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Biomedical subjects

W M Vogel

Publications and source records attributed to W M Vogel.

11 recordsLinked to original sources

Coronary sinus occlusion: effect on ischemic left ventricular dysfunction and reactive hyperemia.

Pressure-controlled intermittent coronary sinus occlusion (PICSO) has been shown to reduce experimental infarct size. To examine the role of PICSO in limiting the consequences of brief ischemia on left ventricular function, we studied the effect of PICSO in nine open-chest anesthetized dogs. PICSO was performed using a pump-inflated, balloon-tipped catheter in the coronary sinus until coronary sinus occlusion pressure reached a plateau (10 +/- 3 seconds). The balloon was then rapidly deflated (2 seconds) and the cycle was repeated. Regional left ventricular function in the ischemic zone was assessed by sonomicrometry. Coronary blood flow was measured with a flow probe around the left anterior descending artery (LAD) proximal to an occluding suture. Measurements were obtained at baseline, during a 3-minute LAD occlusion, and for 10 minutes of reperfusion. In an additional five dogs, this sequence was repeated during an infusion of adenosine at a dose that abolished reactive hyperemia following LAD occlusion. The addition of PICSO beginning 15 minutes prior to ischemia and continuing throughout LAD occlusion and reperfusion did not prevent, reduce, or shorten ischemic left ventricular dysfunction. PICSO uniformly blunted reactive hyperemia during reperfusion. However, PICSO also reduced coronary blood flow during maximal vasodilatation achieved by adenosine infusion prior to LAD occlusion. Therefore, it is likely that PICSO decreases reactive hyperemia due to mechanical factors arising from venous engorgement rather than by reducing the ischemic stimulus causing vasodilation.

Animals

Reversible and irreversible elongation of ischemic, infarcted, and healed myocardium in response to increases in preload and afterload.

BACKGROUND: Left ventricular aneurysm formation after myocardial infarction (MI) has been associated with elongation of infarcted tissue in response to wall stress. Such elongation most commonly occurs in acutely infarcted or partially healed regions during the early post-MI period; however, recent reports have indicated that mature (15-week-old) healed infarct regions also undergo elongation after stress. METHODS AND RESULTS: To assess factors contributing to post-MI left ventricular aneurysm formation, we subjected isolated strips (n = 50) of rabbit myocardial tissue from acutely ischemic (noninfarcted left ventricular), acutely infarcted (24 hours after MI), and healed infarct (3 and 15 weeks after MI) regions to a range of loading conditions and measured the reversible and irreversible length changes that occurred. The isolated strips were repetitively stretched for 1 hour at 4 Hz to impose cyclical physiological peak and resting stresses of 2.0 and 0.2 g/mm2. During a second hour, either peak stress ("afterload") or resting stress ("preload") was tripled, and the increase in strip length (strain) was measured. During a third hour, peak and resting stresses were returned to the initial values to assess the reversibility of length changes occurring during increased load. Elongation was expressed as the increase in natural strain from the first hour. Increasing afterload caused similar irreversible length increases of 4-5%/hr in acutely infarcted and 3- and 15-week-old healed infarct strips; acutely ischemic tissue length increased by 7.4%/hr (p less than 0.05 versus acutely infarcted tissue and scars). Increasing preload in acutely ischemic and acutely infarcted tissue caused a reversible length increase of less than 1%/hr. (Scar strips were not tested for the effect of preload.) CONCLUSIONS: Since an irreversible length increase may represent an early event in aneurysm formation, our results suggest that 1) afterload increases are more likely to lead to aneurysm development than preload increases, 2) acutely ischemic tissue is the most vulnerable to increased afterload, and 3) for a given wall stress level, healing scar tissue is as susceptible to irreversible length changes as is acutely infarcted tissue. The observation that even mature post-MI scar elongated in response to increases in afterload implies that long-term pharmacological management of afterload in post-MI patients may be beneficial in preventing tissue elongation and aneurysm formation and that factors that increase wall stress (e.g., hypertension and exercise stress) have the potential to promote aneurysm formation in healed infarct scars.

Animals

Influence of glucose and insulin on the exaggerated diastolic and systolic dysfunction of hypertrophied rat hearts during hypoxia.

