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Biomedical subjects

I M Weisman

Publications and source records attributed to I M Weisman.

At least 19 recordsLinked to original sources

Comparison of pulmonary gas exchange measurements between incremental and constant work exercise above the anaerobic threshold.

STUDY OBJECTIVES: To compare arterial blood gas (ABG) and pulmonary gas exchange variables (alveolar-arterial oxygen pressure difference [P(A-a)O2] and physiologic dead space to tidal volume ratio [VD/VT]) measured during incremental exercise test (IET) and constant work (CW) exercise at a matched oxygen uptake (VO2). DESIGN: A comparison of IET and CW variables was accomplished using patient data from clinical referrals for cardiopulmonary exercise testing and control data not reported from a previous study. SETTINGS: El Paso, Tex, located at an altitude of 1,270 m (barometric pressure, 656 mm Hg). PARTICIPANTS: Sixteen patients with dyspnea on exertion/exercise intolerance and nine normal subjects were evaluated above the anaerobic threshold (AT); seven patients were also studied below the AT. INTERVENTIONS: Participants had a maximal IET followed in 1 h by a 5-min CW test. Arterial blood samples were obtained from a radial catheter every other minute during IET and during minute 5 of CW. Cardiopulmonary measurements were obtained using an automated system in a breath-by-breath fashion (60-s averaging). RESULTS: Above the AT, no differences were observed in normal subjects between IET and CW at a matched VO2 in the following: PaO2 (79 vs 79 mm Hg); arterial oxygen saturation (SaO2) (94% vs 94%); P(A-a)O2 (16 vs 16 mm Hg); and VD/VT (0.09 vs 0.09) (mean values). Similarly, no differences were observed in patients above the AT in PaO2 (69 vs 68), SaO2 (90 vs 90), and VD/VT (0.24 vs 0.23). PaCO2 was 2 mm Hg higher (36 vs 34) in normal subjects and in patients (34 vs 32) during IET. A significant (p<0.05), albeit clinically unimportant, difference was also observed in P(A-a)O2 (28 vs 29) in patients. No statistically significant differences were observed below the AT between IET and CW for any of the variables measured. CONCLUSIONS: These data demonstrate the reliability of ABG and pulmonary gas exchange variables measured during 1-min IET for clinical use in patients and normal subjects. However, PaCO2 tends to be slightly higher during IET vs CW.

Adult

ECG in sickle cell trait at rest and during exercise and hypoxia.

The electrocardiograms of 28 volunteers with sickle cell trait were compared to those of 28 control subjects. Tracings were recorded at rest, at peak exercise, at simulated sea level, and at a simulated altitude of 4,000 m. No differences between the subjects with sickle cell trait and control subjects were observed for the majority of electrocardiographic measurements. Several measurements had statistically significant differences that persisted after correcting for body surface area and physical fitness. The magnitude of the differences does not appear to have physiologic or clinical significance. The observation that the differences were greatest for resting and sea level recordings indicates that sickling is probably not responsible. Further investigation will be needed to substantiate these differences and determine whether these electrical observations have any physiologic implication.

Adolescent

Behind the scenes of cardiopulmonary exercise testing.

The benefits and advantages of automated systems for cardiopulmonary exercise testing are well appreciated. Overenthusiasm and overconfidence in computer "black box" generated information, however, has resulted in inadequate attention to important issues related to quality control. The objective of this article is to provide basic and practical information related to equipment, methodology, conduct of the test, and quality control that will help assure clinically reliable results. The authors elaborate on the most widely applied methodologies and current criteria and guidelines of exercise testing.

Anaerobic Threshold

Role of exercise stress testing in preoperative evaluation of patients for lung resection.

Patients with diagnosed or suspected lung cancer first require appropriate staging and proven anatomic resectability. Excellent pre-operative spirometric data (FEV1 > 2.0 L, > 60% predicted) should recommend the patient for surgery immediately without further testing. Those whose preoperative FEV1 is less than 60% predicted or whose DLCO is less than 60% predicted should be sent for quantitative lung scanning to estimate postoperative spirometry and diffusing capacity. Results showing FEV1-PPO and DLCO-PPO greater than 40% of normal suggest an acceptable surgical risk, and the patient should be referred accordingly. Those whose results are less than 40% of predicted should be exercised in some capacity to assess oxygen transport. We believe that cycle ergometry with incremental workloads and the standard monitoring is the best technique available for this (Table 1). Patients with a predicted postoperative FEV1 (or DLCO) greater than 35% of normal values and whose peak exercise VO2 is greater than 15 mL/kg/min should be offered surgery with the goal of removing the smallest volume of tissue that would be compatible with a cure. Those who do not meet these criteria, however, should not be summarily refused surgery if they are willing to accept the possibility of an earlier death or prolonged disability over the certainty of a cancer-related death in the foreseeable months ahead. Because the lung scan prediction of postoperative regional physiology and the exercise test of global oxygen transport examine different aspects of physiologic operability, we would not disagree with anyone who would advocate doing both tests in those at high risk by virtue of spirometric criteria. The logic of this combined approach is illustrated by Figure 1.

