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Biomedical subjects

J R Stratton

Publications and source records attributed to J R Stratton.

At least 37 records · Page 2Linked to original sources

Training partially reverses skeletal muscle metabolic abnormalities during exercise in heart failure.

Using 31P-magnetic resonance spectroscopy during and after exercise, we studied whether forearm metabolic responses to exercise were improved by 1 mo of training in 10 males with heart failure. In the control (untrained) arm, there were no changes in any of the measured variables. In the trained arm, maximal voluntary contraction increased 6% (P = 0.05). During incremental exercise, duration increased 19% (P < 0.05) and submaximal responses improved for pH (6.78 +/- 0.13 pretraining vs. 6.85 +/- 0.17 posttraining; P < 0.01) and PCr/(PCr+Pi) (where PCr is phosphocreatine; 0.48 +/- 0.09 pretraining vs. 0.52 +/- 0.07 posttraining; P < 0.01). The PCr resynthesis rate increased by 48% (P < 0.01), and estimated effective maximal rate of mitochondrial ATP synthesis increased by 37% (P < 0.05). Endurance exercise duration increased by 67% (P < 0.01), and submaximal levels of PCr/(PCr+Pi) (P < 0.05) and pH (P = 0.07) improved. The PCr resynthesis rate (P < 0.01) and the effective maximal rate of mitochondrial ATP synthesis (P < 0.05) also improved. These findings document that impaired oxidative capacity of skeletal muscle can be improved by local muscle training in heart failure, which is compatible with the hypothesis that a part of the abnormality present in heart failure may be due to inactivity.

Adenosine Triphosphate↗

Beta-adrenergic effects on left ventricular filling: influence of aging and exercise training.

Reduced heart rate and contractile responses to beta-agonist stimulation characterize normal cardiac aging, but whether diastolic responses also decline with aging has not been determined in humans. Diastolic filling responses to isoproterenol were determined in 13 older (60-82 yr) and 11 young (24-32 yr) healthy men before and after endurance training. Filling rates were expressed in three ways: 1) normalized to end-diastolic volume per second, 2) normalized to stroke volume per second, and 3) as absolute milliliters of blood (ml.s-1.m-2). Peak early filling rates by all methods were reduced at rest and all isoproterenol doses with aging (all P < 0.0001 for old vs. young), whereas peak atrial filling rates were increased with aging. During isoproterenol, both peak early and peak atrial filling rates increased significantly (all P < 0.01); the increase in filling rates with isoproterenol was not different with aging (all NS for old vs. young x dose). Endurance training did not augment diastolic filling responses to isoproterenol. Although diastolic filling rates at rest are markedly altered by aging, diastolic filling responses to isoproterenol are not reduced with aging. Thus the age-associated declines in heart rate, ejection fraction, and cardiac output responses to beta-adrenergic stimulation with isoproterenol do not extend to diastolic filling responses.

Adolescent↗

Effects of cardiac transplantation on bioenergetic abnormalities of skeletal muscle in congestive heart failure.

