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Biomedical subjects

L S Gettes

Publications and source records attributed to L S Gettes.

At least 37 records · Page 2Linked to original sources

Identification of false positive exercise tests with use of electrocardiographic criteria: a possible role for atrial repolarization waves.

Atrial repolarization waves are opposite in direction to P waves, may have a magnitude of 100 to 200 mu V and may extend into the ST segment and T wave. It was postulated that exaggerated atrial repolarization waves during exercise could produce ST segment depression mimicking myocardial ischemia. The P waves, PR segments and ST segments were studied in leads II, III, aVF and V4 to V6 in 69 patients whose exercise electrocardiogram (ECG) suggested ischemia (100 mu V horizontal or 150 mu V upsloping ST depression 80 ms after the J point). All had a normal ECG at rest. The exercise test in 25 patients (52% male, mean age 53 years) was deemed false positive because of normal coronary arteriograms and left ventricular function (5 patients) or normal stress single photon emission computed tomographic thallium or gated blood pool scans (16 patients), or both (4 patients). Forty-four patients with a similar age and gender distribution, anginal chest pain and at least one coronary stenosis greater than or equal to 80% served as a true positive control group. The false positive group was characterized by 1) markedly downsloping PR segments at peak exercise, 2) longer exercise time and more rapid peak exercise heart rate than those of the true positive group, and 3) absence of exercise-induced chest pain. The false positive group also displayed significantly greater absolute P wave amplitudes at peak exercise and greater augmentation of P wave amplitude by exercise in all six ECG leads than were observed in the true positive group.(ABSTRACT TRUNCATED AT 250 WORDS)

Atrial Function↗

Effects of ryanodine and BAY K 8644 on membrane properties and conduction during simulated ischemia.

We studied the effect of 1.0 microM ryanodine and 0.1 microM BAY K 8644 (putative modulators of intracellular calcium) on the changes in action potential characteristics, cellular coupling, and longitudinal conduction induced by simulated ischemia (9.0 mM K, 6.5 pH, 0 glucose, 20 mmHg PO2) in superfused guinea pig papillary muscles. Simulated ischemia (SI) depolarized the resting membrane by 5 mV and caused a 28% decrease in action potential upstroke (Vmax), a 65% decrease in action potential duration at 90% (APD90), a 40% increase in internal longitudinal resistance (ri), and a 17% decrease in conduction velocity as compared with the 9-K Tyrode control solution. These changes were reversible and reproducible. The decrease in Vmax induced by SI was greater than that associated with a K(+)-induced change in resting membrane potential (RMP). Ryanodine lessened the SI-induced APD90 shortening by 26%, the decrease in Vmax by 42%, the increase in ri by 33%, and the decrease in conduction velocity by 21%. BAY K 8644 did not alter SI-induced APD90 shortening but augmented the decrease in Vmax by 23%, the increase in ri by 67%, and the decrease in conduction velocity by 59%. Neither ryanodine nor BAY K 8644 altered the SI-induced changes in RMP. Our results suggest that changes in intracellular calcium during SI not only influence cellular coupling but also contribute to the apparent non-RMP-dependent component of the change in Vmax and to the change in APD90 induced by SI.

3-Pyridinecarboxylic acid, 1,4-dihydro-2,6-dimethy↗

Magnitude and time course of extracellular potassium inhomogeneities during acute ischemia in pigs. Effect of verapamil.

