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Prevalence of primary hyperaldosteronism in moderate to severe hypertension in the Central Europe region.

Recently published studies from different parts of the world report significantly higher prevalence of primary hyperaldosteronism (PH) in hypertensives (ranging from 5 to 25%) than the previously accepted figures. There have been no data so far about the prevalence of PH in Central Europe. Therefore, we have undertaken this study to evaluate the prevalence of PH in patients with moderate to severe hypertension referred to a hypertension unit in the Czech Republic, together with the determination of the percentage of different subtypes of PH including familial forms. In addition to that, we have evaluated the prevalence of other types of secondary forms of hypertension.A total of 402 consecutive patients (230 females and 172 males) with hypertension, referred to our hypertension unit, were studied. Positive aldosterone/renin ratio (ARR, (ng/100 ml)/(ng/ml/h)) >/=50 as a more strict marker of PH was found in 87 patients (21.6%), 30% of them were normokalaemic. The diagnosis of PH was later confirmed in 77 cases (89%); the total prevalence of PH was thus 19%. PH consisted of the following forms: idiopathic hyperaldosteronism 42%, unilateral aldosterone-producing adenoma 36%, unilateral hyperplasia 7%, nonclassifiable PH (refused operation/adrenal venous sampling) 13%, familial hyperaldosteronism type 1.2%. The prevalence of other types of secondary hypertension was as follows: pheochromocytoma 5%, renovascular 4.5%, hypercortisolism 2%, renal 0.75%. In conclusion, we have noted that PH in the Central Europe region (Czech Republic) is the most frequent form of endocrine hypertension with a considerably high prevalence in moderate to severe hypertension. Application of more strict criteria raises the probability of correct diagnosis of PH including the early normokalaemic stages of PH.

Adult↗

[Unilateral autonomous aldosterone production in hyperaldosteronism suppressible by dexamethasone].

A 21-year-old woman with weight loss, palpitations and facial flush was found to have hypertension (up to 200/130 mm Hg) and mild hyperkalaemia (3.4 mmol/l). Extensive diagnostic tests revealed hyperaldosteronism with contrast storing in the right adrenal gland on scintigraphy after injection of dexamethasone (2 mg daily for one week). The hyperaldosteronism could not be suppressed by dexamethasone. Analysis of venous blood separately from each side pointed to aldosterone production in the right adrenal (right renal vein: 80 ng/dl, drainage area of the right adrenal vein: 114 ng/dl, left renal vein: too low to measure). The right adrenal gland was removed. No adenoma was found histologically. After the operation the aldosterone level was reduced and the blood pressure transiently fell. But both had risen again after 3 months. Renewed tests revealed dexamethasone-remediable hyperaldosteronism. On treatment with hydrocortisone (15-5-5 mg) and 50 mg metoprolol the patient became normotensive without any other medication.

Adrenal Cortex Hormones↗

Laparoscopic adrenalectomy for primary hyperaldosteronism: clinical experience with 60 cases.

PURPOSE: To assess the long-term outcome of patients with primary hyperaldosteronism who underwent laparoscopic adrenalectomy and to study hormone dynamics and differences between postoperative and preoperative blood pressure. PATIENTS AND METHODS: From December 1992 to February 2005, 60 patients with primary hyperaldosteronism underwent laparoscopic adrenalectomy at our institution. Their clinical and biochemical parameters were reviewed retrospectively. In 45 patients, it was possible to follow the hormone dynamics and blood pressure to compare the preoperative values with those >or=2 months after the operation. RESULTS: The average operating time was 261.7 minutes (range 95-835 minutes), and the average blood loss was 204.2 mL (range 10-3740 mL). The average time to ambulation was 1.7 days (range 1-7 days). Five patients (8.3%) had intraoperative hemorrhage that necessitated blood transfusion. Serum aldosterone in all 45 patients who were followed up was normalized postoperatively. At >or=2 months postoperatively, only 12 of the 45 patients (26.7%) needed antihypertensive drug(s). CONCLUSIONS: Laparoscopic adrenalectomy is a safe and effective way to treat primary hyperaldosteronism. Many of the patients in whom hypertension persisted postoperatively were men or elderly.

Adenoma↗

17 alpha-hydroxylase deficiency masquerading as primary hyperaldosteronism.

