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Using the exercise test to create the exercise prescription.

Exercise testing can provide valuable information to aid the primary care physician in developing a safe and effective exercise program for his or her patients. This review presents the most recent recommendations for the components of an exercise program as well as methods to accomplish appropriate prescription writing for the various subsets of individuals from the healthy patient to the patient with chronic disease. In addition, a plea is made for physicians to encourage all patients to engage in at least some kind of regular exercise activity in an attempt to counteract the increasingly sedentary lifestyles found in our culture.

Exercise Test↗

Abnormal heart rate recovery immediately after treadmill testing: correlation with clinical, exercise testing, and myocardial perfusion parameters.

BACKGROUND: The increase in heart rate during exercise is considered to be attributed to sympathetic system activation combined with parasympathetic withdrawal. The prognostic importance of the chronotropic response to exercise and heart rate recovery 1 minute after exercise has already been established. The purpose of this study was to evaluate heart rate recovery as an index of myocardial ischemia, by correlating heart rate recovery with known parameters of myocardial ischemia. METHODS AND RESULTS: Included in the study were 304 consecutive patients (73% men), aged 34 to 82 years. Patients whose heart rate recovery value or myocardial perfusion imaging could have been influenced by factors other than ischemic disease were excluded from the study. The patients underwent single photon emission computed tomography myocardial perfusion imaging combined with symptom-limited exercise testing with thallium 201 or technetium 99m tetrofosmin. The value for heart rate recovery was defined as the decrease in heart rate from peak exercise to 1 minute after termination of exercise. For semiquantitation of the scintigram, the uptake of the radiotracer was graded on a scale from 0 to 4. Twenty-one beats per minute was defined as the lowest normal value for heart rate recovery. We found 74 patients (24%) with an abnormal value. We also found a significant correlation between heart rate recovery 1 minute after exercise and stress myocardial perfusion score. In addition, there was a statistically significant relationship between heart rate recovery and chronotropic variables. Patients with an abnormal value of heart rate recovery were generally of an older age, were more likely men, had a higher frequency of risk factors for coronary artery disease, were mostly taking cardioactive medications, had lower efficiency during treadmill testing, and had more pathologic findings on the scintigram. CONCLUSIONS: Myocardial ischemia, as assessed by myocardial perfusion imaging, is an important correlate of heart rate recovery. There is a significant correlation between chronotropic variables during exercise testing and heart rate recovery 1 minute after exercise. It seems that the heart rate recovery value 1 minute after peak exercise may be considered a reliable index of the severity of myocardial ischemia.

Adult↗

Clinical significance of symptomatic and silent myocardial ischemia during exercise test in patients with effort angina pectoris--investigation of hemodynamic responses during supine ergometer exercise test.

Thirty one patients with stable effort angina who had no prior myocardial infarctions underwent symptom-limited ergometer exercise test. Hemodynamic responses during exercise were assessed to determine whether or not the limiting symptoms were related to the severity of exercise-induced myocardial ischemia. Twenty-two subjects (Group I) were limited by angina and nine (Group II) were limited by other symptoms. There were no differences in age, sex distribution, prevalence of diabetes mellitus, and left ventricular ejection fraction between the two groups. Multivessel coronary artery diseases, however, were more frequent in group I (16/22 vs 3/9: p less than 0.05). Maximal work load (46.6 +/- 16.0 vs 62.5 +/- 13.4 W: p less than 0.05), exercise duration (4.7 +/- 2.0 vs 7.2 +/- 1.4 min: p less than 0.005), and maximal oxygen consumption (12.4 +/- 4.1 vs 19.3 +/- 3.3 ml/kg/min: p less than 0.005) were significantly lower in group I. The magnitude of ST depression was not different between the two groups (2.0 +/- 0.8 vs 1.8 +/- 0.7 mm: NS). At maximal exercise, heart rate, mean blood pressure, cardiac index, and stroke work index (SWI) were significantly lower in group I (p less than 0.05) and pulmonary capillary wedge pressure was significantly higher in group I (31.1 +/- 6.1 vs 25.1 +/- 5.6 mmHg: p less than 0.05).(ABSTRACT TRUNCATED AT 250 WORDS)

Aged↗

The electrocardiographic exercise test in a population with reduced workup bias: diagnostic performance, computerized interpretation, and multivariable prediction. Veterans Affairs Cooperative Study in Health Services #016 (QUEXTA) Study Group. Quantitative Exercise Testing and Angiography.

BACKGROUND: Empirical scores, computerized ST-segment measurements, and equations have been proposed as tools for improving the diagnostic performance of the exercise test. OBJECTIVE: To compare the diagnostic utility of these scores, measurements, and equations with that of visual ST-segment measurements in patients with reduced workup bias. DESIGN: Prospective analysis. SETTING: 12 university-affiliated Veterans Affairs Medical Centers. PATIENTS: 814 consecutive patients who presented with angina pectoris and agreed to undergo both exercise testing and coronary angiography. MEASUREMENTS: Digital electrocardiographic recorders and angiographic calipers were used for testing at each site, and test results were sent to core laboratories. RESULTS: Although 25% of patients had previously had testing, workup bias was reduced, as shown by comparison with a pilot study group. This reduction resulted in a sensitivity of 45% and a specificity of 85% for visual analysis. Computerized measurements and visual analysis had similar diagnostic power. Equations incorporating nonelectrocardiographic variables and either visual or computerized ST-segment measurement had similar discrimination and were superior to single ST-segment measurements. These equations correctly classified 5 more patients of every 100 tested (areas under the receiver-operating characteristic curve, 0.80 for equations and 0.68 for visual analysis; P < 0.001) in this population with a 50% prevalence of disease. CONCLUSIONS: Standard exercise tests had lower sensitivity but higher specificity in this population with reduced work-up bias than in previous studies. Computerized ST-segment measurements were similar to visual ST-segment measurements made by cardiologists. Considering more than ST-segment measurements can enhance the diagnostic power of the exercise test.

