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Biomedical subjects

F Fallo

Publications and source records attributed to F Fallo.

At least 73 records · Page 4Linked to original sources

Renin-angiotensin-aldosterone system and physical exercise.

The renin-angiotensin-aldosterone system plays a primary role in regulating the physiological response and adaptation of fluid-electrolyte balance as well as cardiovascular function to exercise in man. We reviewed the main mechanisms leading to stimulation of the renin-angiotensin-aldosterone axis during physical stress, i.e. the decrease in renal perfusion and in the NaCl load to the macula densa, the enhancement of sympathetic activity, and the reduction in hormone clearance rate. Interpretation of hormonal changes is difficult because of the variability in environmental conditions and exercise protocols, and the different subjects characteristics. We analyzed these confounding variables reported in literature studies, showing their influence on renin-angiotensin-aldosterone response. Possible implications of these hormonal alterations for performance and health, and the evaluation of new mechanisms of hormones regulation, i.e. receptor changes, require further research.

Adaptation, Physiological↗

Hereditary hypertension caused by chimaeric gene duplications and ectopic expression of aldosterone synthase.

Patients with glucocorticoid-remediable aldosteronism (GRA) from 12 kindreds possess chimaeric gene duplications arising from unequal crossing-over, fusing regulatory sequences of steroid 11 beta-hydroxylase to coding sequences of aldosterone synthase. These chimaeric genes are specific for GRA and explain the biochemistry, physiology and genetics of this form of hypertension. Sites of crossing over range from intron 2 to intron 4. Most mutations have arisen independently from either sister or non-sister chromatid exchange between these genes, which are only 45 kilobases apart. The possibility of a susceptibility allele for GRA of Irish origin is suggested. These findings indicate the utility of a direct genetic test for this disorder.

Alleles↗

Concomitant release of renin, angiotensin I, and angiotensin II during superfusion of human juxtaglomerular cell tumor.

Increasing evidence indicates that angiotensin II can be formed by juxtaglomerular cells (JGC) and cosecreted with renin. We investigated the existence of this local renin-angiotensin system in a human JGC tumor, using an in vitro superfusion. The JGC tumor was found concomitantly to release renin and angiotensin I and II. Sequential addition of atrial natriuretic peptide, dopamine, and a somatostatin analog in the superfusion did not affect renin or angiotensin I and II release. The data provide evidence that the human JGC tumor in vitro generates angiotensin II, and supports its possible role as a local in vivo regulator of kidney function.

Adult↗

Selective venous sampling in the differential diagnosis of ACTH-dependent Cushing's syndrome.

Bilateral simultaneous inferior petrosal sinus sampling, associated with the oCRH stimulation test (100 micrograms i.v. as a bolus) was performed in 22 patients with Cushing's syndrome and no signs of pituitary abnormalities. Catheters were inserted into both femoral veins. More than one site in the superior and inferior vena cava was sampled before reaching the inferior petrosal sinuses. Blood samples for ACTH and beta-endorphin were gently aspirated from both petrosal sinuses and from a peripheral vein simultaneously. Blood was drawn at 0, 5, 10 and 15 min after oCRH injection. Seventeen of 22 patients showed an ipsilateral to peripheral vein ratio higher than 1.5, and 12 patients showed a lateralization of ACTH levels after oCRH stimulation. Seventeen patients underwent transsphenoidal pituitary surgery. Nine patients had a pituitary adenoma at the expected side; 1 at the contralateral side, while in 2 it was central. Three of 4 patients in whom the ipsilateral/peripheral ratio was less than 1.5 had the highest ACTH levels at the superior or inferior vena cava, not responsive to oCRH stimulation. One of these had a mediastinal and one a pulmonary mass. The third one, with an occult ectopic source, is still under investigation. At immunohistochemical and biological in vitro studies, both tumors were shown to secrete ACTH. In 13 patients in whom both beta-endorphin and ACTH measurements were performed, these hormones showed similar patterns of response. In conclusion, simultaneous bilateral petrosal sinus catheterization is a useful tool in the differential diagnosis of Cushing's syndrome as concerning pituitary and ectopic forms.(ABSTRACT TRUNCATED AT 250 WORDS)

ACTH Syndrome, Ectopic↗

Local renin-angiotensin system in human adrenals and aldosteronomas.