Algorithms

An integrated approach to the interpretation of cardiopulmonary exercise testing.

This article demonstrates how the impressive amount of information obtained during cardiopulmonary exercise testing can be reasonably managed and meaningfully applied in the clinical decision-making process. An integrative approach is highlighted that emphasizes patterns of abnormalities and limitations to exercise so that reliance on single measurements is reduced. Illustrative case studies demonstrate the integrative method to the interpretation of cardiopulmonary exercise testing that may be used routinely in clinical practice.

Adult

Comparison of cardiopulmonary responses to forward and backward walking and running.

Backward running has long been used in sports conditioning programs and has recently been incorporated into rehabilitative settings as a method of increasing quadriceps strength while decreasing the joint compressive forces about the knee. Although backward locomotion has been studied kinetically, the metabolic cost of backward walking and/or running has not to our knowledge been previously characterized. Oxygen consumption and other cardiopulmonary variables were measured under constant speed exercise during backward and forward walking at 107.2 m.min-1 and during backward and forward running at 160.8 m.min-1. Peak oxygen consumption (VO2peak) was also measured during maximal incremental backward and forward running. VO2, HR, and blood lactate were significantly higher (P < 0.001) during backward walking and running than during forward walking and running. During backward walking and backward running, subjects exercised at 60% and 84% of their forward VO2peak, respectively. In conclusion, for a given speed, backward locomotion elicits a greater metabolic demand and cardiopulmonary response than forward locomotion. In general, these data suggest that while undergoing rehabilitation, an injured athlete may continue to exercise using backward walking/running at an intensity sufficient enough to maintain cardiovascular fitness levels.

Athletic Injuries

Effects of simulated altitude and exercise upon ECGs of young black men.

Twenty-five healthy black men between 17 and 21 years of age were evaluated. Their resting and exercise electrocardiograms were recorded at simulated sea level and at a simulated altitude of 4,000 m. Sea level exercise caused a reduction in the amplitudes of R waves and a lowering of J points. Exercise at a simulated altitude of 4,000 m caused a lowering of the J point in several leads and a reduction of the R wave amplitude in lead aVF. Hypoxia caused a reduction in the amplitudes of the T waves and a lowering of the J points in several leads. These effects of exercise and altitude, to a great extent, eliminated the appearance of "early repolarization," which is very common among young black men.

Adult

Use of arm crank exercise in the detection of abnormal pulmonary gas exchange in patients at low altitude.

BACKGROUND: The measurement of arterial blood gases, P(A-a)O2 and VD/VT, during cycle ergometry is the "gold standard" for the assessment of pulmonary gas exchange. However, some patients are unable to perform cycle ergometry because of other medical problems. STUDY OBJECTIVE: To determine whether arm crank exercise could be used to reliably detect gas exchange abnormalities compared to cycle ergometry. PARTICIPANTS: Fifteen patients with a variety of pulmonary disorders, who were referred for exertional dyspnea. DESIGN: All patients performed maximal arm crank and cycle exercise. Arterial blood gases, VO2, VCO2, and VE were measured at rest and during exercise. RESULTS: Compared to peak cycle exercise (mean +/- SD), PaO2 (85 +/- 14 vs 75 +/- 13 mm Hg), SaO2 (94 +/- 2 vs 91 +/- 4 percent), VD/VT (0.21 +/- 0.07 vs 0.19 +/- 0.08), and pH (7.37 +/- 0.04 vs 7.34 +/- 0.03) were significantly higher during peak arm crank exercise. The P(A-a)O2 (18 +/- 13 vs 29 +/- 12 mm Hg) was narrower, and PaCO2 (29 +/- 3 vs 29 +/- 4 mm Hg) and PAO2 (104 +/- 4 vs 103 +/- 4 mm Hg) were similar. Six patients had normal gas exchange during cycle exercise at low altitude (P[A-a]O2 less than or equal to 27 mm Hg, PaO2 greater than or equal to 65 mm Hg, VD/VT less than or equal to 0.18) and nine were abnormal. Utilizing criteria specific for arm crank at low altitude, the same six patients had normal gas exchange (P[A-a]O2 less than or equal to 13 mm Hg, PaO2 greater than or equal to 85 mm Hg, VD/VT less than or equal to 0.26), and the remaining nine were abnormal. The P(A-a)O2 during peak arm crank was the most useful criterion in identifying patients with abnormal gas exchange. CONCLUSION: Proposed criteria for arm crank exercise testing accurately identified all patients with normal and abnormal pulmonary gas exchange during cycle exercise. The data from the present study suggest that arm crank can be an acceptable alternative exercise testing modality for the assessment of pulmonary gas exchange.