BACKGROUND: Patients with advanced heart failure have bioenergetic abnormalities of skeletal muscle metabolism during exercise. Using 31P magnetic resonance spectroscopy, we sought to determine whether skeletal metabolic responses to exercise are normalized by orthotopic cardiac transplantation. METHODS AND RESULTS: Four groups were studied: healthy normal volunteers (n = 9), subjects awaiting heart transplantation (n = 10), subjects < 6 months (mean, 4 months) after transplant (n = 9), and subjects > 6 months (mean, 15 months) after transplant (n = 8). None of the posttransplant patients had biopsy evidence of rejection at the time of study. There were no significant differences in age, preoperative functional class, or symptom duration among the three patient groups. Metabolic responses were monitored in the dominant arm during incremental weight pull exercise and 10 minutes of recovery by 31P magnetic resonance spectroscopy, with measurement of pH and the phosphocreatine (PCr)/(PCr + inorganic phosphate [Pi]) ratio, an index of PCr concentration. In addition, based on recovery data, the rate of PCr resynthesis was calculated as a measure of oxidative metabolism that is independent of work level, recruitment, or muscle mass, and the effective maximal rate of mitochondrial ATP synthesis (Vmax) was determined. Analysis was by ANOVA. There were no differences between groups in pH or PCr/(PCr + Pi) at rest. Compared with the normal control group, the pretransplant group had a decreased exercise duration (11.3 +/- 2.5 versus 15.0 +/- 1.3 minutes, P = .02), a lower submaximal exercise PCr/(PCr + Pi) ratio (0.58 +/- 0.11 versus 0.76 +/- 0.08, P < .05), a reduced PCr resynthesis rate (13 +/- 6 versus 22 +/- 9 mmol/L per minute, P < .05), and a lower calculated Vmax (26 +/- 14 versus 53 +/- 26 mmol/L per minute, P < .05). In the group studied early after transplantation, all the changes noted in the pretransplant group persisted and were if anything somewhat worse. In the group studied late after transplantation, there was a significant improvement in the PCr resynthesis rate compared with the early-posttransplant group (27 +/- 6 late versus 15 +/- 6 mmol/L per minute early, P < .05) and statistically nonsignificant trends toward improvements in submaximal exercise pH (6.86 +/- 0.24 late versus 6.72 +/- 0.24 early) and submaximal PCr/(PCr + Pi) ratio (0.56 +/- 0.14 late versus 0.44 +/- 0.15 early) and Vmax (45 +/- 21 late versus 33 +/- 15 mmol/L per minute early). However, compared with normal subjects, exercise duration and submaximal PCr/(PCr + Pi) were still reduced in the late-posttransplant group. CONCLUSIONS: Despite successful heart transplantation, skeletal muscle abnormalities of advanced heart failure persist for indefinite periods, although partial improvement occurred at late times. The persistent abnormalities may contribute to the reduced exercise capacity that is present in most patients after transplantation.

Energy Metabolism↗

Cardiovascular responses to exercise. Effects of aging and exercise training in healthy men.

BACKGROUND: Cardiac aging alters many of the acute responses to exercise stress, but the extent to which chronic exercise (ie, training) can alter or improve the effects of aging in humans is largely unknown. METHODS AND RESULTS: Cardiovascular responses to graded supine exercise stress (beginning at 200 kpm and increasing by 200 kpm every 3 minutes till exhaustion) were assessed using radionuclide ventriculography in 13 older (age, 60 to 82 years) and 11 young (age, 24 to 32 years) rigorously screened healthy men before and after 6 months of endurance training. Repeated-measures ANOVA was used to test significance. During exercise, the old group had a lesser increase in heart rate (+105% old versus +166% young), a greater increase in mean blood pressure (+35% old versus +22% young), lesser increases in ejection fraction (+3 ejection fraction units old versus +11 units young) and peak ejection rate (+62% old versus +119% young), a greater increase in end-diastolic volume index (+8% old versus -10% young), a lesser fall in end-systolic volume index (-0% old versus -32% young), and a lesser increase in cardiac index (+135% old versus +189% young) (all P < .01 young/old versus exercise stage). Stroke volume index response to exercise was not different with aging (+14% old versus +6% young, P = NS). Exercise training increased maximal oxygen intake by 21% in the older group (28.9 +/- 4.6 to 35.1 +/- 3.8 mL.kg-1.min-1, P < .001) and by 17% in the young (44.5 +/- 5.1 to 52.1 +/- 6.3 mL.kg-1.min-1, P < .001) and increased peak workload by 24% in the old and 28% in the young. Exercise training had no differential effects on old versus young men. Among all subjects, training significantly reduced the resting heart rate by 12% (-8 beats per minute) and increased resting end-diastolic volume index by 13% (+9 mL/M2) and resting stroke volume index by 18% (+7 mL/M2) (all P < .01). At peak exercise, cardiac index increased by 16% (+1.07 L.M-2.min-1) compared with before training, which was the result of an increase in stroke volume of 18% (+7 mL/M2) (P < .001); peak heart rate was unchanged. The increase in stroke volume index at peak exercise was the result of both a 12% increase in end-diastolic volume index (+8 mL/M2) (P < .01) and an increase in ejection fraction (+3 ejection fraction units) (P < .05) at peak exercise. The increased ejection fraction at peak exercise occurred despite a 9% increase in systolic blood pressure (+18 mm Hg) (P < .01), suggesting an increase in contractility. Thus, both the young and old increased peak exercise cardiac output by use of the Frank-Starling mechanism (ie, cardiac dilatation) as well as an increase in ejection fraction. CONCLUSIONS: We conclude that there is an age-associated decline in heart rate, ejection fraction, and cardiac output responses to supine exercise in healthy men. Although the stroke volume responses of the young and old are similar, the old tend to augment stroke volume during exercise more through cardiac dilatation, with an increase in end-diastolic volume (+8%) but without much change in ejection fraction (+3 ejection fraction units), whereas the young rely more on an increase in the ejection fraction (+11 ejection fraction units) with no cardiac dilatation (-10%). Despite the significant cardiovascular changes that occur in the response to a single bout of exercise with aging, adaptations to chronic exercise training were not different with aging and included improvements in maximal workload and increases in ejection fraction, stroke volume index, and cardiac index at peak exercise.

