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Hybrid gene or hybrid steroids in the detection and screening for familial hyperaldosteronism type I.

1. Early diagnosis of Familial Hyperaldosteronism Type I (FH-I, glucocorticoid-suppressible hyperaldosteronism) in asymptomatic, affected individuals is essential if death from stroke is to be prevented. 2. In 21 patients with FH-I (presence of the causative hybrid 11 beta-hydroxylase/aldosterone synthase gene confirmed by Southern blot testing), various biochemical parameters were compared as possible screening tests. Hypokalaemia and elevated plasma aldosterone each detected only two (10%) of the affected individuals. 3. Plasma renin activity 19 (90%) and aldosterone/renin ratio 18 (86%) were more reliable but not free from false negatives. 4. Levels of the urinary 'hybrid' steroid, 18-oxocortisol, were elevated (P < 0.01) in all 15 patients tested (138.2 +/- 17.4 micrograms/g creatinine, range 41.6 +/- 281.0 micrograms/g) with no overlap when compared with 11 normals (9.7 +/- 1.3 micrograms/g, range 2.8-17.4 micrograms/g). 5. We conclude that measurement of urinary 'hybrid' steroids is probably the most rapid and reliable biochemical screening test currently available for FH-I, with confirmation dependent on demonstration of the hybrid gene by genetic techniques.

Adult↗

Falsely high plasma potassium values in patients with hyperaldosteronism.

The common practice of encouraging forearm exercise as an aid to venepuncture is a potent source of erroneously high plasma potassium levels. This may be sufficient to obscure a suspicion of hyperaldosteronism, with possible serious repercussions in hypertensive patients, in whom the diagnosis of hyperaldosteronism has important therapeutic implications. Plasma is preferable to serum for potassium estimations, and forearm exercise should be avoided before venepuncture for potassium measurements.

Adolescent↗

A novel genetic locus for low renin hypertension: familial hyperaldosteronism type II maps to chromosome 7 (7p22).

Familial hyperaldosteronism type II (FH-II) is caused by adrenocortical hyperplasia or aldosteronoma or both and is frequently transmitted in an autosomal dominant fashion. Unlike FH type I (FH-I), which results from fusion of the CYP11B1 and CYP11B2 genes, hyperaldosteronism in FH-II is not glucocorticoid remediable. A large family with FH-II was used for a genome wide search and its members were evaluated by measuring the aldosterone:renin ratio. In those with an increased ratio, FH-II was confirmed by fludrocortisone suppression testing. After excluding most of the genome, genetic linkage was identified with a maximum two point lod score of 3.26 at theta=0, between FH-II in this family and the polymorphic markers D7S511, D7S517, and GATA24F03 on chromosome 7, a region that corresponds to cytogenetic band 7p22. This is the first identified locus for FH-II; its molecular elucidation may provide further insight into the aetiology of primary aldosteronism.

Chromosome Banding↗

Primary hyperaldosteronism (Conn syndrome): MR imaging findings.

PURPOSE: To describe the magnetic resonance (MR) imaging features of the adrenal glands in primary hyperaldosteronism and assess MR imaging in the detection and characterization of aldosterone-producing adenoma (APA). MATERIALS AND METHODS: The authors retrospectively reviewed the cases of 20 patients (13 female and seven male patients; age range, 14-67 years; median age, 46 years) with primary hyperaldosteronism who underwent 1.5-T MR imaging between 1995 and 1998. All patients underwent transverse T1- and T2-weighted imaging, and chemical shift imaging was performed in 17 patients. Imaging results were correlated with findings at biochemical testing, venous sampling, or surgery. RESULTS: Among the 20 patients, 10 (50%) had APA and 10 (50%) bilateral adrenal hyperplasia (BAH). In the detection of APA, MR imaging had a sensitivity of 70%, specificity of 100%, and accuracy of 85%. APAs (mean size, 20 x 16 mm) were iso- or hypointense relative to the liver on T1-weighted images and slightly hyperintense on T2-weighted images. With chemical shift imaging, the signal intensity decreased on the out-of-phase images in six of seven (86%) patients with APA and in eight of nine (89%) patients with BAH. CONCLUSION: MR imaging has a high specificity in the detection of APA. As with nonhyperfunctioning adenoma, APA and BAH show evidence of intracellular lipid at chemical shift imaging.