A unique case of 17 alpha-hydroxylase deficiency with steroid-responsive primary hyperaldosteronism is reported. Initially the patient was misdiagnosed as testicular feminization for 16 years and was thought to have typical primary hyperaldosteronism for 5 years. However, careful detailed endocrine studies showed markedly elevated progesterone, deoxycorticosterone, and 18-hydroxycorticosterone values with low levels of 17-hydroxyprogesterone, 11-deoxycortisol, testosterone, and DHEA-Sulfate. In contrast to the suppressed aldosterone levels that are found in 17 alpha-hydroxylase deficiency, this patient's aldosterone levels were inappropriately elevated before and after ACTH stimulation. Use of glucocorticoid replacement resolved the patient's symptoms and completely corrected the hypokalemia and hypertension. In summary, recognition of 17 alpha-hydroxylase deficiency with steroid-responsive primary hyperaldosteronism is important because hypertension, hypokalemia, and symptoms respond to steroid replacement.

Adrenal Hyperplasia, Congenital↗

Efficacy of an angiotensin II receptor antagonist in managing hyperaldosteronism.

OBJECTIVE: To determine whether an angiotensin II receptor antagonist decreases blood pressure in patients with hyperaldosteronism and hypertension who are taking other antihypertensive agents. DESIGN: A double-blind randomized placebo-controlled crossover study. PATIENTS AND METHODS: Blood pressure and hormonal responses to 2-week courses of placebo/irbesartan (150 mg/day given by mouth at 08.05 h) were assessed in 10 patients with hyperaldosteronism. Clinic blood pressure was measured by sphygmomanometer, and plasma concentrations of aldosterone, cortisol, angiotensin II, electrolytes and renin activity (PRA) were determined weekly. Automated 24 h ambulatory blood pressure recordings were made at the end of the active and placebo phases. RESULTS: Irbesartan caused a post-dose decrease in ambulatory blood pressure (systolic, P = 0.02; diastolic, P = 0.05) in the period from 10.00 h to 20.00 h. Clinic blood pressure, measured at trough, was not significantly decreased. Plasma aldosterone decreased (P < 0.03) and PRA increased (P < 0.04) in the first week of active treatment with irbesartan, but differences between the placebo and active-treatment groups were not significant in the second week. There were no significant changes in plasma concentrations of angiotensin II, cortisol or potassium in either week. In the second week of irbesartan treatment, there were associations between change in plasma aldosterone and maximal change in ambulatory blood pressure (systolic and diastolic). CONCLUSION: Irbesartan has a role in combination antihypertensive treatment of patients with hyperaldosteronism.

Adult↗

Unmasking of primary hyperaldosteronism by renal transplantation.

BACKGROUND: Primary hyperaldosteronism is an uncommon cause of hypertension in the general population. Given the mechanism of action of aldosterone clinical manifestations may not occur in the setting of end stage renal disease. However, if a successful renal transplant is performed clinical manifestations may occur. METHODS: We present a case of a patient with a preexisting adrenal adenoma who only presented with clinical signs of hyperaldosteronism after renal transplantation. Patients' work-up included plasma aldosterone, plasma renin activity, serum cortisol, and estimation of trans tubular potassium gradient. RESULTS: The patient's serum aldosterone was markedly elevated with a relatively suppressed plasma renin activity. Trans tubular potassium gradient was high in the presence of hypokalemia. CONCLUSION: Previously silent hyperaldosteronism may be unmasked by a successful renal transplant.

Adenoma↗

New genetic insights in familial hyperaldosteronism.