Adult

Reliability of noninvasive oximetry in black subjects during exercise and hypoxia.

The effect of skin pigmentation on the reliability of noninvasive oximetry, especially during exercise and hypoxia, has not been thoroughly investigated. This is the first study, to our knowledge, that specifically addresses this question. Thirty-three young black men performed multistage, steady-state cycle ergometry, breathing gas mixtures simulating different altitudes: 33 breathed gas simulating sea level (PIO2 = 146 mm Hg), 11 breathed gas simulating 2,300 m (PIO2 = 110 mm Hg), and 22 breathed gas simulating 4,000 m (PIO2 = 85 mm Hg). Co-oximeter SaO2 determinations were performed in arterial blood samples obtained concurrently with ear oximetry that was measured using Hewlett-Packard 47201A (HP) and Blox IIA oximeters. The mean error or bias for the [HP - SaO2] and for [Biox IIA - SaO2] +/- 95% CI were: at simulated sea level (SaO2 greater than 96%): -0.4 +/- 0.3% and 2.1 +/- 0.3%; at simulated 2,300 m (range of SaO2 means, 89 to 94%): -0.8 +/- 0.5% and 3.5 +/- 0.9%; for simulated 4,000 m (range of SaO2 means, 75 to 84%): -4.8 +/- 1.6% and 9.8 +/- 1.8%, respectively. A better coefficient correlation was observed for all the pairs between SaO2 versus HP (r = 0.94, p less than 0.001, n = 279) than for the SaO2 versus Biox IIA (r = 0.80, p less than 0.001, n = 242). In conclusion, the HP oximeter appears to estimate SaO2 more accurately than the Biox IIA oximeter. The previously described overestimation for the Biox IIA ear oximeter and the underestimation for the HP ear oximeter at low SaO2 values in whites is exaggerated in blacks.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Gas exchange during maximal upper extremity exercise.

STUDY OBJECTIVE: to characterize gas exchange and cardiopulmonary performance during maximal progressive arm crank exercise. DESIGN: Cardiopulmonary variables were measured and arterial blood gases were determined in blood samples obtained from an indwelling radial arterial catheter during arm crank exercise (34 watts/min). Arm crank exercise was compared to maximal leg exercise performed by a different but comparable group of subjects from a previous study. PARTICIPANTS: 19 healthy young (mean +/- SEM: 20 +/- 1 yr) black males. RESULTS: Peak arm crank exercise resulted in lower values compared to peak leg exercise for: power (129 +/- 2 vs 253 +/- 10 W), VO2 (2.17 +/- 0.04 vs 3.26 +/- 0.14 L/min); VCO2 (2.9 +/- 0.11 vs 4.32 +/- 0.17 L/min); HR (168 +/- 3 vs 189 +/- 3 beats/min); AT (1.15 +/- 0.05 vs 1.83 +/- 0.07 L/min); and VE (101 +/- 2 vs 144 +/- 8 L/min), respectively. Arm crank exercise (baseline vs peak) elicited an impressive improvement in PaO2 (85 +/- 1 to 97 +/- 1 mm Hg), no change in SaO2 (96 +/- 0.2 to 96 +/- 0.2 percent), no significant increase in P(A-a)O2 (3 +/- 0.7 to 5 +/- 0.9 mm Hg) and an appropriate trending decrease in VD/VT (0.22 +/- 0.01 to 0.17 +/- 0.01). Peak arm crank values were significantly different from peak cycle exercise for PaO2 (82 +/- 2.2 mm Hg), SaO2 (93 +/- 0.4 percent), P(A-a)O2 (21 +/- 1.9 mm Hg) and VD/VT (0.08 +/- 0.01). At comparable levels of VO2 for arm crank and cycle exercise (2.17 +/- 0.04 vs 2.26 +/- 0.08 L/min), significant differences were observed for PaO2 (97 +/- 1.4 vs 81 +/- 1.9 mm Hg); SaO2 (96 +/- 0.2 vs 94 +/- 0.4 percent); P(A-a)O2 (5 +/- 0.9 vs 14 +/- 1.5 mm Hg); and VD/VT (0.17 +/- 0.01 vs 0.08 +/- 0.01), respectively. CONCLUSIONS: Maximal arm crank exercise represents a submaximal cardiopulmonary stress compared to maximal leg exercise. The differences in gas exchange observed at peak exercise between arm crank and leg exercise for the most part reflect the lower VO2 achieved. However, the persistence of these gas exchange differences even at a comparable level of VO2 suggests that factors other than VO2 may be operative. These factors may include differences in alveolar ventilation, CO2 production, ventilation-perfusion inequality, diffusion, and control of breathing.