Prior studies have demonstrated the presence of inhomogeneities in myocardial [K+]e after serial 10-minute occlusions of the left anterior descending coronary artery in the pig, even within restricted locations of an ischemic zone. These inhomogeneities are thought to underlie the electrophysiological abnormalities responsible for lethal ventricular arrhythmias through reentrant and nonreentrant pathways, but a clear association has not been demonstrated. As a prerequisite to establishing this association, these studies were performed to establish measurement standards for [K+]e inhomogeneity, to quantify the magnitude and time course of these inhomogeneities, to determine whether the inhomogeneities are greater in the ischemic border where lethal ventricular arrhythmias are known to originate, and to assess the effect of a known antifibrillatory drug on [K+]e inhomogeneities. [K+]e (expressed as the change in potassium equilibrium potential, dEK [mV]) was measured in 15 preparations using an average of 17 closely spaced, critically calibrated K(+)-sensitive electrodes having stable response characteristics. A series of four 10-minute occlusions each separated by a 50-minute reperfusion period were performed in each study. In half of the studies, intravenous verapamil (0.2 mg/kg bolus followed by 0.0065 mg/kg/hr) was administered before the fourth occlusion. In nine studies (five control and four verapamil), electrodes were placed in the marginal ischemic zone (from 2 mm outside to 5 mm inside the visible cyanotic border). In six other studies (three control and three verapamil), electrodes were placed in the central ischemic zone (10-20 mm within the ischemic region). We determined that the standard deviation is the best measure of inhomogeneity and that 12 equivalent measurement sites are required to estimate it with a satisfactory degree of statistical confidence. We found that after 10 minutes of ischemia, mean dEK was 1.6 times greater in the central than in the marginal ischemic zone, whereas mean standard deviation at the same time was 1.5 times greater in the marginal than in the central ischemic zone. Verapamil reduced mean dEK and mean standard deviation in both ischemic zones for most of the occlusion by delaying the rise in [K+]e and the inhomogeneity of that rise by 3-5 minutes. Comparisons of mean dEK with mean standard deviation revealed a steep linear relation in the marginal zone and a curvilinear relation in the central zone where higher mean dEK values were not accompanied by higher values for mean standard deviation. Furthermore, we determined that these relations were not altered by verapamil.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Local myocardial biochemical and ionic alterations during myocardial ischaemia and reperfusion.

Acute myocardial ischaemia and reperfusion result in a series of inhomogeneous metabolic, ionic and neurohumoral events that explain the associated mechanical and electrical events, including cardiac death. The time course of the hydrolysis of high energy phosphates, the rise in extracellular potassium and the fall in intracellular and extracellular pH induced by acute no-flow ischaemia have been well characterised. However, the time course of the changes in intracellular sodium, calcium and magnesium levels is less clear. It appears that the changes in intracellular calcium may be pivotal to many of the biochemical and electrophysiological changes produced by the abrupt cessation of coronary arterial inflow and the associated interruption of venous washout. Consequently, agents that modify the handling of calcium by the sarcolemma and the sarcoplasmic reticulum have a significant impact on many of the metabolic, ionic and electrical abnormalities characterising acute ischaemia and reperfusion.

Coronary Disease↗

Lack of specificity of new negative U waves for anterior myocardial ischemia as evidenced by intracoronary electrogram during balloon angioplasty.

Negative U waves on the surface electrocardiogram are reported to be a specific marker of myocardial disease. In the setting of ischemia, they correlate with stenosis of the left main and left anterior descending coronary arteries. To determine whether U wave changes are unique for anterior ischemia, the development of new U waves on the intracoronary electrogram was correlated with the location and magnitude of ischemia during coronary balloon angioplasty. Recordings were obtained during dilation of 43 vessels in 37 patients. New negative U waves developed during dilation of 12 vessels (7 of the left anterior descending, 4 of the left circumflex and 1 of the right coronary artery). New positive U waves developed during dilation of 18 vessels (12 of the left anterior descending, 3 of the left circumflex and 3 of the right coronary artery). The magnitude of ST segment change was 10.9 +/- 6.7 mm in the presence of a new U wave but only 3.4 +/- 2.8 mm in the absence of a new U wave (p less than 0.001). It is concluded that 1) negative U waves on the intracoronary electrogram are not specific for anterior ischemia; 2) new positive U waves on the intracoronary electrogram are as sensitive as new negative U waves for acute ischemia; 3) the development of a new positive or negative U wave is associated with the magnitude of myocardial ischemia; and 4) the recording of U waves may be related to the proximity of the recording leads to the location of ischemia.

Adult↗

Fabrication, evaluation, and use of extracellular K+ and H+ ion-selective electrodes.

