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Biomedical subjects

G H Templeton

Publications and source records attributed to G H Templeton.

At least 19 recordsLinked to original sources

Influence of aging on left ventricular hemodynamics and stiffness in beagles.

We studied the influence of aging on the contractile performance, stiffness, and contraction time of the canine left ventricle. Eight young (27 +/- 2.5 months, mean +/- SE) and seven old (128 +/- 20.5 months) beagles were placed on complete cardiopulmonary bypass, the arterial pressure was adjusted to 80 mm Hg, and the heart contracted isovolumically at a paced rate of 120 beats/min. Diastolic pressure-volume curves were established for each unpaced left ventricle at the beginning of each experiment, and the volume at the knee of the curve was used during the subsequent data collection when the heart was paced. Stiffness was measured with a sinusoidal forcing function, which imposed a sinusoidal displacement of 1 ml at 20 Hz into a balloon placed in the left ventricle. In each ventricle, stiffness was related linearly to pressure during the cardiac cycle, and was greater for any given pressure in the older beagles. Contraction duration was prolonged in the older dogs. In an additional seven old beagles during right heart bypass time, and duration of contraction were longer than in seven young beagles. Aging of the beagle heart is associated with an increase in left ventricular systolic and diastolic stiffness and prolonged duration of contraction.

Aging

Ryanodine: its alterations of cat papillary muscle contractile state and responsiveness to inotropic interventions and a suggested mechanism of action.

Cat right ventricular papillary muscles responded biphasically to cumulative additions of ryanodine. A progressive and pronounced negative inotropic effect was observed with low to intermediate ryanodine concentrations (5 nM-1 muM) while a rebound or reversal of these initial changes back toward pre-drug values was obtained as the ryanodine concentration was further increased to 100 muM. Active force development (DF), the rate of force development (dF/dt), as well as the rate of relaxation all exhibited these bidirectional changes. In contrast, time to peak force underwent only a progressive prolongation over the entire concentration range tested. This response pattern was observed with both normal and K+-depolarized (isoproterenol- or dibutyryl cAMP-restored) preparations. The response to a single addition of 100 muM ryanodine, in the presence of 2.5 mM Ca++ mimicked both the qualitative and quantitative aspects of the cumulative concentration response curve. In the presence of 5.0 mM Ca++ the high concentration of ryanodine no longer caused depression but instead caused only a slowly developing, monophasic increase in DF. Ryanodine also changed the response of ventricular muscle to other inotropic interventions. Ryanodine (1 muM; 2.5 mM Ca++) abolished the normal increase in dF/dt following either paired electrical stimulation (PES) or 50 mOsM mannitol, but not that in response to a doubling of the stimulation rate (0.2--0.4 Hz). After ryanodine exposure, the potentiation of developed force by PES was shifted from the first (regular) to the second (premature) contraction, producing a summation-like waveform. Prior addition of the calcium channel antagonist D600 (1 muM) did not alter ryanodine-induced changes in PES. Caffeine (1 mM) produced alterations in the responses to PES and hyperosmolarity which were similar to those observed with ryanodine. In the presence of high concentrations of both ryanodine (100 muM) and calcium (5 mM) both the transient and steady-state responses to a doubling of the stimulation rate (0.2--0.4 Hz) were markedly depressed, whereas the decrease in DF or dF/dt normally accompanying a reduction in the rate of stimulation was attenuated. The data obtained in the present study are consistent with a functional inhibition of sarcoplasmic reticular calcium release by ryanodine.

Alkaloids

Species differences in responses to hyperosmolality and D600 in cat and rat heart.

