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Improvement of growth hormone response to stimulation in primary aldosteronism with correction of potassium deficiency.

Potassium depletion frequently occurs in primary aldosteronism and has been implicated as the cause of the impaired carbohydrate tolerance frequently associated with this syndrome. Glucose, insulin, and growth hormone regulation were studied in a 42-yr-old, male patient with an aldosterone-secreting adenoma when the patient was potassium-depleted and again after potassium repletion. Potassium repletion was documented by serial body potassium measurements, with an increase in body potassium from 2400 mEq to 2850 mEq after 400 mg spironolactone and 80 mEq supplemental potassium chloride were administered daily for 7 days. Potassium repletion resulted in improvement of the patient's glucose tolerance test, with a decrease in the peak glucose level from 184 mg/100ml to 130 mg/100ml and an increase in the peak insulin level from 46 muU/ml to 85 muU/ml. Intravenous administration of arginine resulted in a subnormal insulin response of 28 muU/ml in the base-line test and an increase to 59 muU/ml after potassium stores were repleted. Growth hormone response to arginine infusion was also initially minimal at 12.5 ng/ml, increasing markedly to 26 ng/ml after potassium replenishment. Insulin-induced hypoglycemia resulted in a depressed growth hormone response of 8 ng/ml when the patient was potassium-deficient, but a normal response of 30 ng/ml after potassium repletion. These observations demonstrate that impairment of both insulin and growth hormone responses to stimulation occur in primary aldosteronism with potassium depletion. These abnormalities may be reversed by potassium repletion.

Adenoma

Reduced hepatic fatty-acid synthesis and lowered plasma triacylglycerol (TG) in potassium deficient rats.

Potassium deficiency was induced in rats by feeding a potassium- free synthetic diet containing 5% Resonium A. Feeding this diet for 1 week resulted in a decrease of plasma potassium by about 50% vs. pair fed controls. In hypokalemic rats hepatic fatty-acid synthesis and TG secretion by the liver were significantly reduced. In contrast the removal of an intravenous lipid load occurred optimally under this condition. As a consequence plasma TG levels were reduced in potassium-deficient rats.

Animals

Morphologic abnormalities in potassium-deficient dogs.

Potassium deficiency was produced in 16 dogs by means of a diet containing less than 0.03% potassium. Decreases in serum potassium were first observed after 3 weeks. Morphologic changes occurred only in heart, skeletal muscle, and kidney. Focal myocardial necrosis was observed in 6 of 16 deficient dogs, and skeletal muscle degeneration and necrosis were observed in 14 of 16 deficient dogs. A complex nephropathy consisting primarily of epithelial hypertrophy and hyperplasia in the collecting tubules of the inner stripe of the outer medulla occurred in all the deficient dogs.

Animals

Urinary excretion of prostaglandin E2 and prostaglandin F2alpha in potassium-deficient rats.

Potassium-deficiency was induced in rats by dietary deprivation of potassium. The animals became polyuric and urine osmolality decreased more then three-fold compared to controls. Urinary excretion of prostaglandin E2 (PGE2) and prostaglandin F2alpha (PGF2alpha) did not increase during 2 weeks of potassium depletion. Partial inhibition of renal prostaglandin synthesis by meclofenamate did not increase the urine osmolality after water deprivation. These results make unlikely the hypothesis that the polyuria of potassium-deficiency, is the result of enhanced renal synthesis of prostaglandins with subsequent antagonism of the hydro-osmotic effect of vasopressin. Male animals consistently excreted less PGE2 than female animals.

Animals

Influence of glycosides on myocardial potassium and sodium concentration in acute and chronic potassium deficiency.

The analytical assay of intracellular potassium ([Ki]) and sodium ([Nai]) concentration of guinea pig papillary muscle measured in in vitro experiments shows that: 1) 5 X 10(-7) M g-strophanthin causes a decrease of [Ki] under control conditions, in acute as well as in chronic potassium deficiency, 2) a more marked glycoside effect is seen when the extracellular potassium concentration is reduced from 4.7 to 2mEq/1; this finding, therefore, is in good agreement with the observation that glucoside binding to its receptor at the cellular membrane is enhanced when potassium concentration is decreased, 3) whereas in chronic potassium deficiency normal [Ki] and [Nai] are maintained, acute potassium deficiency is accompanied by a loss of cellular K and gain of cellular Na. Under the influence of cardioactive glycosides, in chronic potassium depletion higher intracellular potassium and lower intracellular sodium concentrations are maintained than in acute potassium depletion. It is supposed tha t the net changes which are caused by a reduction of [Ke] in acute potassium deficiency in contrast to chronical potassium deficiency predispose to glycoside toxicity. These changes may therefore be the cause of the clinical observation that acute hypokalemia is associated with a greater glycoside sensitivity than chronic potassium deficiency.