Aldosterone, the major circulating mineralocorticoid, particiates in blood volume and serum potassium homeostasis. Primary aldosteronism is a disorder characterized by hypertension and, in more severe form, hypokalemia, due to autonomous aldosterone secretion from the adrenocortical zona glomerulosa. Improved screening techniques, particularly application of the plasma aldosterone: plasma renin activity ratio, has led to renewed interest in Conn's original proposal that primary aldosteronism may be the cause of increased blood pressure in about 10% of adults with hypertension. Glucocorticoid-remediable aldosteronism (GRA) was the first described familial form of hyperaldosteronism. The disorder is characterized by aldosterone secretory function regulated chronically by ACTH. Hence, aldosterone hypersecretion can be chronically suppressed by exogenous glucocorticoids such as dexamethasone in physiologic-range doses. This autosomal dominant disorder has been shown to be caused by a hybrid gene mutation formed by a cross-over of genetic material between the ACTH-responsive regulatory portion of the 11b-hydroxylase (CYP11B1) gene and the coding region of the aldosterone synthase (CYP11B2) gene. Familial hyperaldosteronism type II (FH-II), so named to distinguish the disorder from GRA or familial hyperaldosteronism type I (FH-I), is characterized by inheritance consistent with an autosomal dominant pattern of autonomous aldosterone hypersecretion which is not suppressible by dexamethasone. Linkage analysis in a single large kindred, and direct mutation screening, has shown that this disorder is unrelated to mutations in the genes for aldosterone synthase or the angiotensin II receptor. A recent genome-wide search has identified a genetic linkage between FH-II in this single large kindred and polymorphic gene markers on chromosome 7 in a region that corresponds to cytogenetic band 7p22. This is the first identified locus for FH-II. Several possible candidate genes have been localized to the 7p22 region. The precise genetic cause of FH-II remains to be elucidated.

Adrenal Cortex Diseases↗

Primary hyperaldosteronism due to an adrenal adenoma in a 14-year-old boy.

Conn's syndrome due to an adrenal adenoma is very rare in children. This paper reports a 14-year-old boy with primary hyperaldosteronism due to an adrenal adenoma. His biochemistry data were compatible with either bilateral adrenal hyperplasia or an adrenal adenoma. A dexamethasone test did not suppress aldosterone levels. Venous catheter sampling and 75Se-selenomethylcholesterol scanning suggested that the hyperaldosteronism originated at the right adrenal. Computed tomography showed an 8-mm low-density nodule in the right adrenal gland and magnetic resonance imaging confirmed the nodule which had high signal intensity on T2-weighted images consistent with a functioning adenoma. Surgery confirmed the right adrenal adenoma, and the patient was cured by right adrenalectomy. This case illustrates the difficulty of defining the aetiology of primary hyperaldosteronism and we review the biochemical and scanning techniques available to aid in diagnosis. Hypertension is unusual in children and endocrine causes are very rare, but Conn's syndrome should always be considered in the differential diagnosis.

Adenoma↗

Renal calculi in primary hyperaldosteronism.

Increased urinary calcium (Ca++) excretion and the presence of negative Ca++ balance is well documented in primary hyperaldosteronism. However, renal calculi as a major manifestation of this disorder has not previously been described. This report describes a patient who presented with renal calculi in association with primary hyperaldosteronism. We believe that primary hyperaldosteronism was a major pathogenetic factor in the formation of renal calculi since the increased urinary excretion of Ca++ and uric acid noted at onset declined following a short-term spironolactone administration and remission from renal calculi has persisted following initial nephrolithotomy and continued spironolactone therapy, which also corrected hypertension and hypokalemia, a hallmark of this disorder.

Humans↗

Distinction between hyperaldosteronism due to bilateral hyperplasia and unilateral aldosteronoma: reliability of CT.

Hyperaldosteronism due to a unilateral adenoma must be distinguished from hyperaldosteronism due to bilateral hyperplasia to enable the proper choice between surgical treatment (for adenoma) or medical treatment (for hyperplasia). To compare the efficacy of computed tomography (CT) and adrenal venous sampling, both examinations were performed in 24 patients with primary aldosteronism. All patients with a diagnosis of adenoma based on findings at venous sampling underwent adrenalectomy. The CT-based diagnosis was unilateral aldosteronoma in 17 patients and hyperplasia in seven patients. On the basis of venous sampling, unilateral adenoma was diagnosed in 22 patients; this diagnosis was confirmed by means of unilateral adrenalectomy in 21 patients. The most common error was diagnosis of hyperplasia based on the presence of bilateral nodules on CT scans: In six of seven patients with such a diagnosis, venous sampling and subsequent surgery revealed a unilateral adenoma. In hyperaldosteronism with multiple bilateral nodules, CT cannot reliably permit distinction between hyperplasia and adenoma.