The direct inotropic effect of hypertonic mannitol was compared in isolated rat and cat papillary muscles. The inotropic effects of paired electrical stimulation and D600 were also evaluated in the same species. At extracellular calcium concentrations of 2.5 mM, hypertonic mannitol (25--100 mosmol/kg H2O above normal) depressed contractility in isolated rat myocardium; hyperosmolality exerted a positive effect only when extracellular Ca2+ was low (e.g., 0.3 mM). Paired pacing exerted a small but significant inotropic effect in rat heart when extracellular Ca2+ was 2.5 mM, and a larger effect at lower Ca2+. As previously noted, hypertonic mannitol and paired pacing both produced significant positive effects in isolated cat heart at an extracellular Ca2+ concentration of 2.5 mM. D600 exerted less of a depressant effect on contractility in rat than in cat heart at concentrations of 10(-6)--10(-7) M. The data suggest that 1) in contrast to results in cat heart, the positive inotropic effect of hyperosmolality in isolated rat cardiac muscle is apparent only when extracellular calcium concentration is reduced; 2) the inotropic effect of paired pacing in rat heart is greatest at low Ca2+ levels, but persists to a lesser degree at extracellular calcium concentrations of 2.5 mM; and 3) D600-inhibitable calcium channels appear to be relatively less important in the maintenance of cardiac contractility in rat than in cat cardiac muscle.

Animals

Inhibitory effect of hypertonic mannitol on vasoconstrictor and vasodilator responses of isolated coronary arteries.

The effect of hypertonic mannitol on pressor responses to vasoactive agents was studied in isolated canine coronary arteries perfused with physiologic salt solution at a constant flow. When perfusion pressure was increased with 60 mM KCl, mannitol (50 mosM) consistently caused a decrease in perfusion pressure that lasted for at least 1 h. Withdrawal of mannitol from the perfusion media was associated with a vasoconstrictor response that was not prevented by alpha- or beta-adrenoceptor blockade or by the presence of either nitroglycerin or norepinephrine. Hypertonic mannitol also reduced the responsiveness of the isolated smooth muscle preparations to several different mechanistically unrelated vasodilator agents. The mechanism(s) responsible for the paradoxical ability of hypertonic mannitol to reduce vascular responsiveness to both vasoconstrictor and vasodilator interventions in isolated canine coronary arteries is not known, but future studies should be directed at elucidating it as well as determining whether similar phenomena occur in vivo.

Animals

Influence of mannitol on contractile responses of isolated perfused arteries.

The influence of hyperosmotic mannitol on vascular smooth muscle contractile responses was examined in isolated arterial preparations. Vasoconstrictor effects of norepinephrine (NE) and potassium chloride (K+) in the perfused central artery of the rabbit's ear and in perfused mesenteric arteries of cats were significantly inhibited by infusion with Krebs bicarbonate solution made hyperosmotic with mannitol (50-200 mosM increase). Similarly, the magnitude and duration of vasoconstrictor responses to transmural stimulation of the central ear artery of the rabbit were decreased by hyperosmotic mannitol (50 mosM). Mannitol (50 mosM) produced a decrease in perfusion pressure when perfusion pressure was maintained at an increased level by K+ (60 mM). Mannitol-induced vasodilatation was not affected by ethacrynic acid (1.5 X 10(-5) M), beta adrenergic blockade or by the development of tachyphylaxis to the vasodilator effects of nitroglycerin. The concentration of cyclic adenosine-monophosphate was not changed by mannitol. Isotonic mannitol also inhibited NE-induced contractile responses. These data indicate that hyperosmotic mannitol produces vasodilatation in isolated arterial smooth muscle by a mechanism(s) that appears dissimilar from that of several other vasodilator substances and suggest that hypertonicity may not be the only factor involved in the vasodilator effect of mannitol.

Animals

Contraction and resting stiffness of isolated cardiac muscle: effects of inotropic agents.

