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At least 19 recordsLinked to original sources

Influence of acute and chronic respiratory alkalosis on preexisting chronic metabolic alkalosis.

The severity of the alkalemia produced by a reduction in arterial carbon dioxide tension (PaCO2) in normal humans and animals is ameliorated by buffer and renal responses that diminish the levels of plasma bicarbonate concentration ([HCO3-]p). These adjustments have even greater potential importance in preventing extreme degrees of alkalemia when hypocapnia occurs in the presence of an initially elevated [HCO3-]p (mixed respiratory and metabolic alkalosis). The aim of the present study was to characterize the acute (approximately 3 h) and chronic (5 days) acid-base effects of respiratory alkalosis when superimposed on chronic metabolic alkalosis. Ten dogs were made alkalotic by the repeated administration of ethacrynic acid and the provision of a chloride-restricted diet. Hypocapnia (delta PaCO2 = 10 mmHg) was then superimposed by exposing the animals to 11% O2 in an environmental chamber. A large fall in [HCO3-]p occurred in the acute hypocapnic phase that was further augmented in the chronic phase; the corresponding delta [HCO3-]p/delta PaCO2 slopes were 0.43 and 0.71 meq.l-1.mmHg-1, respectively, values substantially larger than those previously reported for hypocapnia in normals as well as in animals with preexisting HCl acidosis. Hyperlactatemia was responsible, on average, for 43% of the decrement in [HCO3-]p during acute hypocapnia but for only 20% of the delta [HCO3-]p during the chronic phase of the study. The striking decrement in [HCO3-]p observed in response to the chronic reduction in PaCO2 was sufficient not only to prevent the development of extreme alkalemia but also to offset entirely the effect of hypocapnia on plasma [H+].

Acute Disease↗

Hypokalemic alkalosis, hyperreninemia, aldosteronism, normal blood pressure and normal juxtaglomerular apparatus--a new syndrome of renal alkalosis.

An infant with hypokalemic alkalosis, hyperreninemia, aldosteronism, normal blood pressure and normal juxtaglomerular apparatus (JGA) is described. This infant, along with other similar patients reported in the literature, represents a new syndrome of renal alkalosis, clinically and chemically similar to Bartter's syndrome, but without hyperplasia of the JGA.

Alkalosis↗

Effects of chloride and extracellular fluid volume on bicarbonate reabsorption along the nephron in metabolic alkalosis in the rat. Reassessment of the classical hypothesis of the pathogenesis of metabolic alkalosis.

Volume expansion has been considered essential for the correction of chloride-depletion metabolic alkalosis (CDA). To examine the predictions of this hypothesis, rats dialyzed against 0.15 M NaHCO3 to produce CDA and controls, CON, dialyzed against Ringer-HCO3 were infused with either 6% albumin (VE) or 80 mM non-sodium chloride salts (CC) added to 5% dextrose (DX) and studied by micropuncture. CDA was maintained in rats infused with DX. VE expanded plasma volume (25%), maintained glomerular filtration rate (GFR), but did not correct CDA despite increased fractional delivery of total CO2 (tCO2) out of the proximal tubule (36 +/- 2%) as compared with VE/CON (24 +/- 4%; P less than 0.05). In contrast, CC corrected CDA despite volume contraction (-16%) and lower GFR than CC/CON; proximal tCO2 delivery in CC/CDA (29 +/- 4%) did not differ from VE/CDA. CC was associated with an increment in tCO2 excretion. The data strongly suggest that maintenance and correction of CDA are primarily dependent upon total body chloride and its influences on intrarenal mechanisms and not on the demands of sodium or fluid homeostasis.

Absorption↗

Direct suppressive effect of acute metabolic and respiratory alkalosis on parathyroid hormone secretion in the dog.