Adenoma↗

Impaired endothelium-dependent flow-mediated vasodilation in hypertensive subjects with hyperaldosteronism.

BACKGROUND: Recent studies suggest that aldosterone may impair endothelium-dependent vascular function through suppression of nitric oxide formation. Assessments of forearm blood flow or arterial compliance suggest a similar effect in humans. The present study was designed to determine whether chronic aldosterone excess in subjects with resistant hypertension impairs endothelium-dependent vascular reactivity as indexed by direct assessment of brachial artery flow-mediated dilation (FMD). METHODS AND RESULTS: Consecutive subjects (n=80) with resistant hypertension were prospectively evaluated with an early-morning ratio of plasma aldosterone to plasma renin activity and 24-hour urinary aldosterone and sodium. Changes in brachial artery diameter during reactive hyperemia were measured by high-resolution ultrasound. Hyperaldosteronism was diagnosed on the basis of a renin activity <1.0 ng x mL(-1) x h(-1), urinary aldosterone >12 microg/24 h, and urinary sodium >200 mEq/24 h. FMD was significantly lower in 36 subjects with hyperaldosteronism (1.8+/-1.3% versus 3.9+/-1.9% from baseline; P<0.0001) compared with the 44 subjects without hyperaldosteronism. FMD was negatively and significantly correlated with plasma aldosterone (r=-0.38, P=0.0006), 24-hour urinary aldosterone (r=-0.49, P<0.0001), and ratio of plasma aldosterone to plasma renin activity (r=-0.43, P<0.0001) but was independent of blood pressure, age, and body mass index. In 30 subjects, 3 months of treatment with spironolactone significantly increased FMD (2.5+/-1.7 versus 6.0+/-2.0%; P<0.0001) independently of blood pressure change. CONCLUSIONS: These data demonstrate a strong association between aldosterone excess and impaired endothelial function in human subjects as indexed by flow-mediated arterial vasodilation. These results suggest that chronic aldosteronism may have a blood pressure-independent effect on cardiovascular disease progression in subjects with resistant hypertension.

Adult↗

Elevated blood pressure linked to primary hyperaldosteronism and impaired vasodilation in BK channel-deficient mice.

BACKGROUND: Abnormally elevated blood pressure is the most prevalent risk factor for cardiovascular disease. The large-conductance, voltage- and Ca2+-dependent K+ (BK) channel has been proposed as an important effector in the control of vascular tone by linking membrane depolarization and local increases in cytosolic Ca2+ to hyperpolarizing K+ outward currents. However, the BK channel may also affect blood pressure by regulating salt and fluid homeostasis, particularly by adjusting the renin-angiotensin-aldosterone system. METHODS AND RESULTS: Here we report that deletion of the pore-forming BK channel alpha subunit leads to a significant blood pressure elevation resulting from hyperaldosteronism accompanied by decreased serum K+ levels as well as increased vascular tone in small arteries. In smooth muscle from small arteries, deletion of the BK channel leads to a depolarized membrane potential, a complete lack of membrane hyperpolarizing spontaneous K+ outward currents, and an attenuated cGMP vasorelaxation associated with a reduced suppression of Ca2+ transients by cGMP. The high level of BK channel expression observed in wild-type adrenal glomerulosa cells, together with unaltered serum renin activities and corticotropin levels in mutant mice, suggests that the hyperaldosteronism results from abnormal adrenal cortical function in BK(-/-) mice. CONCLUSIONS: These results identify previously unknown roles of BK channels in blood pressure regulation and raise the possibility that BK channel dysfunction may underlie specific forms of hyperaldosteronism.

Adrenal Cortex↗

Response of aldosterone and 18-hydroxycorticosterone to angiotensin II in normal subjects and patients with essential hypertension, Conn's syndrome, and nontumorous hyperaldosteronism.