Acute Disease

Phosphorus metabolism in potassium-deficient rats.

Hypophosphatemia as a consequence of potassium deficiency has been reported sporadically. Most cases have been complicated by other factors which might lead to decreased serum phosphorus levels. Therefore, the serum phosphorus in this study was measured in Sprague-Dawley rats with nutritionally induced potassium deficiency. Severe potassium depletion was manifested by hypokalemia (2.4 mEq/liter versus 3.9 mEq/liter in controls) and decreased muscle potassium content. Statistically significant hypophosphatemia did not develop, although decreased muscle phosphorus content was observed. Therefore, hypophosphatemia is not a regular accompaniment of severe potassium deficiency in the rat.

Animals

The hemodynamic effects of potassium deficiency in the dog.

Potassium deficiency for 3 weeks in dogs caused 374 +/- 38 mEq of sodium retention with increase in body weight, plasma volume, and inulin space. Cardiac output increased from 3.7 +/- 0.6 to 5 +/- 0.6 liters/min (P less than 0.02) and systemic vascular resistance decreased from 3,050 +/- 590 to 2,000 +/- 286 dynes/cm per sec2 (P less than 0.05). Plasma renin activity (PRA) increased from 0.4 +/- 0.1 to 17.2 +/- 0.9 ng/ml per hour (P less than 0.01) without change in plasma aldosterone. Angiotensin sensitivity decreased from a rise of 37 +/- 4 mm Hg in mean arterial pressure (MAP) to 10 ng/kg per min before potassium depletion to a rise of 10 +/- 2 mm Hg after hypokalemia. Urinary prostaglandin E (PGE) excretion increased from control values of 1,224 to 1,556 ng/day to 9,352 +/- 3,670 after 21 days of hypokalemia (P less than 0.01). Indomethacin, 150 mg a day for 3 days, decreased urinary PGE to control values as PRA decreased from 17.2 +/- 5.9 to 1.1 +/- .3 ng/ml per hour and angiotensin sensitivity was partially restored. These findings indicate that hypokalemia increased urinary PGE with extracellular fluid volume expansion, decreased sensitivity to angiotensin and increase in PRA.

Angiotensin II

[The calcium metabolism of myocardial mitochondria and sarcoplasmic reticulum in experimental potassium deficiency (author's transl)].

Mechanical Parameters of the whole, Langendorff-perfused cat heart and of isolated right ventricular papillary muscles are depressed in chronic potassium deficiency. 45Ca binding of sarcoplasmic reticulum (SR) was found to be diminished and correlated with a reduced contractility of the perfused hearts. 45Ca uptake of sarcoplasmic reticulum isolated from potassium deficient hearts was also reduced. The mitrochondrial 45Ca binding and endogenous Ca concentration were increased and there was a positive correlation between these two parameters. The data suggest that a reduced SR Ca binding plays a role in the depression of myocardial contractility in chronic potassium deficiency. Increased mitochondrial 45Ca binding in the presence of reduced 45Ca binding and uptake of sarcoplasmic reticulum suggests the possibility that mitochondria are an additional myocardial calcium pool in chronic potassium deficiency.

Animals

Increase in the (Na+ + K+)-ATPase activity in heart muscle after chronic treatment with digitoxin or potassium deficient diet.

In guinea pigs, administration of digitoxin (0.3 mg/kg s.c. for 7-24 days) causes an increase in activity of the (Na+ + K+)-ATPase of the heart. The plasma K+ level and the K+ content of the heart muscle of these animals remains unchanged and there is no significant alteration in the digitoxin toxicity compared to controls. In guinea pigs with potassium deficiency produced by a potassium deficient diet for 12 days, there is a related increase of the (Na+ + K+)-ATPase. The plasma K+ level of these animals is diminished while the K+ content in the heart muscle remains unchanged the toxicity of digitoxin is enhanced. In both test groups the increase in the (Na+ + K+)-ATPase activity is limited to enzymes from heart muscle, those from brain or kidney remaining unaffected. This increase in activity seems to be the result of an adaptive enzyme induction.