Myocardial hypertrophy can result in increased sensitivity toward the development of mechanical dysfunction during hypoxia. Alterations in glycolytic metabolism may contribute to this. We studied the response to 15 minutes of hypoxia in hypertrophied (deoxycorticosterone-salt hypertension model) and nonhypertrophied rat hearts and examined the influence of a high glucose (27.5 mM) and insulin (100 mU/ml) concentration. In response to hypoxia in the presence of a normal glucose concentration (5.5 mM), left ventricular end-diastolic pressure was higher in hypertrophied than in nonhypertrophied hearts (65 +/- 6 vs. 44 +/- 4 mm Hg; p less than 0.05). Perfusion with high glucose and insulin blunted the rise in left ventricular end-diastolic pressure in both hypertrophied and nonhypertrophied hearts and abolished the difference in diastolic dysfunction between groups during hypoxia (26 +/- 2 vs. 32 +/- 4 mm Hg, respectively; p = NS). At end hypoxia in the presence of a normal glucose concentration, developed pressure was more depressed in hypertrophied than in nonhypertrophied hearts (11 +/- 1 vs. 18 +/- 1% of baseline, respectively; p less than 0.05). Perfusion with high glucose and insulin resulted in improved function in both groups during hypoxia such that a greater impairment of developed pressure was no longer present in the hypertrophied versus nonhypertrophied hearts (21 +/- 1 vs. 24 +/- 2% of baseline, respectively; p = NS). At the end of hypoxic perfusion in the presence of a normal glucose concentration, hypertrophied hearts were producing 38% less lactate than nonhypertrophied hearts. Perfusion with high glucose and insulin increased lactate production in both groups and equalized lactate production between groups. Thus, the greater deterioration in hemodynamic function in hypertrophied hearts compared with nonhypertrophied hearts during hypoxia is associated with lower lactate production. Both the exaggerated hemodynamic dysfunction and deficient lactate production can be ameliorated by perfusion with a high glucose concentration and insulin.

Animals

Post-ischemic cardiac chamber stiffness and coronary vasomotion: the role of edema and effects of dextran.

Contributions of edema to left ventricular (LV) chamber stiffness and coronary resistance after ischemia were studied in isolated buffer-perfused rabbit hearts, with constant LV chamber volume, subjected to 30 min global ischemia and 60 min reperfusion. During reperfusion hearts were perfused with standard buffer or with 3% dextran to increase oncotic pressure and decrease water content. LV chamber volume was adjusted to an initial diastolic pressure (LVEDP) of 10 mmHg. In nonischemic hearts (n = 6) LVEDP was 11 +/- 0.3 mmHg and water content was 5.0 +/- 0.1 ml/g dry weight after 90 min of perfusion. In untreated ischemic hearts (n = 8) LVEDP was 51 +/- 4 mmHg and water content was 6.0 +/- 0.1 ml/g dry weight after 60 min reperfusion (P less than 0.001 v. nonischemic). In dextran-treated ischemic hearts (n = 8) LVEDP was 38 +/- 3 mmHg (P less than 0.05 v. untreated ischemic) and water content was 5.2 +/- 0.1 ml/g dry weight (P less than 0.001 v. untreated ischemic). Coronary resistance in untreated ischemic hearts increased by 26% from 2.0 +/- 0.06 to 2.6 +/- 0.06 mmHg/ml/min after 60 min reperfusion. In treated hearts coronary resistance increased by 16% from 1.9 +/- 0.09 to 2.2 +/- 0.09 mm/Hg/ml/min (P less than 0.01 v. untreated ischemic). To determine whether the decrease in coronary resistance with dextran could be ascribed to active vasodilation, dilator responses to 2 min hypoxia or 10(-4)M adenosine were tested in nonischemic and reperfused ischemic hearts. Dilator responses were stable in nonischemic hearts or hearts reperfused after 15 min ischemia but after 30 min ischemia the dilator response to hypoxia was reduced by 72% (P less than 0.025) and the dilator response to adenosine was eliminated (P less than 0.02). Thus the response to dextran was unlike that of a direct vasodilator. These data suggest that myocardial edema plays a significant role in maintaining increased ventricular chamber stiffness and coronary resistance during reperfusion after ischemia.

Adenosine

Separation of inherent diastolic myocardial fiber tension and coronary vascular erectile contributions to wall stiffness of rabbit hearts damaged by ischemia, hypoxia, calcium paradox and reperfusion.