Dose-response curves relating plasma angiotensin II (AII) concentration during AII infusion to blood pressure (BP), to plasma aldosterone, and to plasma 18-hydroxycorticosterone were compared in normal subjects and in patients with essential hypertension, Conn's syndrome, and nontumorous hyperaldosteronism. The BP response was steeper than normal in patients with Conn's syndrome and essential hypertension. Before infusion, mean plasma aldosterone concentration was approximately four-fold higher in Conn's syndrome than in the normal group, while that of 18-hydroxycorticosterone was ninefold higher. Neither increased significantly during AII infusion. In essential hypertension, both corticosteroids were within the normal range, but their responses to AII infusion were greater than normal. In the three subjects with non-tumorous hyperaldosteronism, plasma aldosterone and 18-hydroxycorticosterone concentrations were raised, and their responses to AII infusion resembled those found in essential hypertension and were different from those found in Conn's syndrome. This suggests that nontumorous hyperaldosteronism is not a variant of Conn's syndrome. In the response to AII and in other ways, it is indistinguishable from essential hypertension.

18-Hydroxycorticosterone↗

Glucocorticoid-suppressible hyperaldosteronism and adrenal tumors occurring in a single French pedigree.

Glucocorticoid-suppressible hyperaldosteronism is a dominantly inherited form of hypertension believed to be caused by the presence of a hybrid CYP11B1/CYP11B2 gene which has arisen from an unequal crossing over between the two CYP11B genes in a previous meiosis. We have studied a French pedigree with seven affected individuals in which two affected individuals also have adrenal tumors and two others have micronodular adrenal hyperplasia. One of the adrenal tumors and the surrounding adrenal tissue has been removed, giving a rare opportunity to study the regulation and action of the hybrid gene causing the disease. The hybrid CYP11B gene was demonstrated to be expressed at higher levels than either CYP11B1 or CYP11B2 in the cortex of the adrenal by RT-PCR and Northern blot analysis. In situ hybridization showed that both CYP11B1 and the hybrid gene were expressed in all three zones of the cortex. In cell culture experiments hybrid gene expression was stimulated by ACTH leading to increased production of aldosterone and the hybrid steroids characteristic of glucocorticoid-suppressible hyperaldosteronism. The genetic basis of the adrenal pathologies in this family is not known but may be related to the duplication causing the hyperaldosteronism.

Adrenal Gland Neoplasms↗

The use of aldosterone-renin ratio as a diagnostic test for primary hyperaldosteronism and its test characteristics under different conditions of blood sampling.

Recent reviews recommended the use of the aldosterone/renin ratio (ARR) to screen for primary hyperaldosteronism. However, widely different cutoff levels have been proposed, and test characteristics of ARR under different conditions of sampling are not known. We conducted a retrospective review among 45 subjects with carefully validated diagnoses of primary hyperaldosteronism and 17 subjects with essential hypertension to study the utility of ARR. Sixty-two patients with 75 sets of plasma renin activity (PRA), aldosterone, and ARR values from a postural study and 48 sets of values from a saline suppression test were analyzed. Ninety-four percent of these subjects underwent investigations because of hypokalemic hypertension.ARR yielded larger areas under the curve in the receiver-operating-characteristics curve than PRA or aldosterone under all conditions of testing. Our results confirmed the superiority of ARR to either aldosterone or PRA alone as a diagnostic test for primary hyperaldosteronism.ARR cutoff levels were significantly affected by the condition of testing. Depending on posture and time of day, it varied from 13.1-35.0 ng/dl per ng/ml.h in our study population. When using ARR for screening primary hyperaldosteronism, posture and time of sampling should be standardized both within and between centers to minimize variability in cutoff levels.

Adult↗

Effect of bromocriptine treatment on the aldosterone response to angiotensin II and adrenocorticotropin in idiopathic hyperaldosteronism.

Bromocriptine can prevent an increase in plasma aldosterone during the infusion of angiotensin II in normal subjects and during upright posture in some patients with idiopathic hyperaldosteronism. To determine if bromocriptine prevents the increase in plasma aldosterone concentration during angiotensin II infusion in idiopathic hyperaldosteronism, we infused angiotensin II in five patients with idiopathic hyperaldosteronism, before and after treatment with bromocriptine (2.5 mg, three times daily for 5 days), and measured the resulting plasma aldosterone and angiotensin II concentrations. We also determined the adrenal response to ACTH infusion before and after bromocriptine treatment in four of these patients. Bromocriptine treatment did not significantly change the plasma concentrations of aldosterone before or during the infusions of angiotensin II and ACTH. It did significantly decrease mean blood pressure and increase the plasma corticosteroid concentrations in the preinfusion periods, but it did not alter the response of blood pressure to angiotensin II or of plasma corticosteroid concentrations to the ACTH infusions.