The local renin-angiotensin system may regulate adrenal cell growth and function. Angiotensinogen, renin, and angiotensin converting enzyme gene expression were studied in four normal adrenal glands (removed from patients with renal carcinomas) and five aldosterone-secreting adenomas. Northern blot analysis showed expression of angiotensinogen messenger RNA (mRNA) in normal adrenals at levels approximately 35-fold lower than liver and sixfold lower than kidney. Similar angiotensinogen mRNA levels were present in two aldosteronomas, whereas a third had levels approximately 50% of those found in kidney. Renin mRNA was detectable in most normal adrenals and in three adenomas, one of which had relatively high renin mRNA levels. Angiotensin converting enzyme gene was expressed in adrenal tissue and in three adenomas. Portions from these normal adrenals and two of these aldosteronomas, as well as samples from two other adrenals and three aldosteronomas, were also studied in an in vitro superfusion system coupled with active renin radioimmunometric assay, angiotensin II/III, and aldosterone radioimmunoassay. Total amounts of active renin and angiotensin II/III released from normal adrenals during 270 minutes of superfusion were higher than the amounts released from aldosteronomas (312 +/- 35 versus 187 +/- 43 and 823 +/- 100 versus 436 +/- 55 pg/100 mg tissue, respectively; mean +/- SEM, p less than 0.05), whereas aldosterone release from the adenomatous tissue was approximately threefold higher (320 +/- 21 versus 115 +/- 18 ng/100 mg tissue; mean +/- SEM, p less than 0.01). Total amounts of active renin and angiotensin II/III released by normal or adenomatous adrenal samples exceeded threefold to fourfold the amounts extracted from similar samples of the same surgical specimen.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenal Cortex Neoplasms↗

Effect of digoxin on the in vitro secretion of renin and angiotensin II/III immunoreactivity by the human adrenal gland.

Cardiac glycosides in man inhibit renin secretion, probably through a direct effect at the renal level (i.e. inhibition of juxtaglomerular cell Na/K ATPase). Since there is evidence that the human adrenal possesses an intrinsic renin-angiotensin system, we investigated the effect of digoxin on the in vitro generation of renin and angiotensin II/III, as well as of aldosterone, by the human adrenal gland. Minced normal adrenal tissues were studied in a superfusion system, measuring in the 15-min superfusate fractions active renin by immunoradiometric assay and angiotensin II/III and aldosterone by radioimmunoassay, respectively. In a first set of four experiments using different concentrations of digoxin in sequence for 45 min periods, digoxin 10(-5), but not 10(-8) and 10(-6) mol/l, significantly reduced renin and angiotensin II/III output from adrenals, while no change in aldosterone was observed. In a second set of three experiments, the addition of digoxin 10(-5) mol/l for 120 min caused a sustained reduction of renin and angiotensin II/III, but not of aldosterone. In the final experiment, the decrease of renin and angiotensin II/III during superfusion with digoxin 10(-5) mol/l was significantly greater than that observed during superfusion with digoxin in the presence of antidigoxin antibodies. Our data indicate that digoxin at high doses reduces renin and angiotensin II/III but not aldosterone secretion by the human adrenal gland. This suggests two different effects of digoxin, probably both mediated by inhibition of the Na/K ATPase activity, on the adrenal renin-angiotensin- and aldosterone-secreting cells.

Adrenal Glands↗

Comparison of the antihypertensive and renal effects of tertatolol and nadolol in hypertensive patients with mild renal impairment.

The antihypertensive and renal haemodynamic effects of 5 mg/day tertatolol (T), a new nonselective and long-acting beta-adrenoceptor blocker, and 80 mg/day nadolol (N) in hypertensive patients with mild renal impairment have been compared in a randomized double-blind trial. Before and after 30 days of active treatment glomerular filtration rate (GFR) and effective renal plasma flow (ERPF) were determined by use of a simultaneous i.v. bolus of 99mTc-DTPA and 131I-hippuran. Both T and N significantly decreased blood pressure and heart rate, and induced an insignificant increase in GFR and ERPF. There were no differences between the effect of the treatments on blood pressure and heart rate. Despite the persistent fall in BP and HR, renal function was maintained during both T or N treatment, suggesting that both drugs may act by a direct intrarenal vasodilator mechanism.

Adrenergic beta-Antagonists↗

Steroids and hypertension.

