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Plasma immunoreactive proopiolipomelanocortin-derived peptides in patients with primary hyperaldosteronism, idiopathic hyperaldosteronism with bilateral adrenal hyperplasia, and dexamethasone-suppressible hyperaldosteronism.

Immunoreactive plasma levels of the proopiolipomelanocortin-derived peptides, ACTH, beta-endorphin-lipotropin, and gamma 3MSH, were measured in patients with primary hyperaldosteronism, idiopathic hyperaldosteronism with bilateral adrenal hyperplasia, and dexamethasone-suppressible hyperaldosteronism. Plasma peptide concentrations in patient groups were not different from those in normal controls. Removal of aldosterone-producing adenomas in three patients and of an aldosterone-producing adrenocortical carcinoma in one patient did not affect plasma peptide concentrations. Furthermore, infusion of the opiate antagonist naloxone (0.2 mg/min) in one patient with bilateral adrenal hyperplasia had no effect on either plasma aldosterone or cortisol. These results suggest that the proopiolipomelanocortin-derived peptides are not overproduced in states of hyperaldosteronism.

Adenoma↗

Arterial blood pressure and plasma and body electrolytes in idiopathic hyperaldosteronism: a comparison with primary hyperaldosteronism (Conn's syndrome) and essential hypertension.

Exchangeable and plasma electrolytes, blood pressure and aldosterone were measured in groups of patients with idiopathic hyperaldosteronism, primary hyperaldosteronism and essential hypertension and in normal subjects. In idiopathic hyperaldosteronism exchangeable sodium was higher than in both essential hypertensive and normal groups but lower than in primary hyperaldosteronism. Plasma sodium results were similar except that no difference existed between the two forms of hyperaldosteronism. Plasma potassium concentration was lower in idiopathic hyperaldosteronism than in either essential hypertensive or in normal groups, but higher than in primary hyperaldosteronism. Blood pressure correlated with age in all groups and with exchangeable sodium in hypertensive patients. This was also the case with exchangeable sodium:exchangeable potassium ratio, but blood pressure did not correlate with aldosterone in any group. In idiopathic hyperaldosteronism, as in essential hypertension, sodium and blood pressure correlated strongly in male and weakly in female patients. The analysis reveals important differences between idiopathic and primary hyperaldosteronism and also between idiopathic hyperaldosteronism and essential hypertension.

Adult↗

Renal abnormalities and vascular complications in primary hyperaldosteronism. Evidence on tertiary hyperaldosteronism.

The frequency of underlying renal or renal artery disease, and the incidence of vascular complications were reviewed in a series of 136 cases of primary hyperaldosteronism. This was in order to investigate the possible existence of 'tertiary' hyperaldosteronism, and to examine the commonly held view that primary hyperaldosteronism is a relatively benign form of hypertension. Ten cases (7-4 per cent) had evidence of renal artery stenosis and eleven (8-1 per cent) parenchymatous renal disease. In comparison with the reported frequency in large general series of hypertensives, these data show no evidence of an excess of underlying renal disease. It is unlikely, therefore, that autonomous aldosterone secreting adenomata occur commonly as a consequence of prolonged secondary hyperaldosteronism. Four cases (2-9 per cent) had evidence of the malignant-phase of hypertension, and over a mean observation time of 5-9 years, 31 cases (22-8 per cent) developed 39 vascular complications. It appears, therefore, that vascular complications are not rare in primary hyperaldosteronism, and early and effective treatment is thus necessary.

Adenoma↗

Differing effects of metoclopramide and adrenocorticotropin on plasma aldosterone levels in glucocorticoid-suppressible hyperaldosteronism and other forms of hyperaldosteronism.