Ion-selective mini-electrodes have been widely employed to measure extracellular K+ and H+ during myocardial ischemia. However, the recent availability of this technology has not been accompanied by uniform fabrication, amplification, and calibration standards. In their fabrication, the chloride tips of Teflon-coated silver wires should be covered with a cellulose acetate-titanium dioxide sponge followed by a polyvinyl chloride (PVC)-valinomycin (K+) or PVC-tridodecylamine (H+) ion-selective membrane. Critical analysis of the nonworking electrodes using scanning electron micrographs has revealed membrane holes, membrane and sponge contamination, Teflon plaque, poor membrane-sponge-Teflon adhesion, and improperly applied or torn membrane. We have also found that signal amplification must have variable-gain filtration (0-1 Hz) with 0.5-pA input offset current and 10(12)-omega input resistance. Furthermore, in vitro calibration in 3 and 10 mM KCl (K+) or pH 8 and 6 buffer (H+) should produce a Nernstian slope +/- 5 or 10%, respectively, at 26 degrees C with a response time less than or equal to 50 ms, resistance greater than or equal to 10(12) omega, and drifts less than or equal to 1 mV/h. In vivo performance and calibration criteria (delineated for K+ only) include 1) transient response to bolus injections of KCl (0.12 mM/kg body wt) yielding peak amplitude changes of 2.5-3.0 mM, response times less than or equal to 10 s, and washout time constants less than or equal to 3 min, and 2) in vivo calibration to artificial independently confirmed systemic [K+] producing a Nernstian slope +/- 15% at 38 degrees C.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Effects of verapamil and propranolol on changes in extracellular K+, pH, and local activation during graded coronary flow in the pig.

The beta-adrenergic and calcium channel blocking agents are known to reduce heart rate and alter myocardial contractility. More recent evidence suggests that both agents affect the metabolic consequences of ischemia, independent of their effects on heart rate and contractility. We used a low-flow model of ischemia in swine with heart rate held constant by atrial pacing. Blood was shunted from the carotid artery to the left anterior descending coronary artery through a controlled-flow roller pump to assess the threshold flow for the rise in extracellular potassium ([K+]e) and fall in extracellular pH (pHe) associated with ischemia during control situations and after the administration of either propranolol or verapamil. We also measured the changes in activation delay and contractility associated with graded flow reductions in the presence and absence of these drugs. We found that when heart rate is held constant, 1) verapamil shifts the threshold flow for [K+]e and pHe to lower levels, but propranolol does not; 2) verapamil lessens activation delay, while propranolol aggravates the delay; and 3) verapamil reduces afterload and selectively depresses contractility in the reperfused ischemic zone. We conclude that the calcium channel blockers and the beta-adrenergic-blocking agents have different effects and possibly different modes of action and should not be considered interchangeable when evaluating therapeutic options for patients with ischemic heart disease.

Adrenergic beta-Antagonists↗

Metabolic protection by verapamil during graded coronary flow reduction independent of effect on baseline systolic function. Separation of mechanical and ionic markers of ischemia.

Pretreatment with the calcium channel-blocking agent verapamil lowers the coronary flow associated with the first rise in myocardial extracellular potassium [( K+]e). The mechanisms underlying this effect are unclear. It is not known whether this effect is a manifestation of verapamil-induced reduction in baseline cardiac work before the reduction in coronary flow, is dependent on a selective depression of contractility within the low-flow region, or is independent of an effect on myocardial work. This study was performed to determine the relations between changes in regional contractility and [K+]e before and after verapamil (0.2 mg/kg followed by 6.5 micrograms/kg/min) when left anterior descending (LAD) coronary flow is progressively reduced and when verapamil-induced alterations in baseline myocardial work are prevented by atrial pacing and by dobutamine (4.3 +/- 2.2 micrograms/kg/min) to maintain systemic arterial blood pressure and contractility. Before verapamil-dobutamine, myocardial [K+]e rose and regional contractility fell when LAD coronary flow was reduced to 87.7 +/- 9.6% and 83.4 +/- 7.4%, respectively, of the unrestricted control value (p = NS). After verapamil-dobutamine, the threshold flow for rise in [K+]e decreased to 56.4 +/- 13.5% of the unrestricted control flow (p = 0.003), but the threshold flow for regional contractility fall was unchanged (84.8 +/- 11.3%). Our results indicate that the protective effect of verapamil on preventing ischemia-induced [K+]e release is not dependent on a reduction in baseline myocardial work. In this setting, calcium channel blockade by verapamil results in a dissociation between the ionic and mechanical events that occur when coronary flow is reduced.

