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Biomedical subjects

A Dart

Publications and source records attributed to A Dart.

26 records · Page 2Linked to original sources

Arterial elastic properties in man: a comparison of echo-Doppler indices of aortic stiffness.

Non-invasive assessment of mechanical properties of the aorta may prove useful in the early detection of atheroma. We have evaluated several of the available echocardiographic indices using ability to detect age-related changes in putatively disease-free vessels as a measure of sensitivity to changes in aortic mechanical properties. Suprasternal imaging was used in 49 healthy non-smoking volunteers to measure minimum and maximum aortic arch diameters. Maximal flow velocities, with corresponding acceleration times and heart periods, were determined in the descending aorta in 24 of these subjects. Blood pressure was recorded non-invasively immediately after the echocardiographic study. Doppler derived measurements of aortic flow acceleration did not relate to age (P greater than 0.05). Three different 2D echo assessments of aortic distensibility, however, all showed a close relationship to age. Ep elastic modulus and Beta index (derived from different stress-strain mechanical relationships) were significantly related to age with r = 0.69 and 0.65 respectively. There were no significant effects of gender or left ventricular systolic function on these relationships. There was a tendency for the relationship between these distensibility indices and age more closely to fit an exponential than a linear relationship. We conclude that 2D echocardiographic assessment of aortic distensibility is able to detect sensitively changes in aortic mechanical properties. Even in the absence of risk factors for cardiovascular disease there is a marked reduction in aortic distensibility with increasing age.

Adult↗

Increases in plasma beta-endorphin concentrations during exercise do not contribute to increases in heart rate following autonomic blockade in man.

1. Intrinsic heart rate (IHR: heart rate following autonomic blockade with atropine and propranolol) increases with exercise. The opioid antagonist naloxone has been shown to decrease IHR at rest, raising the possibility that increases in IHR with exercise are beta-endorphin related, since beta-endorphin concentrations have also been shown to rise during exercise. 2. We examined the effects of naloxone (10 mg) on IHR and plasma beta-endorphin levels during aerobic exercise in eight healthy, male subjects in a single blind, crossover study. 3. IHR increased with 25 min bicycling from 97.1 +/- 1.4 to 129.7 +/- 1.2 beats min-1 (mean +/- s.e. mean). This rise was not affected by administration of naloxone. 4. Plasma beta-endorphin concentration rose from 31.1 +/- 3.8 to 94.9 +/- 23.9 pg ml-1 after 25 min exercise. This exercise-induced rise in beta-endorphin concentration was further increased (P less than 0.05) in the presence of naloxone. 5. Our results confirm a rise in IHR and beta-endorphin concentrations with acute exercise but indicate that the changes in IHR are not endorphin-related.

Adolescent↗

Sympathetic nervous function in human heart as assessed by cardiac spillovers of dihydroxyphenylglycol and norepinephrine.

BACKGROUND: Measurement of cardiac norepinephrine spillover may indicate the amount of transmitter at neuroeffector sites but does not distinguish neuronal release or reuptake in determining this amount or provide information about other aspects of sympathetic function. This report examines how cardiac spillover of the norepinephrine metabolite dihydroxyphenylglycol (DHPG) provides additional distinct information about cardiac sympathetic function. METHODS AND RESULTS: Arterial and coronary venous blood samples were taken during cardiac catheterization and intravenous infusion of [3H]norepinephrine in 57 subjects. Subjects were given intravenous yohimbine or underwent mental stress, handgrip exercise, and cycling exercise to activate sympathetic nerves or were given intravenous desipramine to block norepinephrine reuptake. Cardiac DHPG spillover (601 +/- 41 pmol/min) was eightfold greater than norepinephrine spillover (78 +/- 10 pmol/min) at rest and increased during sympathetic activation by 65% of the increase of norepinephrine. This and the desipramine-sensitive cardiac production of [3H]-labeled DHPG from [3H]norepinephrine indicated that 10.5 times more endogenous norepinephrine is recaptured than escapes into plasma; that more than 90% of recaptured norepinephrine is sequestered into storage vesicles; and that under resting conditions, most cardiac spillover of DHPG and turnover of norepinephrine are from metabolism of transmitter leaking from vesicles; the latter process is independent of exocytotic transmitter release with a rate at rest over 100-fold that of norepinephrine spillover and over 10-fold that of norepinephrine reuptake. CONCLUSIONS: Cardiac spillover of DHPG provides information about processes close to or within sympathetic nerve endings that cannot be provided by measurements of norepinephrine spillover alone. This includes quantitative information about the role of neuronal uptake in terminating the actions of norepinephrine at neuroeffector sites and the importance of vesicular-axoplasmic exchange of norepinephrine as a dynamic process contributing to norepinephrine turnover.