Adrenal Cortex Hormones↗

Familial hyperaldosteronism type II: description of a large kindred and exclusion of the aldosterone synthase (CYP11B2) gene.

Familial hyperaldosteronism type II (FH-II) is characterized by autosomal dominant inheritance and hypersecretion of aldosterone due to adrenocortical hyperplasia or an aldosterone-producing adenoma; unlike FH type I (FH-I), hyperaldosteronism in FH-II is not suppressible by dexamethasone. Of a total of 17 FH-II families with 44 affected members, we studied a large kindred with 7 affected members that was informative for linkage analysis. Family members were screened with the aldosterone/PRA ratio test; patients with aldosterone/PRA ratio greater than 25 underwent fludrocortisone/salt suppression testing for confirmation of autonomous aldosterone secretion. Postural testing, adrenal gland imaging, and adrenal venous sampling were also performed. Individuals affected by FH-II demonstrated lack of suppression of plasma A levels after 4 days of dexamethasone treatment (0.5 mg every 6 h). All patients had negative genetic testing for the defect associated with FH-I, the CYP11B1/CYP11B2 hybrid gene. Genetic linkage was then examined between FH-II and aldosterone synthase (the CYP11B2 gene) on chromosome 8q. A polyadenylase repeat within the 5'-region of the CYP11B2 gene and 9 other markers covering an approximately 80-centimorgan area on chromosome 8q21-8qtel were genotyped and analyzed for linkage. Two-point logarithm of odds scores were negative and ranged from -12.6 for the CYP11B2 polymorphic marker to -0.98 for the D8S527 marker at a recombination distance (theta) of 0. Multipoint logarithm of odds score analysis confirmed the exclusion of the chromosome 8q21-8qtel area as a region harboring the candidate gene for FH-II in this family. We conclude that FH-II shares autosomal dominant inheritance and hyperaldosteronism with FH-I, but, as demonstrated by the large kindred investigated in this report, it is clinically and genetically distinct. Linkage analysis demonstrated that the CYP11B2 gene is not responsible for FH-II in this family; furthermore, chromosome 8q21-8qtel most likely does not harbor the genetic defect in this kindred.

Aldosterone↗

Biochemical evidence of aldosterone overproduction and abnormal regulation in normotensive individuals with familial hyperaldosteronism type I.

We examined in detail biochemical characteristics of 10 normotensive individuals (6 females; age range, 11-43 yr) with glucocorticoid-suppressible hyperaldosteronism (familial hyperaldosteronism type I) in an attempt to understand the development of hypertension in this disorder. All were normokalemic (median plasma potassium, 3.7 +/- 0.4 mmol/L SD), and upright plasma aldosterone levels (478 +/- 333 pmol/L) were within the normal range (140-1110 pmol/L) in nine subjects. However, upright PRA levels (3.3 +/- 30.5 pmol/L x min) were suppressed (<13 pmol/L x min), and the aldosterone to PRA ratio (169.0 +/- 308.3) was elevated (>65) in all but one subject. All subjects had elevated 24-h urinary levels of 18-oxo-cortisol (34.3 +/- 11.2 nmol/mmol creatinine; normal range, 0.8-6.5 nmol/mmol creatinine). Plasma aldosterone failed to rise by at least 50% during 2 h of upright posture in five of seven subjects, or during a 1-h infusion of angiotensin II (2 ng/kg x min) in each of six subjects so studied. Serial, second-hourly (day-curve) aldosterone levels correlated tightly with cortisol (r = 0.79-0.97, P < 0.01 to 0.001), but not with PRA (r = 0.13-0.40, not significant) levels in each of six subjects, and plasma aldosterone suppressed to less than 110 pmol/L during 4 days of dexamethasone administration (0.5 mg 6 hourly) in each of two studied, consistent with ACTH-regulated aldosterone production. In conclusion, biochemical evidence of excessive, abnormally regulated aldosterone production is present not only in hypertensive individuals with familial hyperaldosteronism type I, but also in those who are normotensive. The absence of hypertension in such individuals, therefore, cannot be attributed to lack of biochemical expression of the hybrid gene.

Adolescent↗