The purpose of this study was to test the hypothesis that either hypoxia and its combined effects with extracellular calcium (Ca), digoxin, and ouabain, or these positive inotropic agents acting alone or in combination, influence contraction and resting stiffness of isolated papillary muscle. Stiffness was measured utilizing the sinusoidal forcing function technique. Neither an increase in extracellular calcium concentration (from 2.5 to 4.0 mM) nor digoxin or ouabain in either Ca concentration altered contraction or resting stiffness in the well-oxygenated environment. Resting stiffness for any given resting tension was increased at the end of hypoxia only in the presence of digoxin, and this occurred in both 2.5 mM Ca (P less than 0.02) and in 4.0 mM Ca (P = 0.05). Contraction stiffness for any given tension was increased in 2.5 mM Ca by hypoxia alone (P less than 0.05) and by hypoxia in the presence of digoxin (P less than 0.005) and ouabain (P less than 0.02), but was not increased in any experiments conducted in 4.0 mM Ca. The conclusions from these data are that certain experimental conditions of the study evoked different directional changes in stiffness and contractility. Further, changes in contraction stiffness are not always paralleled by changes in resting stiffness.

Animals

Lanthanum probe studies of cellular pathophysiology induced by hypoxia in isolated cardiac muscle.

This study was undertaken to evaluate directly the relationship between evolution of irreversible myocardial injury induced by hypoxia in an isolated papillary muscle preparation and the development of pathophysiological alterations related to severely impaired membrane function. An ionic lanthanum probe technique was employed as a cytochemical marker to monitor the progression of cellular injury, and data from this cytologic technique were correlated with ultrastructure and measurements of contractile parameters in a total of 67 muscles subjected to control conditions or to graded intervals of hypoxia with or without reoxygenation. Marked depression of developed tension and rate of tension development occurred after 30 min of hypoxia. Contractile function showed significant recovery with reoxygenation after 1 h and 15 min of hypoxia but remained depressed when reoxygenation was provided after 2 or 3 h of hypoxia. Examination by transmission and analytical electron microscopy (energy dispersive X-ray microanalysis) revealed lanthanum deposition only in extracellular regions of control muscles and muscles subjected to 30 min of hypoxia. After hypoxic intervals of over 1 h, abnormal intracytoplasmic and intramitochondrial localization of lanthanum were detected. After 1 h and 15 min of hypoxia, abnormal intracellular lanthanum accumulation was associated with only minimal ultrastructural evidence of injury; muscle provided reoxygenation after 1 h and 15 min of hypoxia showed improved ultrastructure and did not exhibit intracellular lanthanum deposits upon exposure to lanthanum during the reoxygenation period. After 2 to 3 h of hypoxia, abnormal intracellular lanthanum accumulation was associated with ultrastructural evidence of severe muscle injury which persisted after reoxygenation. Thus, the data support the conclusion that cellular and membrane alterations responsible for abnormal intracellular lanthanum deposition precede the development of irreversible injury but evolve at a transitional stage in the progression from reversible to irreversible injury induced by hypoxia in isolated feline papillary muscles.

Animals

Abnormal myocardial fluid retention as an early manifestation of ischemic injury.