Adenoma↗

Peritoneal carcinomatosis following laparoscopic resection of an adrenocortical tumor causing primary hyperaldosteronism.

A clinical syndrome combining hypertension and hypokalemic alkalosis led to the diagnosis of primary hyperaldosteronism, caused by a right-sided, 2 cm large, apparently benign aldosterone-producing adenoma. The adrenal tumor was completely resected by laparoscopic adrenalectomy. Six months after surgery, the patient exhibited a severe relapse of hyperaldosteronism. Extensive peritoneal metastases of a mixed aldosterone- and cortisol-secreting adrenocortical carcinoma were found at abdominal laparotomy. In the light of this case report, we discuss the possibility that laparoscopic resection of adrenocortical tumors might contribute to their subsequent peritoneal dissemination.

Adrenal Cortex Neoplasms↗

Hypokalemia and alkalosis in adipsic hypernatremia are not associated with hyperaldosteronism.

Idiopathic adipsic hypernatremia (AH) is a rare disorder associated with hypokalemia and alkalosis. Hypokalemic alkalosis has been presumed to be secondary to hyperaldosteronism. We evaluated plasma renin activity, serum aldosterone, serum and urine electrolytes in a 17-year-old patient with AH on several occasions. Despite evidence of mild dehydration, serum Na >160 and K <3.2, aldosterone levels were suppressed and plasma renin activity was not elevated. Urine Na and K were not conserved. We also examined electrolyte and hormone levels in previously reported cases of AH. Aldosterone levels were not increased in any of the cases when measured. Renin secretion was increased in 2 patients. Among the compiled cases serum K was inversely correlated with serum Na (r = -0.73, p < 0.002, n = 15). Hypokalemia and alkalosis occurring in AH are not associated with secondary hyperaldosteronism. Patients with AH may have chronic renal losses of potassium leading to hypokalemia and alkalosis.

Adolescent↗

Effect of the serotonin 5-HT4 receptor agonist cisapride on aldosterone secretion in corticotropic insufficiency and primary hyperaldosteronism.

Serotonin (5-HT) stimulates aldosterone secretion in man through activation of 5-HT4 receptors coupled to adenylyl cyclase via a Gs regulatory protein. In adrenocortical cells, the levels of expression of the Gs protein and ACTH receptor are decreased when the cells are deprived of ACTH and angiotensin II (ANG II). In order to examine the possible influence of ACTH and ANG II on the responsiveness of human glomerulosa cells to 5-HT, we have investigated the effect of cisapride, a 5-HT4 receptor agonist, on plasma aldosterone in patients with suppressed plasma ACTH, i.e. patients with corticotropic insufficiency (CI), and in patients with suppressed renin-ANG II activity, i.e. patients with primary hyperaldosteronism (PH) including both aldosterone-producing adenoma and idiopathic hyperaldosteronism. After 2 h of recumbency, all patients received a single oral dose of 10 mg cisapride. In the CI group, cisapride induced a 5-fold increase in plasma aldosterone levels without any modification of plasma renin, potassium or cortisol levels. Combined administration of cisapride and ACTH caused an increase in plasma aldosterone similar to that produced by ACTH alone. In the PH group, cisapride was still able to cause a 3.6-fold increase in plasma aldosterone levels while renin remained suppressed throughout the study. Taken together, these data show that cisapride stimulates aldosterone secretion in CI and PH patients, indicating that prolonged suppression of plasma ACTH or renin-ANG II activity does not affect the sensitivity of glomerulosa cells to 5-HT. The present study also demonstrates that the stimulatory effects of 5-HT and ACTH on aldosterone secretion are not additive.