Adult↗

Imaging arterial thrombosis: comparison of technetium-99m-labeled monoclonal antifibrin antibodies and indium-111-platelets.

UNLABELLED: Imaging with the 99mTc-T2G1s monoclonal antifibrin antibody fragment (Fab') has demonstrated promise in the noninvasive detection of venous thrombi in humans. The purpose of this study was to determine whether chronic arterial thrombi can also be detected by antifibrin antibody imaging. METHODS: Eighteen subjects with chronic arterial thrombi were studied with planar and tomographic imaging at 0 to 24 hr postinjection of 99mTc-labeled T2G1s monoclonal antifibrin antibody fragment. Imaging with 111In-labeled platelets was also performed. Images were visually graded by two observers as 0, 1, 2 or 3 (no, faint, moderate or marked) uptake, and quantitative analysis of tomographic images was done in 13 subjects. RESULTS: On visual analysis of planar images, 44% (8 of 18) of antifibrin patient studies were 1.0 or more and 66% (10 of 18) were judged negative compared with 94% (15 of 16) of platelet patient studies judged 1.0 or more and 6% (1 of 16) judged as negative (p < 0.01). Visual analysis of tomographic images was similar, with 61% (11 of 18) of antifibrin studies graded 1.0 or more compared with 100% (17 of 17) of platelet studies (p < 0.01). The tomographic target-to-background ratio was higher with platelets than with antifibrin antibody (2.5 +/- 1.4 versus 1.8 +/- 1.0, p < 0.05). CONCLUSION: In the large-vessel chronic arterial thrombi studied, the results of 99mTc-labeled monoclonal T2G1s antifibrin Fab' imaging were positive in only one-half of the patients studied, significantly less than the findings with platelet imaging, which were positive in all subjects. The higher rate of positive images with labeled platelets than with labeled antifibrin antibodies may be largely due to thrombus age, with continued platelet deposition but little active fibrin deposition.

Aged↗

A kinetic model of the circulatory regulation of tissue plasminogen activator during exercise, epinephrine infusion, and endurance training.

A computer simulation of the circulatory system was used to kinetically model secretion, inhibition, and clearance of tissue plasminogen activator (t-PA) during three different processes that increase active t-PA levels: epinephrine infusion, exercise, and endurance training. Infusion of epinephrine stimulated an increase in t-PA secretion that was proportional to the plasma epinephrine concentration. In addition, epinephrine infusion increased hepatic blood flow and t-PA clearance, thus slowing the increase of plasma t-PA levels. During exercise, t-PA levels increased due both to increased t-PA secretion and to decreased clearance secondary to reduced hepatic blood flow. The increase in t-PA secretion during exercise was directly proportional to the epinephrine concentration in blood with the same ratio of t-PA secretion to epinephrine as found during epinephrine infusion, suggesting that increased plasma epinephrine during exercise was the primary stimulus for t-PA secretion. Lastly, the simulation predicted that 6 months of endurance training produced a decrease in resting plasminogen activator inhibitor type 1 (PAI-1) secretion, resulting in less t-PA inhibition and an overall increase in active t-PA after training. Accurate analysis of the regulation of active t-PA levels in blood required simultaneous modeling of t-PA and PAI-1 secretion, hepatic clearance, and inhibition of t-PA by PAI-1.