Primary aldosteronism is the principal disorder of zona glomerulosa and a number of subsets have been identified: unilateral adenoma; bilateral micro- or macro-nodular hyperplasia (idiopathic aldosteronism); primary hyperplasia and aldosterone-producing carcinoma either adrenal or ectopic. The diagnostic criteria for a correct differential diagnosis of these subsets are now quite reliable and our experience is presented in detail. Unfortunately the pathogenesis of most of these forms is still poorly recognized and requires further investigation. An extreme sensitivity to angiotensin II is present in patients with idiopathic aldosteronism, and a role for adrenal renin is now being advocated. A peculiar form of hyperaldosteronism is the glucocorticoid-remediable subtype. An unusual sensitivity of aldosterone to ACTH is present in this form. A qualitative biochemical abnormality in this disorder consists of marked over-production of products of the cortisol C18-oxidation pathway, 18-hydroxycortisol and 18-oxocortisol, which are more abundant than aldosterone and 18-hydroxycorticosterone. A family with three affected sibs has been studied by our group. In other clinical situations, classical zona fasciculata mineralocorticoids [deoxycorticosterone (DOC), corticosterone and their 18-hydroxy compounds] are secreted in excess. The hypertensive diseases of this zone are rare DOC-secreting tumors and two forms of congenital adrenal hyperplasia (CAH), the 11 beta-hydroxylase (11-OHDS) and the 17 alpha-hydroxylase deficiency syndromes (17-OHDS), which are identified by the presence of hypokalemia and suppressed renin activity. DOC is the only mineralocorticoid hormone (MCH) oversecreted in the 11-OHDS, while all ACTH-dependent MCH are very high in the 17-OHDS. The molecular basis of gene abnormalities of this disorder are currently under investigation, and preliminary data obtained in some of our patients are presented. Finally a syndrome of apparent mineralocorticoid excess, which is not a primary disorder of the adrenal cortex, describes the association of an unexplained hypermineralocorticoid state with a decreased rate of peripheral 11 beta-hydroxy dehydrogenation of cortisol to cortisone. Studies on this syndrome have led to the hypothesis that peripheral cortisol inactivation is the normal mechanism permitting specific mineralocorticoid recognition. The syndrome exists in two forms both characterized by a decreased turnover of a normal level of plasma cortisol, but in the type I variant an elevated cortisol/cortisone metabolite ratio is found, whereas in the type II variant this ratio is normal. Three patients of the latter form have recently been described by us and are shortly illustrated.(ABSTRACT TRUNCATED AT 400 WORDS)

Cushing Syndrome↗

The effect of sodium intake on angiotensin content of the rat adrenal gland.

To determine whether dietary sodium intake modifies the generation of adrenal-produced angiotensins and/or their relative proportions, Sprague-Dawley rats were maintained on a low (0.02%), normal (0.4%), or high (1.5%) sodium intake for 5 days. The animals were then killed by decapitation at 0900 h, and their adrenal glands were removed and dissected into two parts: capsular tissue, containing the zona glomerulosa (ZG), and the decapsulated adrenal gland. The tissue was frozen in liquid nitrogen and extracted, and the individual angiotensins [angiotensin-II (AII), angiotensin-III (AIII), angiotensin-I (AI), and Des-Asp-angiotensin-I (Des-Asp-AI)] were separated by HPLC and quantitated by RIA. On a normal sodium intake, the molar contents of the four angiotensins were similar in ZG, ranging from 3.1-6.6 pmol/g, although AII was present in a 60-70% higher concentration than AIII. In the decapsulated adrenal, the concentrations of the various angiotensins were again similar, but the absolute levels (per g tissue) were significantly (P less than 0.02) less than those in the ZG layer. With sodium restriction, the AII content increased more than 2-fold in the ZG, but not in the decapsulated adrenal tissue. In contrast, both AI and Des-Asp-AI significantly (P less than 0.01) decreased with sodium restriction, so that their contents on the low salt diet were only 15-20% of those observed on the high sodium diet. Thus, there was an inverse correlation (P less than 0.001) between the salt content of rat chow and the AII content of the ZG. The correlation between salt intake and AI as well as Des-Asp-AI levels was direct and significant (P less than 0.02). The AIII level in the ZG was similar on all diets. After a lag period, ZG AII increased sharply between 16-48 h of sodium restriction. These data document that sodium intake has a profound effect on the angiotensin content of the ZG, with sodium restriction substantially increasing the levels of AII while reducing the level of its substrate, AI. This also appears to be unique for glomerulosa cells, as in the decapsulated adrenal gland there is little if any change with sodium restriction. We conclude that these sodium-mediated changes in tissue AII production may be involved in the increased responsiveness of glomerulosa cells to aldosterone secretagogues during sodium restriction.