Adrenocorticotropic Hormone↗

Hyperiodotyrosinemia-induced hyperprolactinemia and hyperaldosteronism.

A 21-year-old goitrous hypothyroid Chinese woman had elevated serum iodotyrosines with a monoiodotyrosine level of 85.9 nmol/l (normal 0.49-0.89 nmol/l) and a diiodotyrosine level of 25.3 nmol/l (normal 0.023-0.53 nmol/l). She was amenorrheic with low luteinizing hormone and follicle-stimulating hormone levels at 5.8 and 2.8 U/l, respectively. The hypogonadotropic hypogonadism was due to an elevated prolactin level of 8.8 nmol/l. She also had a low potassium level of 3.2 mmol/l, and a high urinary aldosterone level of 158 nmol/day. The hyperprolactinemia, hypogonadotropic hypogonadism, hyperaldosteronism and hypokalemia subsided with the administration of bromocriptine 5 mg/day. However, bromocriptine accentuated the hyperiodotyrosinemia, and the patient remained hypothyroid. Levothyroxine therapy lowered the monoiodotyrosine and diiodotyrosine levels, ameliorated all her endocrinopathies, started her periods, and shrank the goiter. She probably had a deiodinase defect which permitted the discharge of accumulated iodotyrosines from the thyroid gland. Since iodotyrosines are tyrosine hydroxylase inhibitors, the hyperiodotyrosinemia causes dopamine synthesis inhibition, and induces the hyperprolactinemia and hyperaldosteronism.

Adult↗

Unilateral diffuse adrenal hyperplasia masquerading as aldosterone-producing adenoma in primary hyperaldosteronism.

We report a case of primary hyperaldosteronism due to unilateral diffuse hyperplasia. Unilateral adrenalectomy resulted in an improvement of hypertension and hyperaldosteronism. Six months after surgery, the plasma aldosterone level and plasma renin activity remained normal, but blood pressure returned to an abnormally high level. We have reviewed the literature and discuss the pathogenesis of this disorder.

Adenoma↗

Dexamethasone-suppressible hyperaldosteronism. Adrenal transition cell hyperplasia?

Dexamethasone-suppressible hyperaldosteronism is a rare familial syndrome in which hypokalemia, suppression of plasma renin concentration, and elevated aldosterone secretion are corrected by treatment with glucocorticoids. Regulation of adrenocortical function and body electrolytes was studied in two affected brothers. Both were hypertensive (210/128 and 160/106 mm Hg) with hypokalemia (3.3 and 3.5 mM) and low plasma renin concentrations. Aldosterone was elevated intermittently with levels as high as 45 ng/dl (normal range, 4-16 ng/dl). Cortisol concentrations were normal but were correlated with aldosterone levels (r = 0.9 and 0.7). Concentrations of 11-deoxycorticosterone (19 and 21 ng/dl; normal range, 4-16 ng/dl) and 18-hydroxycortisol (1000 and 950 ng/dl; normal range, 34-150 ng/dl) were elevated, and diurnal changes in both were the same as those seen with aldosterone. Infusion of adrenocorticotropic hormone (ACTH) caused exaggerated increases of aldosterone, 11-deoxycorticosterone, and 18-hydroxycortisol; cortisol response was normal. A 4-week trial of dexamethasone normalized blood pressure and caused a natriuresis, a fall in aldosterone, and a rise in plasma renin. Administration of ACTH after dexamethasone treatment again caused exaggerated increases of aldosterone. Aldosterone did not respond to angiotensin II before dexamethasone therapy (r = 0.01), but it showed a normal response after therapy (r = 0.8, p less than 0.01). Neither administration of dopamine (1 microgram/kg/min) nor long-term therapy with bromocriptine (2.5 mg t.i.d. for 4 weeks) affected aldosterone biosynthesis. Thus, loss of dopaminergic inhibition of mineralocorticoid biosynthesis does not account for hyperaldosteronism in this condition.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenal Cortex Hormones↗

Primary hyperaldosteronism in England and Wales: a review of the use of a Supraregional Assay Service laboratory for the measurement of aldosterone and plasma renin activity.

