic flux, completely prevented contracture during ischemia, decreased contracture during reperfusion, increased recovery of postischemic contractile function, decreased ultrastructural damage, and increased high energy phosphate levels. Hyperglycemia and insulin increased glycolytic flux only after 30 minutes of ischemia had elapsed, suggesting that endogenous glycogen provided adequate glycolytic substrate prior to this time. The mannitol-glucose substrate had no beneficial effects, indicating that the hyperglycemia and insulin substrate had a metabolic rather than an osmotic mechanism of action. In contrast, during severe ischemia, tissue lactate washout was ineffective; the hyperglycemia and insulin substrate increased glycolytic flux by only 15% and produced no persistent beneficial effects. These results suggest that hyperglycemia and insulin therapy is beneficial to the ischemic myocardium when two conditions are met. First, the degree of myocardial perfusion, although in the ischemic range, must be adequate to prevent the accumulation of high tissue levels of lactate which inhibit glycolysis and prevent any glycolytic stimulation by hyperglycemia and insulin. Second, the ischemic myocardium must be "glucose dependent" for glycolytic substrate; in our studies this occurred after 30-45 minutes of sustained ischemia, probably because myocardial glycogen stores became depleted.

Animals↗

Myocardial healing and repair after experimental infarction in the rabbit.

Adequacy of healing after acute myocardial infarction may determine the incidence of postmyocardial infarction rupture and ventricular aneurysm. Accordingly, in 36 rabbits, from 1 to 8 days after coronary ligation, and in 18 shams, we measured collagen formation and mechanical resistance of the infarcted left ventricle to stretch and rupture. Prolyl hydroxylase, an intracellular enzyme of collagen synthesis, increased from control activity of 3970 +/- 431 to 9224 +/- 643 counts/min per mg (cpm/mg) extractable protein (P less than 0.01) at 48 hours and was nearly maximal at 3 days postmyocardial infarction (14,518 +/- 2,030 cpm/mg, P less than 0.01). Lysyl oxidase, an extracellular collagen cross-linkage enzyme, increased from control activity of 29.6 +/- 4.8 to 74.7 +/- 18.8 cpm/mg extractable protein (P less than 0.01) at 72 hours and peaked at 121.5 +/- 7.3 (P less than 0.01) 4-6 days postmyocardial infarction. Hydroxyproline, a measure of collagen content, increased from control of 2.8 +/- 0.2 to 5.3 +/- 0.6 mg/g dry weight (P less than 0.05) at 72 hours and continued to increase at 8 days postmyocardial infarction (14.5 +/- 1.7 mg/g dry weight; P less than 0.01). When enzyme activities and hydroxyproline content were expressed relative to other reference bases, including DNA, tissue protein, dry weight, and total left ventricle, similar results were obtained. The mechanical properties of the infarcted left ventricle were determined by filling a balloon in the excised left ventricle until rupture. The rupture threshold in the normal left ventricle, [664 +/- 43 mm Hg (n = 16)], was not significantly different from that of the infarcted left ventricle on days 1-8 postmyocardial infarction. However, left ventricular rupture occurred more often through the myocardial infarction on days 1-4 postmyocardial infarction (59%) than on days 6 and 8 (18%; P = 0.03) when collagen content had significantly increased. Wall stress at the point of rupture in left ventricles from shams and normals was 30 +/- 2 g/mm2; tensile strength in isolated left ventricle muscle strips was 25 +/- 4 g/mm2 and in isolated scar strips at 7 days postmyocardial infarction was 59 +/- 7 g/mm2. The passive stiffness of the infarcted left ventricle increased from control of 61 +/- 5 to 94 +/- 6 mm Hg/100 microliters (P less than 0.05) at 4 days and 100 +/- 7 mm Hg/100 microliters (P less than 0.01) at 6 days postmyocardial infarction. Stiffness correlated with hydroxyproline content over the 8 days postmyocardial infarction (r = 0.599; P less than 0.001). Thus, the acutely infarcted ventricle was highly resistant to rupture during the initial 48 hours postmyocardial infarction, before any increase in collagen occurred. This result suggests that the preinfarction collagen content has an important role in preventing rupture. After 72 hours postmyocardial infarction, collagen synthesis appeared to be a determinant of infarct stiffness and resistance of the infarcted ventricle to rupture.