Animals↗

Influence of rate-dependent cellular uncoupling on conduction change during simulated ischemia in guinea pig papillary muscles: effect of verapamil.

This study was performed to determine if the changes in cellular coupling induced by simulated ischemia were rate-dependent and if they contributed to the rate-dependent conduction slowing that occurs in this setting. We also sought to determine if the known ability of verapamil to prevent ischemia-induced conduction changes might be related to the preservation of cellular coupling. We studied the effects of increasing stimulation frequency from 0.5 to 2.0 Hz on the simultaneous changes in the maximum rate of rise (Vmax) of the action potential upstroke, conduction velocity, and internal longitudinal resistance (ri) determined by the voltage ratio method in superfused guinea pig papillary muscles under conditions of simulated ischemia (SI). When stimulation frequency was 0.5 Hz, 30 minutes of SI caused a 16.5% decrease in Vmax, a 16% increase in ri, and a 12.9% decrease in conduction velocity. When stimulation frequency was increased to 2.0 Hz, 30 minutes of SI caused a 30% decrease in Vmax, a 72.9% increase in ri, and a 21.4% decrease in conduction velocity. Thus, the changes were rate-dependent. Verapamil (1 X 10(-6) M) did not influence the changes in these parameters during SI at 0.5 Hz nor the decrease in Vmax during SI at 2.0 Hz, but it did prevent the rate-dependent increase in ri. Verapamil also prevented the rate-dependent decrease in conduction velocity induced by SI. Our results suggest that during simulated ischemia the rate-dependent component of the increase in Ri contributes to the rate-dependence of the conduction slowing.(ABSTRACT TRUNCATED AT 250 WORDS)

Action Potentials↗

Nonemergent cardiac catheterization and risk-stratified revascularization following thrombolytic therapy for acute myocardial infarction. A critical analysis of therapy in the community setting. University of North Carolina Cardiology Consortium.

We evaluated a strategy for administering thrombolytic therapy without emergent cardiac catheterization to patients with acute myocardial infarction in community hospitals. Fifty-nine patients were treated with intravenous streptokinase and heparin, and referred for elective catheterization. Angioplasty or bypass surgery was performed only in patients judged to be at risk for reinfarction. One or more predetermined criteria for infarct segment viability were present in 47 (80%) of 59 patients. Angina recurred in 24 patients and enzyme-positive reinfarction in 9 patients, but only 2 patients developed new Q waves or a creatine kinase rise to over twice the normal value. Of 18 patients judged to be at low risk for reinfarction, only 1 required urgent angioplasty or bypass surgery. Fourteen-day mortality was 7% and infarct vessel patency was 94%. These data indicate that physicians in small community hospitals with a close relationship to a referral center and with a carefully designed protocol can administer thrombolytic therapy safely and effectively. By subsequent stratification of patients according to the risk of recurrent infarction, 22% of patients eligible for revascularization were spared urgent angioplasty or bypass surgery.

Angioplasty, Balloon↗

Use dependence of amiodarone during the sinus tachycardia of exercise in coronary artery disease.

The QRS duration at rest and during exercise was studied in 19 patients with coronary artery disease before and after oral amiodarone therapy to determine if this drug produces detectable rate-dependent conduction slowing during physiologic increases in heart rate. QRS duration did not change significantly during exercise in the absence of the drug. However, after amiodarone, QRS duration at rest increased from 99 to 114 ms (p less than 0.001), and increased further from 114 to 127 ms (p less than 0.001) during the 45 beats/min mean increase in heart rate produced by exercise. The magnitude of this effect was related to the resting QRS duration. After amiodarone therapy, the QRS increased during exercise by only 6% in 8 patients with QRS less than 110 ms, while in 12 patients with QRS greater than or equal to 110 ms, the QRS increased by 15% (p less than 0.05). Rate-dependent conduction slowing occurs during the sinus tachycardia of exercise in patients treated with amiodarone, presumbably due to use-dependent sodium channel blockade. This result is most pronounced in patients with abnormal ventricular conduction at rest.

Administration, Oral↗

Thresholds, refractory periods, and conduction times of the normal and diseased human atrium.