UNLABELLED: Acute alkalosis may directly affect PTH secretion. The effect of acute metabolic and respiratory alkalosis was studied in 20 dogs. PTH values were lower in the metabolic (5.6 +/- 0.8 pg/ml) and respiratory (1.8 +/- 0.6 pg/ml) alkalosis groups than in the control group (27 +/- 5 pg/ml). Acute alkalosis is an independent factor that decreases PTH values during normocalcemia and delays the PTH response to hypocalcemia. INTRODUCTION: We recently showed that acute metabolic and respiratory acidosis stimulated PTH secretion. This study was designed to evaluate whether acute metabolic and respiratory alkalosis suppressed parathyroid hormone (PTH) secretion. MATERIALS AND METHODS: Three groups of 10 dogs were studied: control, acute metabolic alkalosis, and acute respiratory alkalosis. Metabolic alkalosis was induced with an infusion of sodium bicarbonate and respiratory alkalosis by hyperventilation. Calcium chloride was infused to prevent alkalosis-induced hypocalcemia during the first 60 minutes. During the next 30 minutes, disodium EDTA was infused to induce hypocalcemia and to evaluate the PTH response to hypocalcemia. Because the infusion of sodium bicarbonate resulted in hypernatremia, the effect of hypernatremia was studied in an additional group that received hypertonic saline. RESULTS: After 60 minutes of a normocalcemic clamp, PTH values were less (p < 0.05) in the metabolic (5.6 +/- 0.8 pg/ml) and respiratory (1.8 +/- 0.6 pg/ml) alkalosis groups than in the control group (27 +/- 5 pg/ml); the respective blood pH values were 7.61 +/- 0.01, 7.59 +/- 0.02, and 7.39 +/- 0.02. The maximal PTH response to hypocalcemia was similar among the three groups. However, the maximal PTH response was observed after a decrease in ionized calcium of 0.20 mM in the control group but not until a decrease of 0.40 mM in the metabolic and respiratory alkalosis groups. In contrast to the metabolic alkalosis group, hypernatremia (157 +/- 2 mEq/liter) in the hypertonic saline group was associated with an increased PTH value (46 +/- 4 pg/ml). Finally, the half-life of intact PTH was not different among the control and two alkalosis groups. CONCLUSIONS: Acute metabolic and respiratory alkalosis markedly decreased PTH values during normocalcemia and delayed the PTH response to hypocalcemia. Whether acute metabolic and respiratory alkalosis affect PTH and calcium metabolism in such settings as the postprandial alkaline tide (metabolic alkalosis) and acute sepsis (respiratory alkalosis) deserves to be evaluated in future studies.

Acute Disease↗

Metabolic alkalosis in children undergoing cardiac surgery.

OBJECTIVE: To define the frequency of metabolic alkalosis and its pathogenesis in children after open-heart surgery. DESIGN: Retrospective chart review. SETTING: Multidisciplinary, tertiary, pediatric intensive care unit. PATIENTS: Fifty-six consecutive children undergoing open-heart surgery. MEASUREMENTS AND MAIN RESULTS: Metabolic alkalosis occurred in 29 (52%) of 56 patients. Seventy-two percent of patients < 12 months of age developed metabolic alkalosis as compared with 30% of patients > 12 months of age (p < .01 by chi-square). Patients developing metabolic alkalosis were younger, received more furosemide, had lower serum chloride concentrations, and underwent longer cardiopulmonary bypass times than nonmetabolic alkalosis patients. By stepwise multiple linear regression analysis, only age (p < .05) and serum chloride concentrations (p < .001) had independent correlations with the development of metabolic alkalosis; both variables had inverse correlations with arterial pH (r2 = .42). Patients with metabolic alkalosis also developed significantly (p < .01 by two tailed Student's t-test) lower serum ionized calcium concentrations (4.2 +/- 0.5 mg/dL [1.05 mmol/L]) as compared with nonmetabolic alkalosis patients (4.6 +/- 0.4 mg/dL [1.15 mmol/L]). CONCLUSIONS: Postoperative metabolic alkalosis occurs frequently in children undergoing open-heart surgery. Chloride depletion seems to be the predominant factor in the pathogenesis of metabolic alkalosis. Younger age can serve as a positive predictor for the development of metabolic alkalosis in this subset of patients.

Age Factors↗

The effect of alkalosis on hypoxia-induced pulmonary vasoconstriction in lungs of newborn rabbits.

The purpose of this study was to determine whether metabolic and respiratory alkalosis reduce hypoxia-induced pulmonary vasoconstriction in lungs of newborn rabbits. To accomplish this, we isolated and perfused with blood the lungs from 33 newborn rabbits, 3-14 d old. In all pairs of lungs, we first measured the magnitude of hypoxia-induced pulmonary vasoconstriction at a pH of 7.30-7.42. We then measured the effect of alkalosis on the magnitude of hypoxic pulmonary vasoconstruction by following one of two different sequences of exposure to hypoxia and alkalosis. For the first sequence, we exposed 13 lungs to hypoxia, and during the hypoxic exposure we either decreased the inspired PCO2 (respiratory alkalosis, n = 8) or infused NaHCO3 (metabolic alkalosis, n = 5) to achieve a pH of 7.50-7.65. For the second sequence, we first decreased the inspired PCO2 (n = 9) or infused NaHCO3 (n = 11) to achieve a pH of 7.50-7.65 and then exposed the lungs to hypoxia. We found that hypoxic pulmonary vasoconstriction was reduced by either respiratory or metabolic alkalosis, when alkalosis was induced during hypoxia. When respiratory or metabolic alkalosis was induced before hypoxia, the magnitude of hypoxia-induced pulmonary vasoconstriction was the same as at the normal pH. We conclude that both metabolic and respiratory alkalosis reduce ongoing hypoxic pulmonary vasoconstriction in lungs of newborn rabbits. However, neither mode of alkalosis blunts pulmonary vasoconstriction in response to subsequent exposures to hypoxia.