Adrenal Glands↗

Potassium-stimulated angiotensin release from superfused adrenal capsules and enzymatically dispersed cells of the zona glomerulosa.

The cells of the adrenal cortex contain angiotensin-II (AII), but whether this peptide is synthesized there (vs. internalized from the systemic circulation), whether it is secreted, and whether it is important in aldosterone production remain uncertain. To address these issues, we studied AI and AII release from superfused rat adrenal capsules and dispersed glomerulosa cells. Superfused adrenal capsules released 7-fold more AII in 270 min than the capsules originally contained (495 +/- 101 fmol AII/rat released vs. 66 +/- 8 fmol AII/rat tissue content). The amount of AI released in the same period only slightly exceeded the tissue content. In response to higher potassium concentrations in the medium (9 vs. 3.6 mM K+), adrenal capsules and dispersed glomerulosa cells both released significantly more AI and AII into the superfusate. This release of AI and AII was oscillatory. The oscillations occurred in each of 15 experiments, with a period of 45-90 min. Decapsulated adrenal glands (the zona faciculata/reticularis plus medulla) also contained and released AII, but did not respond to potassium stimulation. There was a highly significant correlation between AII and aldosterone release. This was especially apparent if aldosterone secretion was examined during oscillations of AII release (r = 0.97; P less than 0.0001). We conclude that AII is synthesized in the zona glomerulosa and can be released in response to stimuli. The close correlation between AII and aldosterone secretion suggests that locally produced AII may play an important role in aldosterone biosynthesis.

Adrenal Glands↗

In vitro evidence for local generation of renin and angiotensin II/III immunoreactivity by the human adrenal gland.

The adrenal gland of various mammalian species has been shown to contain all the components of a functional renin-angiotensin system. We investigated the existence of this local system in human adrenal tissues surgically obtained. Eight normal adrenals (cortex and medulla) and 6 aldosterone-producing adenomas (aldosteronomas) were examined. Minced tissues were superfused over 270 min, and 15-min fractions were collected. In the perfusates, active renin was measured by immunoradiometric assay with human anti-renin monoclonal antibodies; immunoreactive angiotensin II/III and aldosterone were measured by radioimmunoassay. Adrenal tissues, either normal or pathological, were found concomitantly to release renin, angiotensin II/III and aldosterone. The pattern of this spontaneous release exhibited a pulsatile character. The total amount of renin and angiotensin II/III secreted during superfusion clearly exceeded the tissue content (determined by extraction). Addition of the angiotensin-converting enzyme inhibitor quinaprilat (4 x 10(-6) mol/l) in the superfusion caused a concomitant decrease of angiotensin II/III and aldosterone secretion by 3 normal tissues, and no change in 2 aldosteronomas. These data provide evidence that the human adrenal gland in vitro generates and releases both renin and angiotensin II/III, and support the hypothesis that locally formed angiotensin II/III may play a role as a paracrine regulator of physiological aldosterone secretion.

Adenoma↗

Effect of captopril on aldosterone response to potassium infusion in primary aldosteronism.

The effect of captopril on the aldosterone response to potassium was studied in 6 patients with idiopathic adrenal hyperplasia (IAH) and in 4 patients with an aldosterone-producing adenoma (APA), who all have suppressed activity of circulating renin-angiotensin system (RAS). Precaptopril, KCl infusion induced a significant increase in aldosterone in both groups. This increment was significantly blunted by captopril in IAH, but not in APA. Decreased potassium-stimulated aldosterone secretion after captopril in IAH supports the hypothesis that adrenal RAS plays a role in aldosterone production under potassium stimulation.

Adenoma↗

Pro-gamma-MSH levels in various disorders of pituitary-adrenal axis.

N-Terminal (1-76) portion of proopiomelanocortin (hNT) was measured in normals, Addison's, Nelson's, Cushing's disease, and in dexamethasone suppressible hyperaldosteronism (DSH) by using a specific homologous RIA. Mean basal immunoreactive hNT level was 94.2 +/- 6 pg/ml (mean +/- SE) in normal subjects. In Cushing's disease hNT values were slightly but not significantly (121 +/- 26.5 pg/ml) higher. In patients with DSH the levels were within normal range while they were much higher in Addison's and Nelson's syndromes. A strong correlation was found between IR-hNT and ACTH in plasma of normal subjects and patients with different disorders of the pituitary-adrenal axis (r = 0.83, p less than 0.01). Corticotropin-Releasing-Hormone (CRH) test in Cushing's disease stimulated the release of both ACTH and IR-hNT, showing a slightly different pattern of secretion. Similar patterns of secretion were found for hNT and ACTH in various pituitary-adrenal abnormalities. Normal levels of hNT in DSH do not support a role of this peptide in the pathogenesis of the disorder. Measurement of hNT in plasma can provide an additional tool for the diagnosis of patients with various disorders of the hypothalamic-pituitary-adrenal axis.