Computer Simulation↗

Endurance exercise training augments diastolic filling at rest and during exercise in healthy young and older men.

BACKGROUND: Diastolic filling at rest is altered markedly with advancing age. Whether exercise training can improve diastolic filling at rest or during exercise in either healthy older or healthy young men has not been determined. The purpose of this study was to determine if 6 months of aerobic exercise training improves diastolic filling. METHODS AND RESULTS: Radionuclide diastolic filling parameters were measured at rest and during exercise in 14 older (age, 60 to 82 years) and 17 young (age, 24 to 32 years) rigorously screened healthy males before exercise training and in 13 older and 11 young men after 6 months of endurance exercise training. Diastolic filling rates were expressed in two ways, as absolute milliliters of blood (mL.s-1.m-2) and normalized to the end-diastolic volume. At baseline, the peak early filling rates were lower in the older group compared with the young group as expressed in absolute milliliters of blood (older, 85 +/- 7 mL.s-1.m-2; young, 173 +/- 10 mL.s-1.m-2; P < or = .0001) and in end-diastolic volume per second (1.66 +/- 0.11 versus 2.55 +/- 0.08, P < .0001), whereas the peak atrial filling rates were greater in absolute milliliters of blood (85 +/- 5 versus 56 +/- 7 mL.s-1.m-2, P = .003) and in end-diastolic volume per second (1.70 +/- 0.12 versus 0.80 +/- 0.06, P < .0001). During exercise, at any given heart rate, the older group had a lower peak filling rate than the young group. Also, at peak exercise, the single peak filling rate was decreased in the older group in mL.s-1.m-2 (384 +/- 19 versus 565 +/- 36 mL.s-1.m-2, P = .0002) and in end-diastolic volume per second (6.01 +/- 0.25 versus 7.91 +/- 0.28 end-diastolic volume per second, P < .0001). Six months of intensive aerobic exercise training had similar effects in the old and young groups overall. Maximal oxygen consumption increased 19% (ANOVA training effect, P < or = .0001) and echocardiographic left ventricular mass increased 8% (ANOVA training effect, P = .002). Training increased the resting peak early filling rate in absolute milliliters of blood by +14% (ANOVA training effect, P = .02). During exercise, the peak early or single peak filling rate at any given heart rate was increased. At peak exercise, the single peak filling rate was increased by 14% in mL.s-1.m-2 (ANOVA training effect, P = .0004). The only age-related differential effect of training was on the peak atrial filling rate in end-diastolic volume per second, which decreased by 27% in the older group but was unchanged in the young (+5%) (ANOVA young versus older, P = .001). The independent predictors of a greater maximal oxygen consumption by multivariate analysis were a higher peak exercise heart rate, a greater resting peak early filling rate, the exercise trained state, and a younger age. CONCLUSIONS: Healthy older men have reduced early diastolic filling at rest and during exercise compared with young men. Endurance exercise training enhances early diastolic filling at rest and during exercise in both the old and the young. Training reduces the elevated resting atrial filling rate in the old, whereas the young were unchanged. The training-induced augmentation of early diastolic filling at rest and during exercise may be an important adaptation to allow an increase in stroke volume at rest and an increase in stroke volume, cardiac output, and maximal oxygen consumption during exercise.

Adult↗

Effect of intensive endurance training on lipoprotein profiles in young and older men.

Although there are considerable data concerning the effects of endurance exercise training (ET) on plasma lipoproteins, the results have been quite inconsistent. The observed variability of response may be related to the age, sex, adiposity, or diet of the subjects tested, or to the type and intensity of the exercise intervention. Furthermore, there is relatively little such data in older individuals. Therefore, in the present study, we investigated the effects of intensive ET on lipoprotein profiles in healthy young (n = 12; 28.2 +/- 2.4 years) and older (n = 15; 67.5 +/- 5.8 years) men. Unlike subjects in most similar studies, our subjects were weight-stabilized on a constant-composition diet for 21 days prior to determination of the lipoprotein profile before and after the ET program. At baseline, the two groups were not significantly different with respect to any individual component of their lipoprotein profiles, relative weight, or percent body fat, but the older men had a more central distribution of fat by both waist to hip ratio (WHR) and computed tomography (CT). Maximal aerobic power, expressed per kilogram of body weight (VO2 max), was 33% lower (P less than .001) in the older men at baseline. Following the 6-month, walk/jog/bike ET program (5 d/wk), both the young (+18%, P less than .001) and the older (+22%, P less than .001) men increased their VO2 max. This was associated with small, but significant, decrements in weight, percent body fat, and WHR only in the older men.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Noninvasive arterial thrombus imaging with 99mTc monoclonal antifibrin antibody.