Ischemic myocardial contracture is exacerbated by reperfusion. This study examines the extent to which intensification of contracture by reperfusion is due to metabolic reoxygenation phenomena or hydraulic erectile contributions of coronary perfusion to left ventricular (LV) stiffness. Isolated rabbit hearts, with fluid-filled LV intraventricular baloons, were subjected either to: control aerobic perfusion; 30 or 60 min of global ischemia; 60 min of hypoxia with constant coronary flow; or 10 min of calcium-free perfusion to cause calcium paradox injury. During reperfusion with control perfusate isovolumic LV end diastolic pressure (LVEDP) was measured with constant coronary flow and during transient, 1 min, total global ischemia to measure the contribution of the coronary perfusion to LVEDP. In all injured groups LVEDP was increased compared to control hearts. The decrease in LVEDP during transient ischemia was greater in damaged hearts than in controls, demonstrating a greater contribution of coronary perfusion to LVEDP after injury. Only in the hypoxic hearts did diastolic fiber tension increase upon reperfusion. Inherent diastolic fiber tension decreased during 15 to 60 min of reperfusion in the ischemic and hypoxic injury groups, a trend which was masked by an increasing effect of coronary perfusion on LV chamber stiffness. During the reperfusion period enhancement of the erectile effect was more pronounced at higher preloads. Thus, reperfusion contracture was maintained both by changes in inherent fiber stiffness and by changes in the erectile effect. These contributions changed over time and varied with the type and severity of injury, but after all types of injury the erectile vascular effect made a greater contribution to diastolic chamber stiffness than inherent fiber tension.

Animals

Inability of methylprednisolone sodium succinate to decrease infarct size or preserve enzyme activity measured 24 hours after coronary occlusion in the dog.

Methylprednisolone sodium succinate (50 mg/kg) was given 30 minutes before or after the start of a 90 minute occlusion of the left circumflex coronary artery (LCX) in one group of dogs. In a second group, methylprednisolone sodium succinate was given 15 minutes after permanent occlusion of the left anterior descending artery (LAD). Infarct size was determined by dehydrogenase staining after 24 or 96 hours. Heart slices were incubated with nitro-blue tetrazolium and nonstaining infarcted tissue was dissected and weighed. Myocardial depletion of creatine phosphokinase activity (CPK) and lactate dehydrogenase activity (LDH) were determined 24 hours after temporary LCX occlusion. When measured after 24 hours, methylprednisolone sodium succinate treatment did not reduce infarct size or decrease enzyme loss. After temporary LCX occlusion infarct size was 30.4 +/- 3.6% of left ventricular weight in control dogs and 30.0 +/- 2.3% in treated dogs. No significant difference in infarct size was observed in hearts examined 24 or 96 hours after myocardial infarction. After permanent LAD occlusion, infarct size in control dogs was 39.2 +/- 1.6% of left ventricular weight and 33.7 +/- 3.5% in treated dogs. CPK activity in the LCX area decreased by 26.5 +/- 7% in controls and by 28.1% +/- 7% in treated dogs. Treated dogs sustained a significantly greater fall in arterial blood pressure after LCX occlusion than did controls. During LCX occlusion and upon reperfusion, methylprednisolone sodium succinate treated dogs exhibited a significantly greater number of premature ventricular beats. Since infarct size and enzyme depletion were not reduced when measured after 24 hours, methylprednisolone sodium succinate treatment does not appear to have enhanced myocardial cell viability.

Animals

Inactivation of glucocorticoid receptors in cell-free preparations of rat liver.

We have examined the rates of inactivation of glucocorticoid receptors in cell-free preparations from several rat tissues. The t1/2 of inactivation of the glucocorticoid-binding ability of thymus, heart, and kidney cytosols (37,000 X g supernatants) ranges from 2 to 4 hr at 0 degrees, whereas that of liver is much slower (15 to 25 hr). The rate of inactivation of the glucocorticoid-binding capacity of soluble preparations from liver varies roughly according to the g force at which they have been centrifuged. The 100,000 X g supernatant. The ability of the particulate enzyme to inactivate glucocorticoid receptors at 0 degrees is not affected by protease inhibitors but is inhibited by fluoride and molybdate. The rapid inactivation of unbound glucocorticoid receptors that occurs in a high-speed (100,000 X g) supernatant preparation from rat liver at 25 degrees can be completely inhibited by molybdate. These observations suggest that the inactivation of glucocorticoid receptors observed in cell-free liver preparations in vitro is due to a nonproteolytic enzymatic function.

Animals

Methylprednisolone sodium succinate treatment in global ischemia of the cat isolated heart.

Effects of methylprednisolone were studied on isolated, blood-perfused cat hearts subjected to 1 hr of normothermic ischemic arrest. Untreated hearts sustained decreases in peak ventricular pressure pulse, dP/dt, and ventricular compliance. Ischemic hearts also became edematous, gained sodium, and lost potassium and creatine kinase enzyme activity. Steroid treatment did not significantly alter any of these ischemia-induced changes. Methylprednisolone treatment did increase resting coronary flow and also increased the hyperemic response after reperfusion. These results, in isolated hearts, provide no evidence that steroid treatment exerts a direct protective effect on the globally ischemic myocardium.

Animals