Adult↗

Determinants of oxygen uptake. Implications for exercise testing.

For exercise modalities such as cycling which recruit a substantial muscle mass, muscle oxygen uptake (VO2) is the primary determinant of pulmonary VO2. Indeed, the kinetic complexities of pulmonary VO2 associated with exercise onset and the non-steady state of heavy (> lactate threshold) and severe [> asymptote of power-time relationship for high intensity exercise (W)] exercise reproduce with close temporal and quantitative fidelity those occurring across the exercising muscles. For moderate (< lactate threshold) exercise and also rapidly incremental work tests, pulmonary (and muscle) VO2 increases as a linear function of work rate (approximately equal to 9 to 11 ml O2/W/min) in accordance with theoretical determinations of muscle efficiency (approximately equal to 30%). In contrast, for constant load exercise performed in the heavy and severe domains, a slow component of the VO2 response is manifest and pulmonary and muscle VO2 increase as a function of time as well as work rate beyond the initial transient associated with exercise onset. In these instances, muscle efficiency is reduced as the VO2 cost per unit of work becomes elevated, and in the severe domain, this VO2 slow component drives VO2 to its maximum and fatigue ensues rapidly. At pulmonary maximum oxygen uptake (VO2max) during cycling, the maximal cardiac output places a low limiting ceiling on peak muscle blood flow, O2 delivery and thus muscle VO2. However, when the exercise is designed to recruit a smaller muscle mass (e.g. leg extensors, 2 to 3kg), mass-specific muscle blood flow and VO2 at maximal exercise are 2 to 3 times higher than during conventional cycling. consequently, for any exercise which recruits more than approximately equal to 5 to 6kg of muscle at pulmonary VO2max, there exists a mitochondrial or VO2 reserve capacity within the exercising muscles which cannot be accessed due to oxygen delivery limitations. The implications of these latter findings relate to the design of exercise tests. Specifically, if the purpose of exercise testing is to evaluate the oxidative capacity of a small muscle mass (< 5 to 6kg), the testing procedure should be designed to restrict the exercise to those muscles so that a central (cardiac output, muscle O2 delivery) limitation is not invoked. It must be appreciated that exercise which recruits a greater muscle mass will not stress the maximum mass-specific muscle blood flow and VO2 but rather the integration of central (cardiorespiratory) and peripheral (muscle O2 diffusing capacity) limitations.

Exercise Test↗

Exercise testing in children.

Exercise testing has a definite role in pediatrics today. Different methods are presented, and the value of maximal exercise with determination of oxygen uptake and blood lactate is stressed. In children with heart disease, exercise testing with precordial electrocardiogram can be of both diagnostic and prognostic value. The cardiovascular function at different intensities of exercise is evaluated, serious dysrhythmias may be revealed, hypertension judged and the effect of drug therapy can be checked by exercise testing. It is an important way in assessing the child's functional capacity after heart surgery in the decision whether she or he should take part in physical education and sports activities and in the choice of profession. It is also of great psychological value to the parents and the patient himself. In children with other chronic diseases, e.g., diabetes, obesity, asthma, neurocirculatory dysfunctions--physical training together with exercise testing is of importance for therapy and rehabilitation.

Adolescent↗

Evaluation of spatial R maximum cardiac vector changes in exercise testing: pre-exercise versus post-exercise measurements.

R wave amplitude changes during exercise have been a controversial issue as both increase and decrease in amplitude have been reported in patients with coronary arterial disease. This variability in response is attributed to change in position and heart axis on exercise. In view of this limitation, this study evaluated the change in spatial R maximum amplitude on exercise, which should not be affected by the above factors. Twenty patients with ischaemic heart disease (male 20, age 38-61 years) and 9 control subjects (male 9, age 32-65 years) were studied. Orthogonal leads, X, Y, Z were recorded using corrected Frank lead system on a stereokinematic vectorcardiograph (Tonnies). The magnitude of spatial R maximum cardiac vector increased from 0.1 to 0.6 mV in 8/9 control subjects and decreased or showed no change in 18 of the 20 patients with coronary arterial disease. In the control group, the mean value at the end of exercise (0.98 +/- 0.34 mV) was significantly less (P less than 0.01) as compared to pre-exercise value (1.09 +/- 0.2 mV). Our preliminary observations thus indicate that, with exercise, the magnitude of spatial R maximum cardiac vector decreases or shows no alteration in height in patients with coronary arterial disease whereas it increases in normal subjects.

Adult↗

The ability of a submaximal exercise test to predict maximal exercise capacity in patients with heart failure.

We investigated the ability of a submaximal exercise test to predict the maximal aerobic potential and hence exercise capacity of patients with chronic heart failure. Heart rate, oxygen consumption and carbon dioxide production were measured continuously during treadmill exercise in 29 patients with chronic heart failure (NYHA Class II-III). The anaerobic threshold was determined as the oxygen consumption at which carbon dioxide production increased non-linearly relative to oxygen consumption. Maximal oxygen consumption could not be predicted from the heart rate response to submaximal exercise. Oxygen consumption at the anaerobic threshold (28 patients) and at a respiratory quotient of 1 (23 patients) did predict maximal oxygen consumption (r = 0.93, r = 0.88, respectively). Measurement of oxygen consumption during submaximal exercise can be used to assess maximal exercise capacity in patients with heart failure.

Adult↗

Exercise tests.

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Exercise Test↗