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Relationship between plasma catecholamines and urinary catecholamine excretion rates in normal subjects and certain diseased states.

Relationships between plasma norepinephrine (PNE) or epinephrine (PE) and urinary norepinephrine (UNE) or epinephrine (UE) excretion rates were studied in 37 normal subjects, 39 patients with benign essential hypertension, 23 with unilateral renal hypertension, and 20 with bilateral renal disease (serum creatinine 2.3 +/- 2.6 mg/100 ml). measurements were also performed after 6 weeks of diuretic treatment in 27 normal subjects and all patients with essential hypertension. In the untreated state, PNE and UNE values were generally normal in essential or unilateral renal hypertension; PNE tended to be decreased in diabetics and increased in bilateral renal disease. Diuretic treatment caused a tendency for slightly increased PNE and UNE. UNE correlated significantly with supine PNE or upright PNE or their mean value, and this relationship appeared to be comparable between untreated normal subjects and the various patients groups, except for a tendency for slightly higher PNE at given UNE values in bilateral renal disease. No significant correlations between UE and PE were apparent in the normal subjects or patient groups. These data demonstrate a dissociation of UE from PE levels. In contrast, UNE is an approximative index of PNE, and this relationship appeared to be generally unaltered in essential or unilateral renal hypertension. In patients with bilateral renal disease the slight shift of this relationship indicates that consideration of renal function is necessary for interpretation of NE levels.

Adult↗

Determinants of coronary sinus noradrenaline in patients with ischaemic heart disease: coronary sinus catecholamine concentration in relation to arterial catecholamine concentration, pulmonary artery oxygen saturation and left ventricular end-diastolic pressure.

Arterial and coronary sinus noradrenaline (NA) and adrenaline (A) concentrations, cardiac output, pulmonary artery oxygen saturation (PAO2), coronary sinus oxygen saturation, left ventricular end-diastolic pressure (LVEDP), and arterial pressure were examined in 21 patients with ischaemic heart disease at rest and during exercise before and after intravenous propranolol. The heart had a net uptake of A and a net release of NA. It can be estimated that at least 50% of NA in the coronary sinus derived from the heart. NA in the coronary sinus and in the arterial blood originated therefore, at least partially, in different tissues. The NA concentration showed close correlation with PAO2, but not with cardiac index or arterial blood pressure. Multiple regression analysis also revealed a relationship between LVEDP and arterial and coronary sinus NA independent of PAO2. A very close correlation between arterial and coronary sinus NA (r = 0.93, P less than 0.001) indicates that they are largely controlled by the same factors.

Adult↗

Simultaneous immunoenzymatic staining of catecholamines, catecholamine-biosynthesizing enzymes, and bromodeoxyuridine in adrenal medullary cells of the rat.

The rat adrenal medulla consists mainly of low proliferating, highly differentiated parenchymal cells. By immunocytochemical techniques, two types of parenchymal cells can be identified, norepinephrine (NE)- and epinephrine (E)-storing cells. Bromodeoxyuridine (BrdU), a thymidine analogue often used to identify proliferating cells, can also be detected by immunocytochemical techniques. We developed double- and triple-labeling procedure(s) for simultaneous visualization of NE, E, dopamine beta-hydroxylase (DBH), phenylethanolamine-N methyltransferase (PNMT), and BrdU in rat adrenal medulla. BrdU was administered to 7-week-old Wistar rats by mini-osmotic pumps. Tissues were fixed by perfusion with 4% paraformaldehyde and embedded in paraffin. By immunocytochemistry, first NE, E, DBH, and/or PNMT was detected by an indirect immunoalkaline phosphatase technique with Fast Red or Fast Blue as substrate. Next, incorporation of BrdU was detected with an indirect immunoperoxidase procedure using diaminobenzidine (DAB). Both NE- and E-storing cells, as well as endothelial cells, can incorporate BrdU, i.e., are able to divide. Occasionally, we also found BrdU-stained mitotic figures in E, PNMT and DBH immunoreactive cells. No BrdU incorporation was found in the post-ganglionic neurons of the adrenal medulla. The procedures described enable a detailed cell kinetic study of the NE- and E-storing cells in the adrenal medulla, particularly in the rat, which can lead to a better understanding of cell renewal in the adrenal medullary tissue under normal and pathological conditions.

Adrenal Medulla↗