Fifty-seven isolated, blood perfused, continuously weighed canine hearts have been utilized to study the development of abnormal myocardial fluid retention during early myocardial ischemic injury. Inflatable balloon catheters were positioned around the left anterior descending coronary arteries (LAD) of 54 hearts or the proximal left circumflex coronary arteries of three hearts for study of the following intervals of coronary occlusion: a) 10 minutes followed by 20 minutes of reflow, b) 40 minutes followed by either no reflow or by 20 minutes of reflow, and c) 60 minutes without reflow. After 60 minutes of fixed coronary occlusion, histologic and ultrastructural examination revealed mild swelling of many ischemic cardiac muscle cells in the absence of interstitial edema, cardiac weight gain, and obvious structural defects in cell membrane integrity. After 40 minutes of coronary occlusion and 20 minutes of reflow, significant cardiac weight gain occurred in association with characteristic alterations in the ischemic region, including widespread interstitial edema and focal vascular congestion and hemorrhage and swelling of cardiac muscle cells. Focal structural defects in cell membrane integrity were also noted. The development of abnormal myocardial fluid retention after 40 minutes of LAD occlusion occurred in association with a significant reduction in sodium-potassium-ATPase activity in the ischemic area, but with no significant alteration in either creatine phosphokinase or citrate synthase activity in the same region. Despite the abnormal myocardial fluid retention in these hearts, it was possible pharmacologically to vasodilate coronary vessels with adenosine and nitroglycerin infusion to maintain a consistently high coronary flow following release of the coronary occlusion after 40 minutes and to even exceed initial hyperemic flow values following release of the occlusion when adenosine and nitroglycerin infusion was delayed until 15 minutes after reflow. Thus, the data indicate that impaired cell volume regulation and interstitial fluid accumulation and focal structural defects in cell membrane integrity are early manifestations of ischemic injury followed by reflow, but fail to establish a major role for the abnormal fluid retention in altering coronary blood flow prior to the development of extensive myocardial necrosis. In contrast, fixed coronary occlusion for 60 minutes results in mild intracellular swelling but no significant interstitial edema and no obvious structural defects in cell membrane integrity.

Adenosine

Comparison of different noninvasive methods of infarct sizing during experimental myocardial infarction.

This study evaluated the accuracy of several noninvasive infarct-sizing techniques in 12 awake, unsedated dogs with multivessel coronary obstructions and acute anterior myocardial infarcts. Estimations of infarct size by scintigraphy with technetium-99m Sn pyrophosphate (Tc-PP), serum creatine phosphokinase (CPK) release, peak serum myoglobin levels by radioimmunoassay, and precordial ECG mapping were compared and correlated with histologic measurements of infarct size. The comparisons indicate that precordial ST segments mapping, serum CPK release measurements and peak serum CPK, peak serum myoglobin, and Tc-PPi myocardial scintigraphy all provide approximate estimates of infarct size in this model. Each technique also has certain important limitations, however, including: (A) precordial mapping is relatively insensitive in the identification of small anterior infarcts, (B) serial serum CPK release measurements when obtained for only 24 hr after infarction tend to underestimate large anterior infarct size, and (C) Tc-PPi myocardial scintigrams may fail to recognize anterior infarcts less than 3 gm in size and may overestimate the size of small predominantly subendocardial infarcts. The findings also show that the closest estimate of histologic infarct size in this model was provided by combining two of the noninvasive techniques (precordial mapping to identify sites with 2 or more millimeters of ST segments elevation and Tc-PPi myocardial scintigrams) rather than by relying exclusively on any one technique alone.

Animals

Changes in regional coronary blood flow with hypertonic mannitol in conscious dogs.

Systemic haemodynamics and regional myocardial blood flow responses to hypertonic mannitol were studied in 10 conscious and 23 anaesthetized dogs. Mannitol infusion significantly increased regional myocardial blood flow in the conscious, intact dogs. Mannitol increased total coronary flow 20% in anasethetized animals compared to 80% in the awake ones. In both groups mannitol exerted a significant positive inotropic effect as evidenced by increases in maximal LV dp/dt and dp/dt/p. These studies have also demonstrated that the intact conscious dog that has not received any sedation has an inner:outer wall left ventricular flow ratio greater than 1-0.

Anesthesia

Influence of hypertonic mannitol on regional myocardial blood flow and ventricular performance in awake, intact dogs with prolonged coronary artery occlusion.