Adult

Exercise and hypoxia increase sickling in venous blood from an exercising limb in individuals with sickle cell trait.

PURPOSE: The association between sickle cell trait (SCT) and complications related to exercise may be explained if exercise-induced sickling interferes with capillary blood flow and causes tissue ischemia and functional abnormalities. To test this hypothesis, we measured sickling and blood gas values in venous and arterial blood of an exercising limb in subjects with SCT and in controls. SUBJECTS AND METHODS: The study consisted of 15 subjects with hemoglobin AS (SCT group) and 15 subjects with hemoglobin AA (control group). Each performed two maximal arm crank exercise tests, one at 1,270 meters and one at simulated 4,000 meters. RESULTS: At 1,270 meters, axillary venous sickling increased significantly (p less than 0.05) from (mean +/- SD) 1.0 +/- 1.0% at rest to 2.3 +/- 2.6% during peak exercise. At simulated 4,000 meters, sickling increased significantly (p less than 0.001) from 1.5 +/- 1.2% to 8.5 +/- 7.1%. A wide range of sickling during peak exercise was observed (1% to 25%). One minute after exercise at simulated 4,000 meters, venous sickling remained elevated (7.2 +/- 7.8%) despite high levels of oxygen saturation. Arterial sickling (less than 1%) was present in only two subjects. There was no significant difference in oxygen consumption (29.4 +/- 3 versus 30.7 +/- 4 mL/kg/minute) between the subjects with SCT and the controls, nor was there a correlation between exercise performance and sickling (r less than 0.2). CONCLUSION: We conclude that exercise at 1,270 meters slightly, albeit significantly, increased sickling in blood from an exercising limb and that simulated 4,000 meters dramatically potentiated this effect. Sickling in the effluent blood of an exercising limb does not appear to measurably affect overall maximal arm crank exercise performance.

Adult

Cardiopulmonary and gas exchange responses to acute strenuous exercise at 1,270 meters in sickle cell trait.

The impact of strenuous exercise and environmental hypoxia on sickle cell trait (SCT) remains controversial. To determine if these factors induce cardiopulmonary and gas exchange abnormalities in SCT, healthy, young black male volunteers, 25 with SCT (HbAS) and 16 control subjects (HbAA), were evaluated during incremental and steady-state exercise tests using a cycle ergometer at 1,270 meters and 24 degrees C. Peak incremental exercise values for power (242 +/- 7 versus 253 +/- 10 watts), oxygen consumption (3.08 +/- 0.1 versus 3.26 +/- 0.14 liters/minute), heart rate (188 +/- 2 versus 189 +/- 3 beats/minute), minute ventilation (129 +/- 4.6 versus 144 +/- 7.7 liters/minute), oxygen pulse (16.4 +/- 0.5 versus 17.3 +/- 0.8 ml/beat), and respiratory exchange ratio (1.31 +/- 0.01 versus 1.33 +/- 0.02) revealed no significant differences (p less than 0.05) between the SCT and control groups, respectively. Peak incremental exercise values for arterial oxygen tension (82 +/- 1.7 versus 82 +/- 2.2 mm Hg), arterial carbon dioxide tension (32 +/- 0.7 versus 31 +/- 0.9 mm Hg), and alveolar-arterial oxygen pressure differences (19 +/- 1.4 versus 21 +/- 1.9 mm Hg) were similar for the SCT and control groups, respectively. Steady-state exercise results corroborate incremental exercise findings. It is concluded that cardiopulmonary and gas exchange responses to a brief period of strenuous exercise performed at low altitude at 24 degrees C in a well-characterized SCT sample of recruits were within normal limits and comparable to those of a carefully selected control sample.

Adult