To investigate possible dopaminergic effects on aldosterone production, we administered the dopamine antagonist metoclopramide to 11 normal subjects, 8 patients with primary aldosteronism due to adenoma or hyperplasia, and 5 other patients with the glucocorticoid-suppressible form of hyperaldosteronism (GSH). All subjects except for those with GSH responded to metoclopramide with an increase in plasma aldosterone concentration even when endogenous ACTH was suppressed by dexamethasone pretreatment. This increase occurred without apparent mediation of other recognized stimuli for aldosterone secretion. In contrast, the patients with GSH failed to show any aldosterone response while receiving dexamethasone, but demonstrated a rise in plasma aldosterone concentration when dexamethasone was withheld. The responses in the patients with both forms of primary aldosteronism were greater in magnitude than in the normal subjects or in the subjects with GSH when not receiving dexamethasone. These studies, while demonstrating differences between the subtypes of hyperaldosteronism in their responsiveness to metoclopramide, indicate that ACTH or some other factor may exert a permissive effect in GSH for the aldosterone response to metoclopramide. A graded infusion of ACTH revealed a greater aldosterone response in GSH compared to that in the other groups, further suggesting the importance of ACTH in this disorder.

Adrenocorticotropic Hormone↗

Primary hyperaldosteronism.

Primary hyperaldosteronism is an important cause of hypertension. Its true prevalence is still a matter of debate, since about 10% of hypertensives may have underlying hyperaldosteronism. Primary hyperaldosteronism is due to aldosterone-secreting tumours, bilateral adrenal hyperplasia or, rarely, adrenal carcinoma or genetic causes. There is considerable debate over the optimal screening methods for detecting hyperaldosteronism. The patients who benefit the most from screening are young hypertensives, those with resistant hypertension and patients with serum potassium of less than 3.5 mmol/L, especially in the presence of a high sodium. Various tests are available for screening patients with hypertension for hyperaldosteronism. Serum potassium is an unreliable marker for hyperaldosteronism, although a low value in a patient not taking diuretics should make one suspect the diagnosis. The use of serum potassium as a screening test would miss about a third of cases. Determination of the ratio of plasma aldosterone concentration to plasma renin activity is widely accepted as the test of choice for screening. Tests such as diurnal variations in aldosterone concentration and response to angiotensin II help to demonstrate the autonomy of the aldosterone secretion. Once the diagnosis of hyperaldosteronism is made, further tests such as magnetic resonance imaging or computed tomographic scanning and adrenal vein sampling should be undertaken to determine the aetiology of the hyperaldosteronism. Depending on the findings and the lateralization of the lesion, either surgery or medical therapy may be advised for the patient. Spironolactone would be the drug of choice for medical treatment. Laparoscopic adrenalectomy has become a widely employed method of surgically removing adrenal tumours. Hyperaldosteronism represents one of the few treatable causes of hypertension and a systematic approach is therefore needed to ensure that the few patients with an aldosterone-secreting adrenal adenoma are identified. It is important to identify these patients so that only those patients with proven adenomas are referred for adrenalectomy.

Humans↗

Left ventricular mass in hereditary human hypertension: glucocorticoid-suppressible hyperaldosteronism.

BACKGROUND: The mineralocorticoid hormone aldosterone may be an important mediator of pathological ventricular hypertrophy and heart failure. Much of the evidence for this arises from experimental work in rat models of mineralocorticoid-dependent hypertension, and a pathological role in humans is still uncertain. SUBJECTS: Eleven subjects with glucocorticoid-suppressible hyperaldosteronism, a hereditary form of hyperaldosteronism and hypertension, and 10 age- and sex-matched control subjects were studied. RESULTS: The subjects with glucocorticoid-suppressible hyperaldosteronism had a higher mean blood pressure and plasma aldosterone concentration, and lower plasma renin concentration, than the control subjects. Left ventricular mass index was not significantly different in the subjects with glucocorticoid-suppressible hyperaldosteronism than in the control subjects. When the subjects with glucocorticoid-suppressible hyperaldosteronism were subdivided into those with and those without hypertension, no difference in left ventricular mass index could be detected between the subgroups or between either subgroup and the control subjects. However, there was a significant correlation between basal plasma aldosterone and left ventricular mass index in the subjects with glucocorticoid-suppressible hyperaldosteronism (r = 0.66, P < 0.03). CONCLUSIONS: Despite marked elevations in plasma aldosterone concentrations from birth in subjects with glucocorticoid-suppressible hyperaldosteronism, left ventricular hypertrophy did not occur. The degree of hyperaldosteronism in the subjects was mild compared with other conditions and, although an effect on left ventricular mass index could be detected, the present results indicate that other factors may be necessary for the development of left ventricular hypertrophy.