Animals↗

Movement of necrotic wavefront after coronary artery occlusion in rabbit.

Movement of the necrotic wavefront after coronary artery occlusion (CAO) was defined in rabbits by comparing transient CAO (15, 30, or 60 min) and reperfusion to permanent CAO (n = 5-9/group). At 24 h after CAO the area of necrosis was determined by nitro-blue tetrazolium staining, and the transmural and circumferential extent of necrosis was evaluated at four levels from ligation to apex. Infarct size after permanent CAO for 24 h was 27 +/- 2 (SE) % of the left ventricle. Reperfusion at 60, 30, or 15 min after CAO reduced the infarct size to 24 +/- 3 (P = NS vs. 24 h), 14 +/- 2, and 8 +/- 1% (P less than 0.05 vs. 60 min), respectively. Reperfusion at 15 and 30 min after CAO decreased transmural extent by 49 and 38% (P less than 0.001 vs. 24 h), whereas the circumferential extent was reduced by only 10 and 12%, respectively (P = NS). After 60 min of CAO, reperfusion did not significantly reduce either transmural or circumferential necrosis. Thus early reperfusion reduced infarct size by converting potentially transmural infarcts into subendocardial infarcts but did not significantly reduce the lateral or circumferential extent of necrosis.

Animals↗

Coronary arterial vasodilator effect of ibuprofen.

The effect of ibuprofen, a nonsteroidal anti-inflammatory agent, on coronary vascular resistance in isolated perfused rabbit heart was studied. Ibuprofen had coronary arterial vasodilatory activity. An arterial concentration of 50 microgram/ml produced a half-maximal coronary vasodilator response. An ibuprofen concentration of 140 microgram/ml produced a coronary vasodilation, equal to that caused by hypoxia. A level of 280 microgram/ml depressed contractile function. The change in coronary vascular resistance did not appear to be physiologic autoregulation of coronary tone because determinants of myocardial oxygen demand were not significantly affected and myocardial oxidative metabolism was not significantly impaired, as reflected by myocardial lactate extraction, which was not significantly affected during the ibuprofen-induced coronary dilation. These results suggest a direct effect of ibuprofen on coronary vascular resistance.

Adenosine↗

Comparison of acute alterations in left ventricular relaxation and diastolic chamber stiffness induced by hypoxia and ischemia. Role of myocardial oxygen supply-demand imbalance.