Alkalosis↗

Systemic vasomotor interaction between nicardipine and hypocapnic alkalosis in man.

The effects of hypocapnic alkalosis on the vasodilating action of nicardipine were studied in 6 patients after cerebral arterial aneurysm surgery. Each patient served as his/her own control during the 6 steps of the study. T0: baseline; T1: hypocapnic alkalosis alone (PaCO2: 3.5 kPa); T2: hypocapnic alkalosis and bolus injection of nicardipine (30 micrograms.kg-1 i.v.); T3: hypocapnic alkalosis and continuous 60 min infusion of nicardipine (0.5 microgram.kg-1.min-1), T4: determination of the infusion rate required to neutralize the effect of hypocapnic alkalosis; T5: same continuous dose of nicardipine as in T4 but reversal of hypocapnic alkalosis. Hypocapnic alkalosis alone caused a significant increase in the systemic vascular resistance index by 20% (T1). The bolus injection of nicardipine reversed this first effect (T2). The continuous infusion of nicardipine in T3 was insufficient to cancel the haemodynamic effect of hypocapnic alkalosis. During T4 the plasma levels required to neutralize completely the effect of hypocapnic alkalosis were twice those at T3. Normalization of the PaCO2 in step T5 induced a significant fall in the systemic vascular resistance index by 27.5% as compared with T0. In this study hypocapnic alkalosis modified the relationship between plasma levels of nicardipine and its expected vasoactive effects. This interaction was reversible.

Aged↗

Effects of hypocapnia and hypocapnic alkalosis on cardiovascular function.

Cardiovascular effects of hypocapnia and hypocapnic alkalosis with and without a fluid load were studied in four groups of dogs (group I: fluid load control; group II: fluid load-isolated hypocapnia; group III: fluid load-hypocapnic alkalosis; group IV: no fluid load-hypocapnic alkalosis). Hypocapnic alkalosis was induced by mechanical hyperventilation, and isolated hypocapnia by the simultaneous administration of 0.1 N HCl. Respiratory alkalosis was also studied during administration of a saline fluid load. Cardiac output and stroke volume increased in all groups receiving a fluid load (including isolated hypocapnia and hypocapnic alkalosis groups), but both fell significantly during hypocapnic alkalosis without fluid load. Pulmonary artery wedge pressure rose in groups with hypocapnic alkalosis with fluid load and isolated hypocapnia with fluid load, but did not change significantly with hypocapnic alkalosis without fluid load or in the normocapnic group with fluid load. It is concluded that cardiac output and stroke volume fall in response to hypocapnic alkalosis but both are maintained with a fluid load at the expense of an increased left ventricular preload.

Alkalosis↗

Discordant effects of alkalosis on elevated pulmonary vascular resistance and vascular reactivity in lamb lungs.

OBJECTIVES: After an initial vasodilator response to alkalosis, many children with pulmonary hypertension exhibit marked pulmonary vascular reactivity despite continued alkalosis therapy. This study sought to a) identify the mediator of alkalosis-induced pulmonary vasodilation in isolated lamb lungs; b) determine whether alkalosis-induced pulmonary vasodilation decreases over time in this model; and c) determine whether alkalosis enhanced vascular reactivity to subsequent pressor stimuli. DESIGN: Prospective, interventional study. SUBJECTS: Isolated perfused lungs from 1-month-old lambs. INTERVENTIONS: Hypocarbic alkalosis, hypoxia, and infusion of the thromboxane mimetic agent U46619 MEASUREMENTS AND MAIN RESULTS: Pulmonary artery pressure was measured at constant flow, so a change in pressure reflects change in resistance. Hypoxic pulmonary artery pressure was compared after 20 and 100 mins of hypocarbic alkalosis or normocarbia in control and cyclooxygenase-inhibited lungs. Pulmonary artery dose responses to U46619 were then measured in control lungs. Responses to hypoxia and U46619 were also compared after 60-80 mins of hypocarbic or normocarbic normoxia. Hypocarbic alkalosis acutely reduced hypoxic pulmonary vascular resistance, and this was sustained for at least 100 mins. Cyclooxygenase inhibition blocked this vasodilation, suggesting that it was mediated by dilator prostaglandins. However, subsequent reactivity to U46619 was enhanced in hypoxic alkalotic lungs, and both hypoxia and U46619 caused significant vasoconstriction in normoxic alkalotic lungs. CONCLUSIONS: Alkalosis caused sustained vasodilation when pulmonary vascular resistance was high but either failed to attenuate or enhanced vascular reactivity to subsequent pressor stimuli.