BACKGROUND: The T2G1s monoclonal antifibrin antibody binds specifically to fibrin but not to fibrinogen. METHODS AND RESULTS: In a canine model of acute arterial thrombosis, we determined the feasibility of imaging thrombi using a 99mTc-labeled Fab' fragment. In 14 dogs, 10 carotid and 13 femoral artery thrombi were produced using 2-hour temporary occlusion, crush injury, and local thrombin injection methods. A sham-operated carotid artery served as control. Antifibrin antibody was injected intravenously at the end of temporary occlusion. Serial planar radionuclide images were obtained immediately and at 1 and 2 hours. Following killing the dogs at 2 hours, we measured antibody uptake ex vivo in 5-mm-long segments of thrombus, the adjacent injured artery, and a control artery. Antibody was cleared from the blood with a mean +/- SD t1/2 of 121 +/- 23 minutes. The thrombi weighed 218 +/- 140 mg. Antibody uptake in the thrombi was patchy, and the thrombi were closely adherent to the injured arterial wall. In the segment with maximal ex vivo antibody uptake, the ratio of control artery to blood counts/g/sec was 0.65 +/- 0.46, the injured artery-to-blood ratio was 2.35 +/- 1.01 (p less than 0.0001 versus control), and the thrombus-to-blood ratio was 4.24 +/- 2.58 (p less than 0.0001 versus control). In three dogs, an isotype-matched ovarian tumor antibody labeled with 111In was injected with T2G1s but was not taken up in the thrombus or the adjacent arterial wall. Visual analysis of the in vivo carotid radionuclide images showed uptake by 2 hours in all 10 carotid thrombi. Quantitative image analysis, measured as the thrombus-to-opposite carotid artery ratio, showed increasing uptake over time with ratios of 1.1 +/- 0.3, 1.6 +/- 2.0, and 2.2 +/- 1.3 on the immediate, 1-hour, and 2-hour images, respectively. All quantitative ratios of 1.3 or greater were visually identified. CONCLUSIONS: 99mTc-labeled Fab' fragments of the T2G1s antibody are taken up specifically by acute arterial thrombi after intravenous injection. Uptake is progressive over a 2-hour period, and all thrombi are detected by radionuclide imaging at 2 hours. These results show that it is feasible to noninvasively detect arterial thrombi within 2 hours of formation.

Animals↗

Differences in cardiovascular responses to isoproterenol in relation to age and exercise training in healthy men.