To clarify conflicting reports concerning the effects of ischemia on left ventricular chamber stiffness, we compared the effects of hypoxia at constant coronary perfusion with those of global ischemia on left ventricular diastolic chamber stiffness using isolated, perfused rabbit hearts in which the left ventricle was contracting isovolumically. Since chamber volume was held constant, increases in left ventricular end diastolic pressure (LVEDP) reflected increases in chamber stiffness. At a control coronary flow rate (30 ml/min), 2 min of hypoxia and pacing tachycardia (4.0 Hz) produced major increases in postpacing LVEDP (10+/-1 to 24+/-3 mm Hg, P < 0.01) and the relaxation time constant, T, (40+/-4 to 224+/-37 ms, P < 0.001), while percent lactate extraction ratio became negative (+ 18+/-2 to -48+/-15%, P < 0.001). Coronary perfusion pressure decreased (72+/-5 to 52+/-3 mm Hg, P < 0.01), and since coronary flow was held constant, the fall in coronary perfusion pressure reflected coronary dilation and a decrease in coronary vascular resistance. Following an average of 71+/-6s reoxygenation and initial heart rate (2.0 Hz), LVEDP and relaxation time constant T returned to control. Hypoxia alone (without pacing tachycardia) produced similar although less marked changes (LVEDP, 10+/-1 to 20+/-3 mm Hg; and T, 32+/-3 to 119+/-22 ms; P < 0.01 for both) and there was a strong correlation between LVEDP and T (r = 0.82, P < 0.001). When a similar degree of coronary vasodilatation was induced with adenosine, no change in LVEDP occurred, indicating that the increase in end diastolic pressure observed during hypoxia was not secondary to vascular engorgement, but due to an acute effect of hypoxia on the diastolic behavior of the ventricular myocardium. In contrast, global ischemia produced by low coronary flow (12-15 ml/min) resulted in a decrease in LVEDP, as well as a marked fall in left ventricular systolic pressure. In 14 global ischemia experiments, pacing tachycardia led to a further decline in left ventricular systolic pressure, and no increase was noted in postpacing LVEDP. Changes in lactate extraction ratio were much smaller in magnitude than with hypoxia and constant coronary perfusion. In two experiments (one at normal coronary flow and one at 15 ml/min), left ventricular systolic pressure did not change markedly from control when tachycardia was superimposed, and postpacing LVEDP showed a marked rise (to > 25 mm Hg), which gradually recovered over 1-2 min at the control heart rate. From these results, we conclude that left ventricular chamber stiffness increases when myocardial O(2) demand exceeds supply. This change is usually masked in ischemic (reduced coronary flow) preparations, perhaps because of reduced turgor of the coronary vascular bed, marked reductions in systolic work (and therefore myocardial O(2) requirements), and local accumulation of hydrogen ion and metabolites following acute severe reduction of coronary flow. The increased chamber stiffness during hypoxia is accompanied by marked slowing of relaxation, with increased diastolic pressure relative to volume persisting throughout diastole.

Animals↗

Sodium permeability and myocardial resistance to cell swelling during metabolic blockade.

The role of cell membrane permeability to sodium in cell volume regulation during inhibition of the sodium-potassium exchange pump with ouabain and during total metabolic blockade was evaluated in sections of guinea pig renal cortex, ventricle, and atrium incubated in Krebs-Henseleit solution. In all tissues, 2 and 3 h of ouabain and metabolic blockade resulted in similar marked losses of potassium and parallel continuous reductions in resting membrane potentials. Only metabolic blockade of renal cortex increased cell water, chloride, and total monovalent cations (potassium plus sodium) significantly. Compared to ouabain, metabolic blockade markedly increased the rate of cellular washout of 24Na+ from renal cortex (t 1/2 reduced by 47%), which was significantly greater than reductions in t 1/2 from ventricle (16%) and atrium (15%). Thus, inhibition of sodium-potassium exchange pump activity was not sufficient to produce cell swelling unless associated with marked increases in cell membrane permeability to sodium, in which case sodium influx exceeded potassium loss and substantial increases in monovalent cations, chloride, and water occurred.

Adenosine Triphosphate↗

Suppression of experimental atherosclerosis by the Ca++-antagonist lanthanum. Possible role of calcium in atherogenesis.

Agents inhibiting calcium deposition into arteries are known to suppress atherosclerosis in animals. However, the precise role of calcium in atherogenesis is unknown. In this study, the specific Ca2+-antagonist lanthanum was used to attempt suppression of experimental atherosclerosis and to gain more insight into the possible effects of calcium on atherogenesis. Rabbits were fed an atherogenic diet with and without increasing doses of LaCl3. All cholesterol-fed rabbits showed marked increases in serum cholesterol and ca2+. Untreated atherogenic animals revealed pronounced gross and microscopic atherosclerosis and striking increases in the aortic content of cholesterol, collagen, "elastin," and calcium as well as of elastin calcium, polar amino acids, and cholesterol. With increasing LaCl3 dosage these abnormalities progressively decreased and were completely abolished at the highest dose. The ingested La3+ was absorbed only in small quantities and had no discernible effect on the calcium and connective tissue content of bone, skin, lung, heart, and skeletal muscle nor on myocardial function (left ventricle pressure and left ventricle dp/dt) or myocardial and muscle content in ATP and creatine phosphate. The data suggest that shifts in arterial Ca2+-distribution may play a decisive part in atherogenesis, and provision of arterial calcium homeostasis by La3+ a pivotal role in its prevention, despite hypercholesteremia. Other inhibitors of calcium deposition into arteries may exert their protective effect by similar mechanisms. However, a direct inhibition of atherogenesis by La3+ cannot entirely be ruled out in this study, although no direct effects of La3+ on tissue metabolism have as yet been reported.