The influence of hypertonic mannitol on regional myocardial blood flow and ventricular performance in awake, intact, unsedated dogs with myocardial infarction resulting from chronic occlusion of the proximal left anterior descending coronary artery was studied. tmannitol given to increase serum osmolality 20 mOsm increased regional myocardial blood flow to that portion of the left ventricle supplied by the occluded left anterior descending coronary artery by 22 +/- 2.8% (1.06 +/- 0.19 to 1.36 +/- 0.23 ml/min with g-1) without changing the inner:outer wall flow ratio. Mannitol also significantly increased regional myocardial blood flow to other areas of the left ventricle and the ventricular septum. Mean aortic pressure, maximal LV dP/dt, LV dP/dt/P, and cardiac output also increased significantly after mannitol. Thus hypertonic mannitol increases regional myocardial blood flow and ventricular performance in the awake, unsedated dog with prolonged occlusion of the proximal left anterior descending coronary artery. The increase in regional myocardial blood flow after mannitol under these circumstances probably is at least in part secondary to the increase in blood pressure and contractility. The increases in regional myocardial blood flow after mannitol in this study are less impressive than those that have been previously reported in the setting of either no myocardial ischaemia or acute myocardial ischaemia; this is probably due to the vasodilatation that chronic myocardial ischaemia itself produces in the canine heart.

Animals

Reduced myocardial reflow and increased coronary vascular resistance following prolonged myocardial ischemia in the dog.

Studies were performed to determine whether an alteration in coronary vascular resistance and a reduction in the reflow phenomenon occurred in the blood-perfused, heparinized canine heart after various periods of myocaridal ischemia. Regional myocardial blood flow was measured with radioactive microspheres. Proximal left anterior descending coronary artery blood flow was measured with a periarterial flow transducer. Reduced reflow to the ischemic portion of the left ventricle and increased resistance in the left anterior descending coronary artery were present after 120 minutes of myocardial ischemia. The reduction in reflow was specific to the subendocardium of the ischemic area. Saline and isosorbide dinitrate (Isordi) did not prevent the increase in coronary vascular resistance or the significant reduction in reflow to the subendocardial portion of the ischemic area. Hypertonic mannitol given so as to increase serum osmolality 40 mosmoles/kg prevented the increase in coronary vascular resistance and modified the reduction in the reflow phenomenon to the subendocardial portion of the ischemic area. Thus, both an increase in coronary vascular resistance and a significant reduction in reflow to the subendocardial portion of the ischemic area occur in the canine heart after 120 minutes of myocardial ischemia. Moreover, the increase in coronary vascular resistance can be prevented and the reduction in reflow to the subendocardial portion of the ischemic area can be modified by the administration of hypertonic mannitol.

Animals

The influence of hypertonic mannitol on regional myocardial blood flow during acute and chronic myocardial ischemia in anesthetized and awake intact dogs.

The influence of hypertonic mannitol on regional myocardial blood flow and ventricular performance was studied during acute myocardial ischemia in awake, unsedated and in anesthesized dogs and after myocardial infarction in awake unsedated dogs. Regional myocardial blood flow was measured with radioactive microspheres. Generalized increases in regional myocardial blood flow occurred after mannitol in all of the different animal models studied. The increases in coronary blood flow after mannitol were just as impressive in the nonischemic regions as in the ischemic portion of the left ventricle in all of the different models that were examined in this study. Improvement in regional myocardial blood flow to the ischemic area of the left ventricle after mannitol was associated with a reduction in ST segment elevation during acute myocardial ischemia in anesthetized dogs. The increases in regional myocardial flow after mannitol were also associated with increases in contractility, but the increases in flow appeared to be more impressive than the changes in contractility. The data obtained demonstrate that mannitol increases regional coronary blood flow to both ischemic and nonischemic myocardium in both anesthetized and awake, unsedated, intact dogs with acute and chronic myocardial ischemia and that mannitol reduces ST segment elevation during acute myocardial ischemia in anesthetized dogs. Thus the results suggest that under these circumstances the increases in regional myocardial blood flow after mannitol are of physiological importance in reducing the extent of myocardial injury. Since coronary blood flow increased to nonischemic regions the increases in regional myocardial flow demonstrated in this study after mannitol cannot be entirely explained by the mechanism of reduction in ischemic cell swelling.

Acute Disease

Influence of acute myocardial depression on left ventricular stiffness and its elastic and viscous components.