BACKGROUND: Cardiac aging is characterized by a reduced heart rate response to beta-agonist stimulation with isoproterenol, but whether the ejection fraction and other cardiovascular responses are reduced in humans is largely unknown. In addition, whether reduced beta-agonist responses can be improved with exercise training has not been determined in humans. METHODS AND RESULTS: Cardiovascular responses to graded isoproterenol infusions (3.5, 7, 14, and 35 ng/kg/min for 14 minutes each) were assessed in 15 older (age, 60-82 years) and 17 young (age, 24-32 years) rigorously screened healthy men. Thirteen older and 11 young subjects completed 6 months of endurance training and were retested. At baseline, the older group had reduced responses to isoproterenol for heart rate (+65% older versus +92% young, p less than 0.001), systolic blood pressure (+9% versus +24%, p less than 0.001), diastolic blood pressure (-12% versus -24%, p less than 0.05), ejection fraction (+12 versus +20 ejection fraction units, p less than 0.001), and cardiac output (+70% versus +100%, p less than 0.001). The mean plasma isoproterenol concentrations achieved during the infusions were marginally higher (p = 0.07) in the older group (128 +/- 58, 227 +/- 64, 354 +/- 114, and 700 +/- 125 pg/ml) than in the young (79 +/- 20, 178 +/- 49, 273 +/- 79, and 571 +/- 139 pg/ml). Intensive training increased maximal oxygen consumption by 21% in the older group (28.9 +/- 4.6 to 35.1 +/- 3.8 ml/kg/min, p less than 0.001) and by 17% in the young (44.5 +/- 5.1 to 52.1 +/- 6.3 ml/kg/min, p less than 0.001), but training did not augment any of the cardiovascular responses to isoproterenol in either group. The mean plasma isoproterenol concentrations at the four infusion doses were unchanged after training in both groups. CONCLUSIONS: We conclude that there is an age-associated decline in heart rate, blood pressure, ejection fraction, and cardiac output responses to beta-adrenergic stimulation with isoproterenol in healthy men. Altered beta-adrenergic responses probably contribute to the reduced cardiac responses to maximal exercise that also occur with aging. Furthermore, intensive exercise training does not increase cardiac responses to beta-adrenergic stimulation with isoproterenol in either young or older men. The reduced beta-adrenergic response appears to be a primary age-associated change that is not caused by disease or inactivity.

Adult↗

Exercise training delineates the importance of B-cell dysfunction to the glucose intolerance of human aging.

Aging has been associated with glucose intolerance, insulin resistance, hyperinsulinemia, and diminished islet B-cell function. The relative contribution of these factors to the aging-associated changes in glucose tolerance has been difficult to discern, particularly so for B-cell function, since insulin sensitivity itself is a determinant of B-cell function and, therefore, comparisons of insulin levels and responses between old and young subjects are difficult. To reduce this effect, we compared B-cell function in 14 healthy older men (aged 61-82 yr; body mass index, 21-30 kg/m2), who were exercise trained for 6 months to improve insulin sensitivity, to that of 11 healthy young men (aged 24-31 yr; body mass index, 19-31 kg/m2), who were also trained. Insulin-glucose interactions were assessed by measuring indices of insulin sensitivity (SI) and glucose effectiveness at zero insulin (GEZI) using Bergman's minimal model. B-Cell function was assessed by determining the acute insulin responses (AIR) to glucose (AIRgluc) and arginine at 3 different glucose levels: fasting, approximately 14 mM, and greater than 28 mM (AIRmax). AIRmax provides a measure of B-cell secretory capacity, while the glucose level at which 50% of AIRmax occurs is termed PG50 and is used to estimate B-cell sensitivity to glucose. The insulin sensitivity and glucose effectiveness at zero insulin of the trained older subjects was similar to that of the trained young [SI: old, 5.1 +/- 0.6; young, 6.5 +/- 0.7 x 10(-5) min-1/pM (mean +/- SEM; P = NS); GEZI: old, 1.3 +/- 0.2; young, 1.7 +/- 0.2 x 10(-2) min (P = NS)]. Under these conditions, the fasting glucose levels (old, 5.4 +/- 0.2; young, 5.1 +/- 0.1 mM) and basal insulin levels (old, 49 +/- 6; young, 63 +/- 11 pM) were also similar in the two groups. AIRgluc values were lower in the exercised elderly (old, 253 +/- 50; young, 543 +/- 101 pM; P = 0.01). This decrease in stimulated insulin release was due solely to a reduction in the AIRmax (old, 1277 +/- 179; young, 2321 +/- 225 pM; P less than 0.005); the PG50 was not different (old, 8.9 +/- 0.4; young, 8.8 +/- 0.2 mM; P = NS). These differences in the older subjects were associated with a reduction in iv glucose tolerance (old, 1.49 +/- 0.15; young, 1.95 +/- 0.13%/min; P less than 0.05).(ABSTRACT TRUNCATED AT 400 WORDS)

Adult↗

Conventional versus high-porosity polytetrafluoroethylene grafts: clinical evaluation.