Adenosine Triphosphatases

Effect of potassium deficiency on papillary plasma flow in the rat.

Chronic potassium (K+) deficiency has been shown previously to cause a reduction in solute content in the renal papilla, an effect that is potentially important as a contributing factor to the concentrating defect seen in this circumstance. The cause of the decrease in papillary solute content has not been adequately explained. Because alterations in the blood flow rate through the renal papilla may affect the solute content of the papilla, the present experiments examined the effect of chronic K+ deficiency on papillary plasma flow (PPF) in the rat. PPF was measured by the radioactive albumin accumulation technique. Sprague-Dawley rats were fed identical quantities of water and either a normal or a K+-deficient diet for 21 days. Total GRR in the control rats, 1.7 +/- 0.17 (SE) ml/min, was similar to that in K+-deficient rats, 1.4 +/- 0.14 ml/min (P greater than 0.01). Total [3H]PAH clearance was also comparable in the two groups, i.e., 4.4 +/- 0.47 in control and 4.7 +/- 0.45 ml/min in K+-deficient rats (P greater than 0.06). PPF was significantly lower in K+-deficient rats, 19.7 +/- 1.1 ml-min-1-100 g-1, than in control rats, 59.8 +/- 1.6 ml-min-1-100 g-1 (P less than 0.001). The decrease in PPF in the K+-deficient rat may reflect a reduction in perfusion to the juxtamedullary nephrons, thereby resulting in a diminution in both solute delivery and blood flow to the papilla.

Animals

[Potassium deficiency in rat cardiomyocytes after whole-body hyperthermia].

Potassium distribution and content were studied in different compartments of rat heart papillary muscle by X-ray microanalysis. A higher concentration of potassium was measured in normal rat as compared to that in animals treated with high physiological temperature (45 degrees C), to be 120 and 80 mM, respectively.

Animals

Evidence that potassium deficiency induces growth retardation through reduced circulating levels of growth hormone and insulin-like growth factor I.

Growth retardation and impaired protein synthesis are major characteristics of potassium (K)-deficiency in animals and man. We have evaluated the effect of K-deficiency on growth, serum growth hormone (s-GH), insulin-like growth factor I (s-IGF-I), and insulin (s-insulin) in young rats. After 10 days on K-deficient fodder, 4 1/2-week-old rats showed a 54% reduction in serum potassium (s-K) and a weight gain that was reduced by 97%, compared with pair-fed controls. In addition, tail length, tibia length, and muscle weight of soleus in K-depleted animals were all significantly reduced compared with pair-fed controls. The growth retardation was accompanied by a 46% reduction in s-IGF-I, while s-insulin showed no decrease. K-repletion in animals depleted for 7 days showed complete normalization of s-K within 24 hours, in addition to a significant increase in both s-IGF-I and weight. In 4-week-old rats maintained on K-deficient fodder with variable K-content (1 to 260 mmol/kg) for 1 week, a strong correlation between the K-content of fodder and s-IGF-I could be established (r = .88, P less than .001), as well as between s-IGF-I and weight gain (r = .90, P less than .001). Furthermore, a stepwise reduction in basal s-GH was seen with the graded reduction of dietary K-content.(ABSTRACT TRUNCATED AT 250 WORDS)

Aging

Study of potassium deficiency in cardiac muscle: quantitative X-ray microanalysis and cryotechniques.

An imbalance of potassium in cardiac muscle causes an alteration of heart function. The distribution and concentration of potassium in rat papillary heart muscle was studied using cryofixation and X-ray microanalysis. Freeze-dried cryosections and sections of freeze-dried, embedded tissue were analysed. Bulk frozen specimens were freeze-dried either in a vacuum or by a new technique using liquid propane as a cryodehydration medium. These two methods of freeze-drying were tested for elemental retention in other specimens, with comparable results. A potassium concentration of 120 mmol/l was measured in normal myocytes of cardiac papillary muscle compared to 80 mmol/l in myocytes of animals stressed by a temperature of 45 degrees C for 1 h. The presumed physiological significance of the findings is discussed.

Animals