Adolescent↗

Aldo is back: recent advances and unresolved controversies in hyperaldosteronism.

PURPOSE OF REVIEW: Hyperaldosteronism in its various forms is a recognized secondary cause of hypertension, yet the frequency of these disorders and the appropriate evaluation of suspected patients remain controversial. This review will summarize recent literature concerning the frequency of hyperaldosteronism in the hypertensive population, insight from uncommon forms of hyperaldosteronism, and new developments in the diagnosis and treatment of this condition. RECENT FINDINGS: Several series report that around 10% of hypertensive patients have some form of hyperaldosteronism, but aldosterone-producing adenomas are rare. Diagnostic criteria for idiopathic hyperaldosteronism remain controversial, as is the wisdom of widespread screening. Patients with even mild hyperaldosteronism, however, which could be a continuum with low-renin hypertension, may respond exceptionally well to mineralocorticoid antagonism. Eplerenone, a new mineralocorticoid receptor antagonist without antiandrogen side effects, has been an effective antihypertensive in clinical trials and appears to be particularly suitable for low-renin hypertensives. Accumulating evidence suggests that aldosterone excess is cardiotoxic and nephrotoxic, suggesting that mineralocorticoid blockade has specific benefits beyond blood pressure reduction. For patients with severe, confirmed hyperaldosteronism, selective adrenal vein sampling is the only reliable method for determining the source of the aldosterone. SUMMARY: Hyperaldosteronism, when defined with liberal criteria, could account for a substantial portion of hypertension. Few of these patients will harbor adrenal adenomas, but those with severe hypertension and hypokalemia often require adrenal vein sampling to direct surgery. With more precise diagnostic strategies, better treatments, and evolving evidence of pathological consequences of aldosterone excess, subtle disorders of aldosterone excess demand precise definition and specific treatment.

Eplerenone↗

Primary hyperaldosteronism without suppressed renin due to secondary hypertensive kidney damage.

Primary hyperaldosteronism is characterized by high plasma and urinary aldosterone and suppressed PRA. Renin suppression is due to aldosterone-dependent sodium retention and mild extracellular volume expansion. We observed three patients with primary hyperaldosteronism, severe refractory hypertension, and normal to high normal PRA levels whose aldosterone/renin ratios were still elevated because of disproportionately high aldosterone levels. All available medical data on the patients as well as publications on the aldosterone/renin relationship in primary hyperaldosteronism were reviewed to explain the unusual findings. In one patient, histologically proven renal arteriolosclerosis was the probable cause of the escape of PRA from suppression by an aldosterone-producing adenoma. In the other two patients, hypertensive kidney damage due to primary hyperaldosteronism was the most likely explanation for the inappropriately high PRA, as in patient 1. All patients had high normal or slightly elevated serum creatinine levels and responded to 200 mg spironolactone/day with increased serum creatinine and hyperkalemia. Hyperkalemia was probably due to a decreased filtered load of sodium and a spironolactone-induced decrease in mineralocorticoid function. Two patients were cured of hyperaldosteronism by unilateral adrenalectomy but still need some antihypertensive therapy, whereas one patient has probable bilateral adrenal disease, with normal blood pressure on a low dose of spironolactone. In patients with severe hypertension due to primary hyperaldosteronism, PRA can escape suppression if hypertensive kidney damage supervenes. An increased aldosterone/PRA ratio is still useful in screening for primary hyperaldosteronism. These patients may respond to spironolactone therapy with a strong increase in serum creatinine and potassium. Early specific treatment of primary hyperaldosteronism is therefore indicated, and even a patient with advanced hypertension will profit from adrenalectomy or cautious spironolactone treatment.

Aldosterone↗

The therapeutic use of a new potassium-sparing diuretic, amiloride, and a converting enzyme inhibitor, MK-421, in preventing hypokalemia associated with primary and secondary hyperaldosteronism.