In baboons, nonreinforced (unwrapped) 60 microns internodal distance polytetrafluoroethylene grafts form a complete endothelial lining within 2 weeks by capillary ingrowth through the wall. Smooth muscle cells then grow under the endothelium and proliferate to form a complete neointima. To determine if spontaneous endothelialization of these grafts can also occur in humans, 10 above-knee femoropopliteal grafts composed of equal lengths of 60 and 30 microns polytetrafluoroethylene were placed in eight patients. These grafts were reinforced (wrapped) for human use. Because biopsy of the grafts was not possible, endothelialization was assessed noninvasively by 111In-labeled platelet imaging 1 week and 3 months after surgery. There was no difference in indium uptake between 60 and 30 microns segments at either time. Histologic sections were available from 60 microns segments of two patients who underwent operation for graft thrombosis. Capillary ingrowth was seen in these grafts, but it rarely extended more than half the distance from the outside of the graft to the lumen. Smooth muscle cells were not seen on the flow surface, indicating that a neointima had not formed. These findings demonstrate that capillary ingrowth can occur in 60 microns grafts in humans but does not produce an endothelial lining. The failure to endothelialize is perhaps a result of inadequacy of angiogenesis in adult humans or retardation of capillary ingrowth by the reinforcing wrap.

Aged↗

Radionuclide cardiac volumes: effects of region of interest selection and correction for Compton scatter using a buildup factor.

The effects of region of interest (ROI) selection and correction for Compton-scattered photons using a buildup factor on radionuclide left ventricular volumes calculated by the Links method were compared in 19 humans with contrast ventriculography and in phantoms. Three different methods of ROI selection were compared: a manual ROI, a second derivative ROI and a 50% count-threshold ROI. In phantoms without Compton scatter correction, volumes were overestimated by 30% (manual ROI), 20% (derivative ROI) and 1% (count threshold ROI). In subjects, results without Compton scatter correction were similar with overestimates of 50% (manual ROI) and 20% (derivative ROI) and an underestimate by 3% (count threshold method). Correction for Compton-scattered photons with the use of a phantom-derived buildup factor resulted in improved accuracy for the manual ROI (+15%) and the derivative ROI (0%). A 50% count threshold ROI following interpolative background subtraction allows the accurate calculation of cardiac volumes without the need for scatter correction, while a second derivative ROI method requires a correction for Compton scatter with the use of a buildup factor.

Cardiac Volume↗

Four radionuclide methods for left ventricular volume determination: comparison of a manual and an automated technique.

This study compared the accuracy and reproducibility of three previously described and one new radionuclide method of measuring left ventricular volumes in 19 subjects using contrast ventriculographic volumes (n = 38, mean volume = 126.6 ml) as the gold standard. The four methods were compared using both manual and automated ROIs. For manual ROIs, the Links (189.7 ml, r = 0.85), Starling (183.2 ml, r = 0.77) and the new count ratio method (141.4 ml, r = 0.90) overestimated contrast volumes, while the Massardo method (122.5 ml, r = 0.91) provided accurate volumes. For the automated ROIs, we performed an interpolative background subtraction and used a 50% threshold of the highest count pixel to define the ventricular regions. The automated Massardo method severely underestimated the contrast volume (59.5 ml, r = 0.90), while the other automated methods yielded accurate volumes: Links (122.4 ml, r = 0.89), Starling (118.1 ml, r = 0.81) and the new count ratio method (125.0 ml, r = 0.90). The interobserver reproducibility of the automated methods was excellent (mean difference = 1%-4%) compared to the manual methods (2%-8%). Because no additional images, blood counting, attenuation, or decay correction were necessary, the manual Massardo method and the automated count ratio method are the simplest to perform. We conclude that automated determination of left ventricular volumes using the new count ratio method is rapid, accurate, reproducible and could readily be incorporated into routine clinical use.

Algorithms↗

Factors influencing serial measurements of cardiac volumes by count-based methods: effects of elevated catecholamines, position, and exercise on technetium-99m-blood radioactivity concentration.