15-Hydroxy-11 alpha,9 alpha-(epoxymethano)prosta-5↗

Metabolic alkalosis in models of primary and secondary hyperparathyroid states.

Hyperchloremic metabolic acidosis has been reported in clinical states of primary and secondary hyperparathyroidism (HPT). Acute administration of parathyroid hormone (PTH) decreases renal acidification in humans and dogs, but the renal and systemic acid-base effects of chronic HPT have not been extensively investigated. In chronically thyroparathyroidectomized (TPTX) dogs (group I), bPTH 1-5 U/kg twice daily resulted in sustained hypophosphatemia, hypercalcemia, and Cl- -resistant metabolic alkalosis that was of renal origin at least in part: delta [HCO3-]p + 4.1 +/- 0.8 meq/liter, P less than 0.01; delta [H+]p -4 +/- 1 neq/liter, P less than 0.001, days 10-12. The cumulative change (sigma delta) in net acid excretion (NAE) was +44 meq (day 9, P less than 0.05). Similarly, metabolic alkalosis of renal origin, at least in part, occurred when PTH was administered by chronic continuous intravenous infusion (group II). Since chronic administration of calcitriol in dogs results in metabolic alkalosis, plasma calcitriol concentration was measured and found not to be increased by chronic intravenous PTH administration. In intact dogs (group III), a continuous chronic intravenous infusion of the Ca2+ chelator, Na4EGTA (3.0 mmol/kg daily), substituted for an equimolar amount of prechelated EGTA (CaNa2EGTA), resulted in a model of hypocalcemic HPT and severe Cl- -resistant metabolic alkalosis: delta [HCO3-]p +9.1 +/- 1.9 meq/liter, P less than 0.05; delta [H+]p -5 +/- 1 neq/liter, P less than 0.01, days 6-8. NAE decreased significantly. Thus, whereas metabolic alkalosis induced by PTH administration could be accounted for by increased NAE (group I), EGTA-induced metabolic alkalosis was accounted for by an extrarenal mechanism of base input to extracellular fluid (group III). Neutralization of the extrarenal base input by chronic administration of HCl during the period of EGTA-induced HPT did not preclude the development of metabolic alkalosis (group V), suggesting that a renal component was present in EGTA-induced metabolic alkalosis as well as in models of primary HPT (groups I and II). During the steady state, in this group as in the groups administered PTH, the net endogenous load of acid to the systemic circulation requiring renal excretion was unchanged from control, as indicated by stable values of NAE not significantly different from control. Yet metabolic alkalosis persisted in the steady state.(ABSTRACT TRUNCATED AT 400 WORDS)

Acid-Base Equilibrium↗

Pulmonary vascular responses during acute and sustained respiratory alkalosis or acidosis in intact newborn piglets.

Acute alkalosis-induced pulmonary vasodilation and acidosis-induced pulmonary vasoconstriction have been well described, but responses were generally measured within 5-30 min of changing pH. In contrast, several in vitro studies have found that relatively brief periods of sustained alkalosis can enhance, and sustained acidosis can decrease, vascular reactivity. In this study of intact newborn piglets, effects of acute (20 min) and sustained (60-80 min) alkalosis or acidosis on baseline (35% O2) and hypoxic (12% O2) pulmonary vascular resistance (PVR) were compared with control piglets exposed only to eucapnia. Acute alkalosis decreased hypoxic PVR, but sustained alkalosis failed to attenuate either baseline PVR or the subsequent hypoxic response. Acute acidosis did not significantly increase hypoxic PVR, but sustained acidosis markedly increased both baseline PVR and the subsequent hypoxic response. Baseline PVR was similar in all piglets after resumption of eucapnic ventilation, but the final hypoxic response was greater in piglets previously exposed to alkalosis than in controls. Thus, hypoxic pulmonary vasoconstriction was not attenuated during sustained alkalosis, but was accentuated during sustained acidosis and after the resumption of eucapnia in alkalosis-treated piglets. Although extrapolation of data from normal piglets to infants and children with pulmonary hypertension must be done with caution, this study suggests that sustained alkalosis may be of limited efficacy in treating acute hypoxia-induced pulmonary hypertension and the risks of pulmonary hypertension must be considered when using ventilator strategies resulting in permissive hypercapnic acidosis.

Acidosis, Respiratory↗