This presentation is a summary of our recent clinical studies on the therapeutic use of a new potassium-sparing diuretic, amiloride, and a converting enzyme inhibitor, MK-421, in preventing hypokalemia associated with primary and secondary hyperaldosteronism. These drugs are quite different in their physiologic action but they both may be effective in preventing the potassium depletion associated with increased aldosterone production. Amiloride, which blocks the sodium channels in distal renal tubular cells, was administered to 10 patients with primary hyperaldosteronism and five patients with Bartter's syndrome (secondary hyperaldosteronism). Amiloride, at doses of 10-40 mg/day, increased mean plasma potassium levels in both primary hyperaldosteronism (3.2-4.5 mEq/L) and, to a lesser extent, in Bartter's syndrome (2.5-3.6 mEq/L). The blood pressure fell slightly but significantly in primary hyperaldosteronism (171/112 vs 150/97 mm Hg) and remained unchanged in Bartter's syndrome (116/80 vs 117/71 mm Hg). The plasma renin activity and plasma aldosterone rose in primary aldosteronism (PRA 0.39-2.21 ng A1/m1/h and PA 28.4-54.3 ng/d1); but in Bartter's syndrome, the PRA declined (25.3-11.9 ng A1/m1/h) and the PA rose (19.5-38.0 ng/d1). The discrepancy in the PRA between primary aldosteronism and Bartter's syndrome may be due to the effects of potassium repletion on suppressing renin and stimulating aldosterone; while in primary aldosteronism, a mild diuretic effect could explain the rise in PRA. In both of these disorders, despite the rise in plasma potassium levels, amiloride produced a counter-therapeutic rise in PA which could potentiate further potassium losses. Therefore, we undertook a study to evaluate the prevention of diuretic-induced hypokalemia and secondary hyperaldosteronism using a new converting enzyme inhibitor, MK-421. Eighteen normal subjects were randomized into three groups receiving either (1) hydrochlorothiazide alone (50 mg/day), (2) MK-421 alone (10 mg/day), or (3) hydrochlorothiazide (50 mg/day) plus MK-421 (10 mg/day). Although MK-421 did not prevent diuretic-induced hypokalemia or hyperaldosteronism in the first week, after that time hypokalemia was reversed and ASR returned to normal. In these studies, it therefore appears that while potassium-sparing diuretics may remain the medical mainstay in treating primary aldosteronism, new converting enzyme inhibitors such as MK-421 may be more effective in treating secondary hyperaldosteronism, since potassium levels can be normalized without increasing aldosterone secretion.

Adult↗

[High prevalence of undiagnosed primary hyperaldosteronism among patients with essential hypertension].

BACKGROUND: Classically, primary hyperaldosteronism was diagnosed in no more than 1% of patients with hypertension, when hypokalemia was used as the screening test. However, numerous patients with primary hyperaldosteronism do not have hypokalemia and the disease remains undiagnosed. AIM: To assess the prevalence of normokalemic primary hyperaldosteronism among patients classified as having essential hypertension. PATIENTS AND METHODS: One hundred hypertensive patients with a blood pressure over 145/95 were studied. Plasma aldosterone and plasma renin activity were measured in all. A primary hyperaldosteronism was diagnosed when high aldosterone levels (over 16 ng/dl) and low plasma renin activity (below 0.5 ng/ml/h) coexisted in two blood tests or the aldosterone/plasma renin activity ratio was over 50. A probable primary hyperaldosteronism was diagnosed when the ratio was between 25 and 50 and these patients were subjected to a Fludrocortisone test to confirm the diagnosis. A dexametasone suppression test was done to discard glucocorticoid remediable aldosteronism. An adrenal TAC scan was done to all patients with primary hyperaldosteronism. RESULTS: A diagnosis of primary hyperaldosteronism was reached in ten patients. Seven had elevated aldosterone and low plasma renin activity. In three the diagnosis was confirmed with the fludrocortisone test. All ten patients had normal serum potassium levels. Dexametasone suppression test was positive in three patients, that normalized their blood pressure levels. Adrenal TAC scans showed an adenoma in one patient and hyperplasia in another. CONCLUSIONS: Primary hyperaldosteronism is more frequent than previously thought, it is overlooked when hypokalemia is used as the screening test and it can only be diagnosed measuring plasma aldosterone and renin activity.

Aldosterone↗

Primary hyperaldosteronism, a mediator of progressive renal disease in cats.