Cardiac Output, Low↗

Is adrenaline released by sympathetic nerves in man?

Radiotracer methods were used to measure the rates of regional release of adrenaline and noradrenaline into plasma in man. This was done as a partial test of a theory of essential hypertension pathogenesis which envisages an important cotransmitter function for neuronally released adrenaline. In healthy resting men no release of adrenaline could be detected from the heart, lungs or liver. Adrenaline was released into the right renal vein but an adrenal medullary source is suspected. With the relatively limited activation of the cardiac sympathetic outflow which accompanied mental challenge and isometric exercise, cardiac adrenaline release remained undetectable. During supine bicycle exercise, which increased cardiac noradrenaline release 10-30 fold, to a mean value of 197 ng/min, cardiac adrenaline release averaged 2.36 ng/min. In two clinical conditions associated with persistently elevated plasma adrenaline concentrations, cardiac failure and adrenaline-secreting phaeochromocytoma, regional release of adrenaline was clearly evident. Thus, in normal man during exercise, and in patients with cardiac failure at rest, adrenaline is released from non-adrenal sources, and probably from sympathetic nerves. Whether neuronal adrenaline release of the degree found would be sufficient to facilitate noradrenaline release, augment sympathetically-mediated cardiovascular responses and contribute to the development of arterial hypertension remains to be tested.

Adrenal Gland Neoplasms↗

Effects of exercise and other nonpharmacological measures on blood pressure and cardiac hypertrophy.

Reversal of left ventricular hypertrophy (LVH) is an important target of antihypertensive therapy. Nonpharmacological approaches such as weight reduction and exercise training have favorable effects on other risk factors. However, there are few data on their effects on LVH. Athletes have eccentric rather than concentric LVH. A 12-month exercise program in 13 unmedicated hypertensive subjects altered LV geometry, reducing LV wall thickness and increasing LV internal diameters (LVID). LV mass was unchanged, and the thickness/radius fell by 9%. Shorter-term studies have shown that the cardiac structural changes with a moderate exercise program occur rapidly and their onset lags only about 2 weeks behind blood pressure (BP) effects. Assessment of weight loss effects on LVH is complicated by the strong relationship between body weight and ventricular wall thickness. LVID, and LV mass. To some extent, this can be overcome by arbitrarily indexing to body surface area or height. The wall thickness/radius ratio is not related to body size. Weight reduction reduces BP and thickness/radius by 10% in controlled trials. Small studies have also reported reduction in LV mass after sodium restriction in hypertensive subjects. Studies with other nonpharmacological measures could make a substantial contribution to knowledge of their efficacy.

Blood Pressure↗

Adrenaline release by the human heart.

1. Radiotracer methods were used to measure the rates of regional release of adrenaline and noradrenaline to plasma in humans. 2. No release of adrenaline could be detected from the heart, lungs, liver and kidneys at rest. 3. With the relatively mild activation of the cardiac sympathetic outflow associated with mental challenge and isometric exercise, cardiac adrenaline release remained undetectable. 4. During supine bicycle exercise, which increased cardiac noradrenaline release 10-20 fold, to a mean value of 128 ng/min, cardiac adrenaline release averaged 1.63 ng/min. 5. Whether neuronal adrenaline release of this degree in the heart is sufficient to facilitate noradrenaline release and to augment sympathetically mediated cardiac responses remains to be tested.

Epinephrine↗

T wave amplitude as a quantitative index of regional myocardial sympathetic responsiveness.

Alterations in T wave morphology have been quantitated in seven open chest anesthetized dogs by simultaneous recording of electrograms from 10 epicardial sites across the anterior left ventricular wall under basal conditions, following left sympathetic stimulation (LSS) at 2, 4, 8, 12, and 16 Hz and during noradrenaline infusions (NAI) of 0.125, 0.25, 0.50, and 1.0 micrograms/kg/min. Overdrive atrial pacing at 175 beats/min was employed and rate of rise of left ventricular pressure (dP/dt) monitored. Linear log dose-response relationships were found between both peak T amplitude and left ventricular dP/dt for NAI between 0.125 and 0.50 micrograms/kg/min (peak T wave amplitude 4.0 +/- 0.9 to 1.4 +/- 0.7 mV). Following LSS, T wave amplitude responses were highly variable both between animals and between electrode sites in individual studies. A linear log dose-response relationship was found at stimulation frequencies between 8 and 16 Hz (T amplitude 3.9 +/- 1.4 to 1.8 +/- 1.2 mV). Changes in QT interval were minor and inconsistent. It is concluded that changes in peak T wave amplitude may provide a useful index of regional myocardial sympathetic responsiveness following NAI, but are more variable following LSS.

Animals↗