To ascertain the use being made of a Supraregional Assay Service laboratory in the diagnosis of primary hyperaldosteronism, follow-up data were obtained on 60 patients in whom the diagnosis was suggested by the biochemical results. In 36 patients an adrenal adenoma had been removed; 14 patients had evidence of an adenoma on CT scan; 10 patients were presumed to have bilateral adrenal hyperplasia. The data used to make the diagnosis of primary hyperaldosteronism and to assess the likelihood of the presence of an adenoma indicate that patients studied at 40 centres in the UK show results very similar to those of North American series where large numbers of patients have been described but all have been studied in the same centre. The majority of patients in our series were treated at the hospital at which the diagnosis was made, thus avoiding referral to a centre distant from the patient's home and indicating that the service was being used as originally intended when the Supraregional Assay Service was set up.

Adenoma↗

Primary hyperparathyroidism: possible cause of primary hyperaldosteronism in a 60-year-old woman.

Hypertension and hypokalemia were found in a 60-yr-old woman suffering from primary hyperparathyroidism. Laboratory investigations in this patient disclosed 1) elevated levels of plasma aldosterone (PA) which could not be suppressed by a high sodium diet alone or in combination with fludrocortisone (Florinef); 2) a decline of the elevated PA levels after 4 h of ambulation; and 3) low PRA which was unresponsive to stimulation by a low sodium diet coupled with diuretic-induced volume depletion and 4 h of ambulation. These findings were consistent with the diagnosis of primary hyperaldosteronism. Extirpation of a parathyroid adenoma reduced the patient's serum calcium level to normal, and subsequently, a normalization of her blood pressure, serum electrolytes, PA, and PRA were observed. On the basis of these data is is suggested that in this case hyperaldosteronism may have been caused directly or indirectly by primary hyperparathyroidism.

Adenoma↗

Aldosterone receptors in different types of primary hyperaldosteronism.

The number of mineralocorticoid-binding sites on mononuclear leukocytes and plasma aldosterone (aldo) concentrations were measured in patients with different types of primary hyperaldosteronism. Patients with unilateral adenoma and patients with bilateral adrenal hyperplasia had a significantly lower (P less than 0.001) mean number of binding sites for aldo [144 +/- 36 (+/- SD; n = 6) and 140 +/- 28 sites/cell (n = 4), respectively] compared with normal subjects (292 +/- 110 sites/cell; n = 25). In four patients with dexamethasone-suppressible hyperaldosteronism, mineralocorticoid-binding sites in mononuclear leukocytes were normal (291 +/- 108 sites/cell). In all patients undergoing surgery for unilateral adenoma, the receptors normalized 3 months after the operation. In two patients the reduction in receptors persisted for a short time after surgery even though the plasma aldo level had already normalized. We conclude that mineralocorticoid excess produces down-regulation of mineralocorticoid receptors, which, in turn, might contribute to the genesis of the aldo escape phenomenon.

Adult↗

Renin-aldosterone response to dexamethasone in glucocorticoid-suppressible hyperaldosteronism is altered by coexistent renal artery stenosis.

The responses of renin, aldosterone, and blood pressure to ACTH suppression with dexamethasone in a 61-yr-old man with glucocorticoid-suppressible hyperaldosteronism were modified by coexistent atheromatous renal artery stenosis (RAS). The apparent responsiveness of aldosterone to angiotensin-II resulting from RAS has implications for the regulation of steroidogenesis in this condition. After successful surgical correction of the RAS, the response changed and resembled that seen in two younger males (one his son) with uncomplicated glucocorticoid-suppressible hyperaldosteronism.