Addison Disease↗

Inhibition of pituitary beta-endorphin by ACTH and glucocorticoids.

beta-Endorphin and ACTH are secreted concomitantly in baseline conditions and in response to physiological and pharmacological stimuli. However, few and contradictory data are available on their feedback inhibition mechanisms. To investigate this aspect, the effects of exogenous ACTH1-24 and glucocorticoids on endogenous ACTH1-39 and beta-endorphin were tested in 18 patients with Addison's disease. Two main experimental protocols were employed: (1) 7 patients were given ACTH1-24 50 micrograms as an intravenous bolus followed by a 50-micrograms infusion in 90 min. Blood samples for beta-endorphin, ACTH and cortisol were obtained at 0, 15, 30, 45, 60, 90, 120 min. Six other patients were given oCRH 100 micrograms i.v. plus ACTH1-24, as described above. (2) In 5 other patients, hydrocortisone 37.5 mg was administered i.v. in 90 min. Blood samples for beta-endorphin, ACTH and cortisol were drawn at 0, 15, 30, 45, 60, 90, 120 min. One week later, the same patients were given oCRH 100 micrograms i.v. and hydrocortisone 37.5 mg, as described above. ACTH1-24 administration caused a significant (p less than 0.01) decrease in endogenous ACTH but not in beta-endorphin. oCRH injection significantly stimulated both ACTH and beta-endorphin. The response of both ACTH and beta-endorphin was inhibited by exogenous ACTH1-24. There was a potent inhibition by hydrocortisone on both basal and stimulated beta-endorphin, confirming that the feedback mechanism of glucocorticoids concomitantly inhibits ACTH and beta-endorphin. On the other hand, only CRH-stimulated but not basal secretion of beta-endorphin seems affected by ACTH ultrashort feedback, suggesting an intrapituitary regulation.

Addison Disease↗

New aspects of mineralocorticoid hypertension.

Primary aldosteronism is the principal disorder of the zona glomerulosa, and a number of subsets have been identified: unilateral adenoma, bilateral micro- or macronodular hyperplasia (idiopathic aldosteronism), primary hyperplasia, and aldosterone-producing carcinoma, either adrenal or ectopic. The diagnostic criteria for a correct differential diagnosis of these subsets are now quite reliable, and our experience is presented in detail. Unfortunately, the pathogenesis of most of these forms is still poorly recognized and requires further investigation. An extreme sensitivity to angiotensin II is present in patients with idiopathic aldosteronism, and a role of adrenal renin is now being advocated. A peculiar form of hyperaldosteronism is the glucocorticoid-remediable subtype. An unusual sensitivity of aldosterone to ACTH is present in this form. The qualitative biochemical abnormality in this disorder consists of a marked overproduction of products of the cortisol C-18-oxidation pathway, 18-hydroxycortisol and 18-oxocortisol, which are more abundant than aldosterone and 18-hydroxycorticosterone. A family with 3 affected sibs has been studied by our group. In other clinical situations, classical zona fasciculata mineralocorticoids (deoxycorticosterone [DOC], corticosterone, and their 18-hydroxy compounds) are secreted in excess. The hypertensive diseases of this zone are rare DOC-secreting tumors and two forms of congenital adrenal hyperplasia, the 11 beta-hydroxylase and 17 alpha-hydroxylase deficiency syndromes, which are identified by the presence of hypokalemia and suppressed renin activity. DOC is the only mineralocorticoid hormone (MCH) oversecreted in the 11-hydroxylase deficiency syndromes, while all ACTH-dependent MCH levels are very high in the 17-hydroxylase deficiency syndromes.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenoma↗

Psychological distress and quality of life in endocrine disease.

Despite an upsurge of research in psychoneuroendocrinology, there has been very little interest in the psychological aspects of clinical care in endocrine disease. The clinical and research implications of quality of life in endocrinology (life events preceding disease onset, psychological distress associated with acute illness and convalescence, abnormal illness behavior) are discussed.

Adaptation, Psychological↗