In order to better understand the electrophysiology of the diseased human atrium, we measured high right atrial refractory periods, threshold, and conduction times of 61 patients undergoing routine electrophysiologic study. Refractory periods and conduction times of patients with apparently normal atria were compared to those of patients with a history of persistent sinus bradycardia, atrial fibrillation, or other forms of primary atrial tachyarrhythmia. Refractory periods and thresholds were derived from strength-interval curves. Conduction times were measured for all premature beats induced. Threshold, refractory periods, and conduction times of premature beats induced late in the cardiac cycle did not distinguish patients with normal atria from patients with bradycardia or tachycardia. In contrast, increases in conduction time of early cycle premature beats separated patients with these abnormalities from patients with normal atria. The increases in interatrial and intraatrial conduction time of early cycle premature beats were the strongest correlates of primary atrial tachyarrhythmia (r = 0.52, p = 0.0065 and r = 0.274, p = 0.041, respectively) and induction of repetitive atrial firing (r = 0.65, p = 0.002, and r = 0.59, p = 0.0001, respectively). This increase in conduction time of early cycle premature beats may predispose these patients to primary atrial tachyarrhythmias.

Atrial Fibrillation↗

Distribution of extracellular potassium and its relation to electrophysiologic changes during acute myocardial ischemia in the isolated perfused porcine heart.

An experimental approach is described to quantitate inhomogeneity in extracellular K concentration ([K+]out) in the presence of ischemia and to relate this inhomogeneity to the electrophysiologic changes. Extracellular potassium concentration and local direct-current electrograms from the same sites were measured in isolated perfused pig hearts with the use of multiple electrodes. Dispersion of [K+]out is described under three conditions: (1) during regional ischemia in the "central zone" and the "borderzone", (2) during global ischemia, and (3) during perfusion of the heart with a high-K perfusate. Inhomogeneity was greatest during regional ischemia, especially in the borderzone, where generally lower concentrations were measured. When during regional ischemia the normal zone was perfused with a high-K perfusate, dispersion in the ischemic borderzone diminished, and higher concentrations than in the central zone were measured. During global ischemia inhomogeneity was slightly larger than during high-K perfusion. Dispersion during the latter was considered due to experimental error. A decrease in [K+]out during regional ischemia after the initial increase was closely correlated with electrical recovery of the electrograms. This decrease occurred earlier in the borderzone than in the central zone. During ischemia [K+]out was not related to the occurrence of monophasic electrograms, which are indicative of the absence of local regenerative responses. For every single electrode position a linear relationship between TQ depression and [K+]out was found, the slope of which varied with the position of the electrode. When all sites were taken together, there was no correlation between TQ depression and [K+]out. We conclude that: (1) inhomogeneity of K+ is largest in the borderzone, (2) potassium flows from the ischemic zone into the normal zone, (3) transient electrical recovery is related to a decrease (after an initial increase) in [K+]out, which is at least partly due to a flow of K+ toward the normal zone, (4) monophasic ("block") electrograms can be recorded from intrinsically excitable tissue, (5) for every single site in the ischemic region there is a linear relationship between local [K+]out and local TQ segment depression, and (6) the degree of TQ depression at a particular site is not a reliable index of the degree of ischemic injury at that site.

Animals↗

Rate-dependent effects of hypoxia on internal longitudinal resistance in guinea pig papillary muscles.

We have studied the independent and combined effects of 30 minutes' exposure to hypoxia and an increase in stimulation frequency from 0.5 Hz to 3.0 Hz on internal longitudinal resistance (ri) and conduction in guinea pig papillary muscles through the use of the voltage ratio method with air as the external insulator. Increasing stimulation frequency from 0.5 to 3.0 Hz in the presence of O2 caused no significant change in ri. Hypoxia to a level of PO2 = 30 mm Hg caused an increase in ri that averaged 13.7% at a stimulation frequency of 0.5 Hz and 46% at 3.0 Hz. In all experiments, the increase in ri during hypoxia at 3.0 Hz was greater than the increase at 0.5 Hz, but conduction velocity did not change at either rate. These results indicate that hypoxia causes rate-dependent cellular uncoupling but, under the conditions of our experiments, does not cause significant changes in conduction.

Action Potentials↗