Adolescent↗

Mutation of cytochrome P-45017 alpha gene (CYP17) in a Japanese patient previously reported as having glucocorticoid-responsive hyperaldosteronism: with a review of Japanese patients with mutations of CYP17.

A 17-yr-old female Japanese patient, who was reported in 1968 as having glucocorticoid-responsive hyperaldosteronism but was presumed to have a defect of 17 alpha-hydroxylation mainly in the adrenal glands as the etiology of her illness, was followed. The relationship between clinical manifestations and molecular abnormalities in cytochrome P-45017 alpha gene (CYP17) was also reviewed based on the literature on Japanese patients with 17 alpha-hydroxylase deficiency. She has been treated with dexamethasone, resulting in normal blood pressure and normokalemia for 28 yr. She had almost normal gonadal function with regular menstruation on her first admission. Because of sustained genital bleeding, however, she underwent total hysterectomy with an ovarian biopsy at the age of 42 yr. No follicles or corpus luteum were detected in the ovarian specimen. At the age of 45 yr, the basal levels of sex steroids were decreased, while those of gonadotropins were increased. A genetic study on CYP17 revealed a homozygous deletion of phenylalanine (Phe) codon (TTC) at either amino acid position 53 or 54 in exon 1. A review of the literature revealed 4 patients with this type of CYP17 mutation, including the present patient, out of a total of 11 young adult Japanese patients. The clinical manifestations caused by congenitally deficient gonadal function were not marked in any of these 4 patients, but were marked in 5 of the 7 patients with different mutations of CYP17. The remaining 2 female patients had irregular menstruation. The pretreatment urine/plasma values of aldosterone were variable, normal to high, in individual patients, regardless of the structural abnormalities of CYP17. The following conclusions were suggested: 1) this type of CYP17 mutation is associated with well preserved gonadal function in young adult patients, but it likely causes early reduction of gonadal function with increasing age in these patients; 2) the prevalence of this type of CYP17 mutation is quite high in Japanese patients; and 3) the pretreatment hyperaldosteronism observed in the present patient seems not to be related to the mutation of CYP17.

Adolescent↗

In familial hyperaldosteronism type I, hybrid gene-induced aldosterone production dominates that induced by wild-type genes.

We compared the aldosterone-producing potency of the angiotensin II-sensitive wild-type aldosterone synthase genes and the ACTH-sensitive hybrid 11 beta-hydroxylase/aldosterone synthase gene by examining aldosterone, PRA, and cortisol day-curves (2-hourly levels over 24 h) in patients with familial hyperaldosteronism type I, before and during long-term (0.8-13.5 yr) glucocorticoid treatment. In 8 untreated patients, PRA levels were usually suppressed, and aldosterone correlated strongly with cortisol (r = 0.69-0.99). Fourteen studies were performed on 10 patients receiving glucocorticoid treatment that corrected hypertension, hypokalemia, and PRA suppression in all. ACTH was markedly and continuously suppressed in 6 studies, 3 of which demonstrated strong correlations between aldosterone and PRA (r = 0.77-0.92). ACTH was only partially suppressed in the remaining 8 studies; aldosterone correlated strongly: 1) with cortisol alone in 5 (r = 0.71-0.98); 2) with cortisol (r = 0.90) and PRA (r = 0.74) in one; 3) with PRA only in one (r = 0.80); and 4) with neither PRA nor cortisol in one. Unless ACTH is markedly and continuously suppressed, aldosterone is more responsive to ACTH than to renin/angiotensin II, despite the latter being unsuppressed. This is consistent with the hybrid gene being more powerfully expressed than the wild-type aldosterone synthase genes in familial hyperaldosteronism type I.

Adolescent↗

Genetic analysis of aldosterone synthase in patients with idiopathic hyperaldosteronism.