Most radionuclide methods for measuring cardiac volume require a determination of the blood radioactivity concentration. Thus, changes in blood radioactivity over time or during interventions might lead to spurious volume estimates unless blood radioactivity is serially measured. The effects of elevated epinephrine, posture and exercise on 99mTc-labeled blood radioactivity concentration were studied in 15 young (mean age = 28 yr) and 14 older (mean age = 68 yr) healthy males. An epinephrine infusion of 50 ng/kg/min resulted in a 4.1% +/- 1.0% increase in 99mTc-blood radioactivity (p less than or equal to 0.001) compared to baseline. Sitting increased blood radioactivity concentration by 12.3% +/- 3.0% (p less than 0.0002) compared to the supine position and peak supine bicycle exercise caused an 11.0% +/- 1.7% increase (p less than or equal to 0.0001) compared to supine rest. There was a significantly greater increase during peak supine exercise in the young compared to the older subjects (15.0% +/- 2.3% versus 6.3% +/- 2.0%, p less than or equal to 0.01). The mechanism of the increase in blood radioactivity concentration is uncertain, but presumably reflects the addition of hemoconcentrated red blood cells from the spleen and/or the loss of plasma volume. Failure to correct for the increased blood radioactivity concentration during exercise or pharmacological interventions will result in a significant error in serial measurements of cardiac volumes by methods requiring RBC radioactivity measurements.

Adult↗

Influence of sympathetic stimulation and parasympathetic withdrawal on Doppler echocardiographic left ventricular diastolic filling velocities in young normal subjects.

To determine the effects of parasympathetic withdrawal or sympathetic stimulation on Doppler echocardiographic measures of left ventricular diastolic filling, we studied 10 young normal subjects aged 21 to 29 years during separate infusions of atropine (0.8 mg followed by 0.4 mg every 10 minutes until heart rate greater than 110 beats/min or a total dose of 2 mg was attained) and epinephrine (10, 25 and 50 ng/kg/min for 12 minutes each). At the highest atropine dose, heart rate increased from 60 +/- 9 to 105 +/- 8 beats/min (mean +/- standard deviation), the diastolic filling period decreased by 61% (573 +/- 141 to 222 +/- 34 ms), the peak early (E) filling decreased 23% (77 +/- 12 to 61 +/- 11 cm/s), the peak atrial (A) filling increased 103% (40 +/- 6 to 81 +/- 17 cm/s), and the E/A ratio decreased by 60% (2.0 +/- 0.5 to 0.8 +/- 0.3) (all p less than 0.001). These alterations were not correlated to changes in systolic function, preload, blood pressure or plasma catecholamines, all of which were unchanged. However, atropine-induced changes in diastolic filling period were highly correlated to changes in E peak (r = 0.64, p less than 0.01), A peak (r = -0.95, p less than 0.001) and the E/A ratio (r = 0.93, p less than 0.001). The effects of atropine on the E/A ratio were normalized by dividing the E/A ratio by the diastolic filling period (E/A/diastolic filling period).(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Rarity of preclinical alcoholic cardiomyopathy in chronic alcoholics less than 40 years of age.

Preclinical alcoholic cardiomyopathy, myocardial damage in the absence of overt congestive heart failure in chronic alcoholics, is well characterized at necropsy, but attempts to identify such a clinical entity before death have produced conflicting results. Studying subjects only at rest, the inclusion of older alcoholics and limitations of noninvasive techniques may explain some of the disagreement. To determine if preclinical alcoholic cardiomyopathy could be identified independent of the aforementioned limitations, 25 asymptomatic chronic alcoholics aged less than 40 years (mean 34), each of whom had consumed a minimum of 1 pint of whiskey or one 6-pack of beer greater than or equal to 5 days per week for greater than or equal to 5 years, underwent radionuclide ventriculography for measurements of systolic and diastolic function at rest, peak supine exercise and during recovery, and echocardiography for assessment of chamber size, wall thickness and left ventricular mass. Red blood cell levels of selenium and thiamine were measured to determine whether abnormalities were present in these 2 potential mediators of alcoholic cardiomyopathy. For comparison, an age-matched group of healthy control subjects was also studied. For alcoholics and control subjects at rest, mean ejection fraction (67 +/- 7% vs 71 +/- 6%) and diastolic peak filling rate (3.4 +/- 0.6 vs 3.3 +/- 0.6 end-diastolic volumes per second [EDV/s]) were similar.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