In recent years, there has been renewed interest in primary hyperaldosteronism, particularly because of its possible role in the progression of kidney disease. While most studies have concerned humans and experimental animal models, we here report on the occurrence of a spontaneous form of (non-tumorous) primary hyperaldosteronism in cats. At presentation, the main physical features of 11 elderly cats were hypokalemic paroxysmal flaccid paresis and loss of vision due to retinal detachment with hemorrhages. Primary hyperaldosteronism was diagnosed on the basis of plasma concentrations of aldosterone (PAC) and plasma renin activity (PRA), and the calculation of the PAC:PRA ratio. In all animals, PACs were at the upper end or higher than the reference range. The PRAs were at the lower end of the reference range, and the PAC:PRA ratios exceeded the reference range. Diagnostic imaging by ultrasonography and computed tomography revealed no or only very minor changes in the adrenals compatible with nodular hyperplasia. Adrenal gland histopathology revealed extensive micronodular hyperplasia extending from zona glomerulosa into the zona fasciculata and reticularis. In three cats, plasma urea and creatinine concentrations were normal when hyperaldosteronism was diagnosed but thereafter increased to above the upper limit of the respective reference range. In the other eight cats, urea and creatinine concentrations were raised at first examination and gradually further increased. Even in end-stage renal insufficiency, there was a tendency to hypophosphatemia rather than to hyperphosphatemia. The histopathological changes in the kidneys mimicked those of humans with hyperaldosteronism: hyaline arteriolar sclerosis, glomerular sclerosis, tubular atrophy and interstitial fibrosis. The non-tumorous form of primary hyperaldosteronism in cats has many similarities with "idiopathic" primary hyperaldosteronism in humans. The condition is associated with progressive renal disease, which may in part be due to the often incompletely suppressed plasma renin activity.

Adrenal Glands↗

Primary hyperaldosteronism: a frequent cause of residual hypertension after successful endovascular treatment of renal artery disease.

BACKGROUND: Poor blood pressure control in renal artery disease patients after percutaneous renal angioplasty (PTRA), with or without stenting (PTRAS), may be due to pre-existing hypertension. Primary hyperaldosteronism is much more frequent than was previously suspected. We hypothesized that residual hypertension observed in some renal artery disease patients after technically successful endovascular treatment may be due to primary hyperaldosteronism. METHODS: Only patients free of significant residual artery stenosis were included in the study. Aldosterone and renin were measured in 52 renal artery disease patients (8 with fibrodysplastic and 44 with atherosclerotic lesions), in whom successful PTRA/PTRAS had been performed previously. An aldosterone-to-renin ratio > or = 23 pg/ml per pg/ml was considered as the cut-off value for performing tests to confirm the diagnosis of primary hyperaldosteronism. RESULTS: Residual hypertension (blood pressure > or = 160/90 mmHg) was observed in 24/52 patients (46%) after revascularization. A raised aldosterone-to-renin ratio was found in nine subjects (17.3%), eight of whom had poor blood pressure control (33% of patients with residual hypertension). A diagnosis of primary hyperaldosteronism was confirmed in seven patients (four atherosclerotic, three fibrodysplastic). All fibrodysplastic subjects with unresponsive blood pressure after PTRA were affected by primary hyperaldosteronism. Primary hyperaldosteronism was confirmed in 9% (4/44) of the atherosclerotic patients (19% of subjects with residual hypertension). No specific clinical features were associated with the subsequent blood pressure control. CONCLUSIONS: Primary hyperaldosteronism is a frequently neglected cause of residual hypertension despite technically successful endovascular treatment of renal artery disease.

Aged↗

Hyperaldosteronism among black and white subjects with resistant hypertension.