Animals↗

Noninvasive assessment of cardiac motion: comparison of the apexcardiogram and cardiokymorgram.

The apexcardiogram (ACG) and cardiokymogram (CKG) (displacement cardiogram) tracings were compared in 45 patients with a variety of cardiac diseases and in 16 normal subjects. The ACG and CKG were generally comparable in waveform and timing of standard tracing intervals; however, on a case by case comparison frequent discrepancies between the ACG and CKG were observed. In 13 patients where no ACG could be recorded, an interpretable CKG tracing was obtained. However, the CKG produced frequent artifacts, mirror images, was very sensitive to probe position, and was judged to be of limited advantage over the ACG.

Adult↗

Experimental myocardial infarction. XVI. The detection of inotropic contractile reserve with postextrasystolic potentiation in acutely ischemic canine myocardium.

Postextrasystolic potentiation after a single closely coupled extrasystole may identify residual ventricular contractile performance in acutely ischemic myocardium without producing sustained secondary ischemic depression of myocardial function. Postextrasystolic potentiation was systematically used in eight open chest dogs to assess the progression of regional contraction abnormalities during a 10 minute occlusion of the left anterior descending coronary artery. Segment function was determined from pressure-length loop areas inscribed during right ventricular pacing at 128 +/- 3 (mean +/- standard error of the mean) beats/min, and after single closely coupled (179 +/- 3 msec) extrasystoles. Despite a 50 percent decrease in border zone segment function, postextrasystolic potentiation consistently augmented mechanical performance to control levels throughout the ischemic period. Central ischemic zone segment function deteriorated more profoundly, with the development of holosystolic aneurysmal bulging within 30 seconds after occlusion. Nonetheless, postextrasystolic potentiation produced marked inotropic augmentation, but not to control levels, for up to 10 minutes of ischemia. These results suggest that latent viability and contractile reserve may exist during brief periods of coronary occlusion.

Animals↗

Effect of intessive plasmapheresis on the plasma cholesterol concentration with familial hypercholesterolemia.

Plasmapheresis was studied as a means of reducing the serum cholesterol concentration in 3 hypercholesterolemic patients who each underwent courses of intensive plasmapheresis with removal of 250--500 ml of plasma each day for 5--9 days. In one homozygous Type II patient, the serum cholesterol concentration decreased from 609 +/- 45 mg/100 ml (mean +/- SEM) to 365 +/- 17 mg/100 ml (40% decrease, P less than 0.05) with two different courses of plasmapheresis. In the two other patients with non-homozygous hyperbetalipoproteinemia the serum cholesterol concentration decreased from 289 +/- 27 mg/100 ml to 205 +/- 19 mg/100 ml (29% decrease, p less than 0.05). After cessation of treatment, the cholesterol concentration returned to pre-treatment levels in 10--13 days in the homozygous patient and 7 days in one non-homozygous hyperbetalipoproteinemic patient; clofibrate (2 g/day) in this patient was associated with a smaller reduction of the cholesterol concentration with plasmapheresis and an increased rate of return of pre-treatment levels after plasmapheresis was stopped. Sustained plasmapheresis for 6 days in the other non-homozygous hyperbetalipoproteinemic patient resulted in a new approximate "steady state" with a serum cholesterol concentration of 176--199 mg/100 ml compared with a pre-plasmapheresis value of 227 mg/100 ml. The response of the plasma cholesterol levels to plasmapheresis was subjected to kinetic analysis based on a current model of the regulation of lipoprotein metabolism.

Adolescent↗