Idiopathic hyperaldosteronism (IHA) is characterized by hypertension with excessive production of aldosterone, potassium loss, and suppression of the renin-angiotensin system. We compared activity of aldosterone synthase and expression of CYP11B2 messenger RNA (mRNA) in mononuclear leukocytes (MNL) from patients with IHA to findings in leukocytes from patients with aldosterone-producing adenoma and normal controls. Aldosterone synthase activity was estimated from conversion of [14C]deoxycorticosterone to [14C]aldosterone. Levels of CYP11B2 mRNA were determined by competitive PCR. In the same subjects, we sought the chimeric CYP11B1/CYP11B2 that is candidate gene for glucocorticoid-remediable hyperaldosteronism. Southern blot analysis and a long PCR method were used to detect the chimeric gene. Direct sequencing of the CYP11B2 also was performed. No chimeric genes or mutations in the coding region of the CYP11B2 were found in genomic DNA from these patients. However, both aldosterone synthase activity and CYP11B2 mRNA expression were greater in mononuclear leukocytes of patients with IHA than those of patients with aldosterone-producing adenoma or controls. These results suggest that regulatory factors of the CYP11B2 gene, e.g. unidentified aldosterone-stimulating substances or abnormalities in the promoter region of the CYP11B2 gene in patients with IHA resulting in oversecretion, may cause overexpression of mRNA of CYP11B2.

Adenoma↗

[A case of glucocorticoid-responsive hyperaldosteronism: follow-up study for 21 years--comparison with cases of 17 alpha-hydroxylase deficiency in Japan].

A study of the pathophysiology in our previously reported case of glucocorticoid-responsive hyperaldosteronism (Case E.H., 17 yrs old, female; JCEM, 28: 1807, 1968), who had undergone a long-term successful treatment for 21 yrs of daily 0.5 mg dexamethasone (Dex), suggested again that the patient had 17 alpha-hydroxylase deficiency (17-OH-D) in the adrenal with minimum enzyme deficiency in the ovary. When Case E.H. was injected with zinc-ACTH for 3 days with daily 0.5 mg Dex administration, plasma levels of 17-deoxy-steroids were moderately or dramatically increased, but those of 17 alpha-hydroxy-steroids (17-OH-steroids) responded poorly or not at all. Plasma level of estradiol and urine estrogens were found to be normal in repeated measurements. Plasma basal levels of LH and FSH were normal, and their responses to LH-RH were high normal or slightly exaggerated. Her menstruation was almost regular, and the basal body temperature was at least biphasic with daily 0.5 mg Dex treatment. However, she did not become pregnant during the 17 yrs of her married life. Then, we surveyed 31 Japanese cases of 17-OH-D with suppressed plasma renin activity (PRA) to ascertain whether similar patients to our case, 17-OH-D with suppressed PRA and with hyperaldosteronism, has been reported or not. In this survey work, 9 such cases were found to have high plasma aldosterone (Ald) concentration (PAC) (group I). The other 21 cases had normal or low normal PAC, and the one remaining case had low urine Ald (group II). 17-Deoxy-steroids such as corticosterone, 11-deoxycorticosterone and progesterone, which were elevated in this disorder, were added to control plasma, and PAC was measured with Dainabot's "ALDOSTERONE.RIAKIT" used for the measurement of PAC in all group I patients. With the total of large amounts of 600 ng of these 17-deoxy-steroids (200 ng for each), however, the incremental PAC value was much less than the lowest PAC value in patients of group I. PAC of one group I patient was measured directly by "ALDOSTERONE.RIAKIT" and also by RIA after extraction and purification procedure using LH-20 column chromatography. The PAC values obtained by both methods were high and the same (285 pg/ml). In 5 out of 22 group II patients, PAC was also measured with the same RIA kit "ALDOSTERONE.RIAKIT" mentioned above, and yet it was low or low normal.(ABSTRACT TRUNCATED AT 400 WORDS)

Adolescent↗