The influence of acute myocardial depression on ventricular stiffness and on its elastic and viscous components was studied in 19 dogs. After the animals were placed on cardiopulmonary bypass, stiffness was measured by sinusoidally injecting volume changes of 0.5 ml (deltaV) at 22 Hz into paced, isovolumically (deltaP) of the sinusoidal pressure response. Stiffness was linearly related to pressure (P) throughout the cardiac cycle, so that deltaP/delta V = alpha P + beta, where alpha and beta are constants. Myocardial depression was induced in one of three different ways: by coronary artery ligation, by administration of propranolol (Inderal), or by administration of pentobarbital. All three interventions caused significant increases in the slope, alpha, of the stiffness-pressure relationship, while the intercept, beta, remained unchanged. Release of the coronary occlusion or administration of acetylstrophantidin partially reversed depression and the change in alpha; Approximation of the mechanical nature of the left ventricle in terms of a linear second-order mechanical system permitted the division of stiffness into its elastic and viscous components. Like total stiffness, both the elastic and the viscous components were linearly related to ventricular pressure. Elastic stiffness was not changed, but the slope of the line relating viscous stiffness to pressure was significantly increased during ischemic depression, indicating that a change in viscosity was primarily responsible for the increase in total ventricular stiffness.

Animals

Relationship between myocardial metabolism and epicardial ST segment alterations during myocardial ischemia.

Acute myocardical ischemia was produced by ligating the midlevel left anterior descending coronary artery for 17 min in anesthetized dogs. Epicardial electrocardiograms were recorded from 15 sites surrounding the area of left anterior descending coronary artery ligation with a smooth tip, rounded epicardial electrode. Sites of ST segment elevation and isoelectric sites within the grossly ischemic portion of the left ventricle were needle biopsied to obtain tissue samples of less than 6 mg wet weight to assess myocardial metabolism at these precise sites. Epicardial areas of ST segment elevation had marked lactate accumulation and high energy phosphate depletion. Isoelectric sites were areas of either no lactate accumulation or mild lactate accumulation and high energy phosphate concentrations that were greater than those found at site of ST segment elevation. Thus, the data obtained indicate that epicardial sites of ST segment elevation are locations of profound anaerobic metabolism and of both epicardial and endocardial ischemia.

Acute Disease

Contraction duration and diastolic stiffness in aged canine left ventricle.

The data obtained from groups of young and old beagles demonstrate that senescent beagle hearts are characterized by lower contractile function as measured by developed pressure and maximal rate of pressure change with time, by longer contraction duration, and by increased dynamic stiffness per given pressure as measured by the sinusoidal forcing technique.

Aging

Effects of hypoxia and digitalis glycosides on myocardial stiffness.

The influences of hypoxia and of the interactions of hypoxia with digoxin and ouabain on myocardial stiffness were studied at two extracellular calcium concentrations (2.5 mM and 4.0 mM) in isolated, isometrically contracting cat papillary muscles. Stiffness (delta T/delta L), defined as a change in tension (delta T) in response to an imposed length change (delta L), was measured during contraction and during rest by use of a sinusoidal forcing function. Neither digoxin, ouabain, nor increased extracellular calcium altered contraction or resting stiffness in the well-oxygenated environment. Resting stiffness was increased at the end of hypoxia only in the presence of digoxin in both 2.5 mM and 4.0 mM Ca. Contraction stiffness was increased in 2.5 mM Ca by hypoxia alone and by hypoxia in the presence of digoxin or ouabain, but was not increased in experiments carried out in 4.0 mM Ca. Thus it appears that hypoxia per se increases contraction stiffness, but increasing extracellular calcium from 2.5 mM to 4.0 mM prevents the increase elicited by hypoxia; resting stiffness, however, is increased by hypoxia only in the presence of digoxin, and this occurs in both 2.5 mM and 4.0 mM Ca.

Animals