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D H Landis

Publications and source records attributed to D H Landis.

18 recordsLinked to original sources

Catecholamine metabolism and disposition in healthy and depressed subjects.

Depressed patients as a group have been found to excrete greater amounts of catecholamines (CAs) and metabolites than healthy control subjects, but these differences were not uniform for all metabolites. Patients may differ from controls in the metabolism and/or disposition of CAs. We analyzed the suggested metabolic-dispositional differences by determining 24-hour urine values for norepinephrine (NE), epinephrine (E), normetanephrine (NM), metanephrine (M), vanillylmandelic acid (VMA), and 3-methoxy-4-hydroxyphenylglycol (MHPG). For each subject, we calculated ratios of CAs or metabolites to an estimate of CA synthesis and determined ratios of CAs and metabolites to each other based on a precursor-product paradigm. The results indicate that as a group, patients have modestly but significantly greater CA synthesis rates than controls; patients excrete disproportionately more NE and E and disproportionately less MHPG relative to estimated CA synthesis, as well as other metabolites, than do controls; in contrast to NE, E, and MHPG, the increased NM, M, and VMA excretion rates by patients are proportional to each other as well as to the increase in CA synthesis; and the differences in NE, E, and metabolite excretion in the patients as a group are due principally to unipolar rather than bipolar depressives. The differences would be expected if patients, relative to controls, released more NE and E into the circulation. These data indicate the need to measure several CAs and metabolites when evaluating differences between groups since the significance of any given metabolite value needs to be examined in the context of total CA and metabolite production and excretion.

Adult↗

Impaired presynaptic regulation of norepinephrine in schizophrenia. Effects of clonidine in schizophrenic patients and normal controls.

Recent studies have found elevated levels of norepinephrine (NE) in CSF and brain specimens from schizophrenic patients. Presynaptic inhibitory alpha 2-adrenergic receptors regulate NE release in the brain. The hypothesis that the functional sensitivity of this presynaptic regulation of NE is impaired in schizophrenia was tested by evaluating, in schizophrenic patients and age-matched normal controls, the ability of clonidine, an alpha 2 agonist, to lower plasma levels of the NE metabolite 3-methoxy-4-hydroxyphenylglycol (MHPG) and to lower blood pressure (BP). Clonidine produced a significant decrease in plasma MHPG levels in the normal control group, but did not lower plasma MHPG levels in the schizophrenic patients. Clonidine decreased BP equally in both groups. These results suggest that there is a functional subsensitivity of the inhibitory presynaptic alpha 2-adrenergic receptor in schizophrenia, which may relate to an impaired regulation of NE turnover.

Adult↗

Adrenergic receptor sensitivity in depression. Effects of clonidine in depressed patients and healthy subjects.

Several recent investigations have raised the possibility that the sensitivity of alpha 2-adrenergic receptor may be of etiologic importance in depression. To assess whether abnormalities in presynaptic alpha 2-adrenergic receptor exist in depressed patients not taking drugs, the effects of an alpha 2 agonist, clonidine, on plasma 3-methoxy-4-hydroxyphenelethyleneglycol (MHPG) and on blood pressure (BP) were evaluated in 15 depressed patients and 12 healthy controls of similar age. The ability of clonidine to increase growth hormone (GH) secretion was also assessed. The effect of clonidine on plasma MHPG and BP was not different between the depressed patients and controls. However, the GH response to clonidine was blunted in the depressed patients. These results suggest that in depression (1) the sensitivity of the presynaptic alpha 2-adrenergic receptor is not abnormal, and (2) the sensitivity of postsynaptic adrenergic receptors may be decreased.

Adult↗

3-Methoxy-4-hydroxyphenethyleneglycol production by human brain in vivo.

A direct method has been employed to estimate the rate of production by human brain of 3-methoxy-4-hydroxyphenethyleneglycol, the major metabolite of brain norepinephrine, a brain neurotransmitter. Venous specimens were obtained from the internal jugular vein from ten awake human subjects at a puncture site above the common facial vein, the first major source of extracranial inflow. Arterial specimens were simultaneously obtained from the radial artery. Plasma samples were assayed and a highly significant difference was found in the concentration of the metabolite in plasma coming out of the brain (venous blood) as compared to plasma entering the brain (arterial blood). This venous-arterial difference was calculated to be 0.7 +/- 0.1 nanogram per milliliter of blood. Assuming an adult brain weight of 1400 grams and normal cerebral blood flow, it is estimated that the rate of production of 3-methoxy-4-hydroxyphenethyleneglycol by the awake human brain is approximately 597 nanograms per minute or 35.8 micrograms per hour. Urine specimens were also collected from six of these subjects during a period of 1 to 3.5 hours, which bracketed the time the blood samples were obtained. For these six subjects the output of 3-methyoxy-4-hydroxyphenethyleneglycol by whole brain was estimated to be 40.9 micrograms per hour, whereas the rate of its excretion into urine was 64.5 micrograms per hour.

Adult↗

A direct method for studying 3-methoxy-4-hydroxyphenethyleneglycol (MHPG) production by brain in awake animals.

A direct method for measuring the rate of production of neurotransmitter metabolites by the brain of awake monkeys is described. The method utilizes a coupling of a measure of cerebral blood flow with the determination of the difference in concentration of the metabolite under study in arterial and internal jugular bulb blood. A consistent veno-arterial difference for 3-methoxy-4-hydroxyphenethylenglycol (MHPG) has been found. The concentration of MHPG in blood obtained from the right and left venous outflows from brain were not significantly different indicating that blood from either the right or left internal jugular bulb may be used with this method. The rate of production of MHPG by the brain of thw awake monkey is estimated to be 24.1 ng/100 g brain/min. The rate of MHPG production by brain is increased by the administration of piperoxan and decreased by clonidine. Using the experimentally determined rate of production of MHPG by brain and extrapolating to the human it is suggested that a substantial fraction of the total body production of MHPG in man occurs in brain.

Animals↗