Recent reports suggesting that the prevalence of primary hyperaldosteronism may be higher than historically thought have relied on an elevated plasma aldosterone concentration/plasma renin activity ratio to either diagnose or identify subjects at high risk of having primary hyperaldosteronism and have not included suppression testing of all evaluated subjects. In this prospective study of 88 consecutive patients referred to a university clinic for resistant hypertension, we determined the 24-hour urinary aldosterone excretion during high dietary salt ingestion, baseline plasma renin activity, and plasma aldosterone in all subjects. Primary hyperaldosteronism was confirmed if plasma renin activity was <1.0 ng/mL per hour and urinary aldosterone was >12 microg/24-hour during high urinary sodium excretion (>200 mEq/24-hour). Eighteen subjects (20%) were confirmed to have primary hyperaldosteronism. The prevalence of hyperaldosteronism was similar in black and white subjects. Of the 14 subjects with confirmed hyperaldosteronism who have been treated with spironolactone, all have manifested a significant reduction in blood pressure. In this population, an elevated plasma aldosterone/plasma renin activity ratio (>20) had a sensitivity of 89% and a specificity of 71% with a corresponding positive predictive value of 44% and a negative predictive value of 96%. These data provide strong evidence that hyperaldosteronism is a common cause of resistant hypertension in black and white subjects. The accuracy of these results is strengthened by having done suppression testing of all evaluated subjects.

Adult↗

[Does the captopril test improve the diagnosis of primary hyperaldosteronism?].

Plasma concentrations of renin and aldosterone were measured before and 60 min after taking 25 mg captopril in 242 patients with arterial hypertension (124 men, 118 women, aged 51.9 +/- 12.7 years; unilateral aldosterone-producing adrenal adenoma in 8, idiopathic hyperaldosteronism in 16 and essential hypertension in 189). Basal plasma aldosterone levels were twice as high in those with adenoma or hyperaldosteronism (216.9 +/- 99.1 pg/ml and 256 +/- 123 pg/ml, respectively) as in those with essential hypertension (117.7 +/- 115 pg/ml). Basal renin levels in adenoma and idiopathic hyperaldosteronism (1 +/- 0.8 microU/ml and 2.6 +/- 1.9 microU/ml, respectively) were decreased compared with those in essential hypertension (13.1 +/- 14.2 microU/ml). The basal aldosterone/renin ratio was higher in adenoma (436 +/- 370 pg/microU) and idiopathic hyperaldosteronism (615 +/- 950 pg/microU) than in essential hypertension (52.9 +/- 151.3 pg/microU). The sensitivity of this ratio in combination with the aldosterone concentration was 100% for recognizing an adrenal adenoma, its specificity 92.7%. The mean plasma aldosterone level after captopril administration did not change in adenoma patients, but fell to 162 +/- 85 pg/ml (P less than 0.001) in those with idiopathic hyperaldosteronism. These data indicate that the captopril test contributes to distinguishing primary from idiopathic hyperaldosteronism.

Adenoma↗

Idiopathic hyperaldosteronism. A possible role for aldosterone-stimulating factor.

To test the hypothesis that idiopathic hyperaldosteronism is secondary to increased adrenal stimulation by aldosterone-stimulating factor, we measured the latter in seven patients with idiopathic hyperaldosteronism and in four patients who had undergone surgical removal of an aldosterone-producing adenoma. In the patients with hyperaldosteronism, plasma aldosterone concentrations (mean +/- 1 S.E.) were 38 +/- 10 and 78 +/- 19 ng per deciliter in the supine and upright position, respectively (P less than 0.01). Supine plasma aldosterone-stimulating factor was 81 +/- 5 ng per deciliter in 15 normal subjects and 185 +/- 10 (P less than 0.01) in the patients with idiopathic hyperaldosteronism. After removal of an aldosterone-producing adenoma, plasma aldosterone-stimulating factor was normal. The supine value in each patient with idiopathic hyperaldosteronism was above the normal range (61 to 91 ng per deciliter) and increased to 290 +/- 59 ng per deciliter after four hours of upright posture. Twenty-four hour urinary excretion of aldosterone-stimulating factor was 424 +/- 35 ng (normal, 145 +/- 3; P less than 0.01) by affinity chromatography and high-pressure liquid chromatography, and it was not suppressed after two days of treatment with dexamethasone (0.5 mg orally every six hours). At the end of 48 hours, plasma concentrations were 248 +/- 40 ng per deciliter. Plasma cortisol and ACTH concentrations were under 2 micrograms per deciliter and under 40 pg per milliliter, respectively. We conclude that increased secretion of aldosterone-stimulating factor may be the cause of idiopathic hyperaldosteronism.

Adenoma↗