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[Unexpected metabolic acidosis in severe lye poisoning (author's transl)].

A woman 38 years of age suffering from severe peroral lye intoxication, without shock, developed prolonged metabolic acidosis lasting for 8 days despite substitution therapy. Metabolic acidosis was caused by lactic acid. The increased lactic acid production in the marginal regions of the corroded upper digestive tract as well as the impaired lactate removal by the injured liver were most probably responsible for this lactic acidosis.

Acidosis↗

Morphological studies of skeletal muscle in lactic acidosis.

This paper underscores the contribution of routine morphological examination of skeletal muscle in patients with lactic acidosis. Mitochondrial disorders are by far the most common causes of primary lactic acidosis, in which muscle biopsy analysis helps in diagnosis and in the search for the molecular anomalies. Thus, we focus our attention on one particular point: the contribution of the morphological study of muscle biopsy in primary lactic acidosis due to mitochondrial disorders, especially mitochondrial respiratory-chain diseases.

Acidosis, Lactic↗

Treatment of chronic congenital lactic acidosis by oral administration of dichloroacetate.

Sodium dichloroacetate (DCA) was administered orally at a dose of 50 mg per kg body weight twice or three times per day to a newborn infant with lactic acidosis of unknown cause (patient 1) and to a 15-year-old boy with mitochondrial encephalomyopathy associated with lactic acidosis (patient 2). In patient 1, during treatment with DCA, DCA accumulated in the blood judging from the findings that the urinary excretion of DCA increased cumulatively and the blood lactate level rapidly decreased to the normal range. In patient 2, the blood DCA level gradually increased during treatment to a concentration of 250 micrograms ml-1 and the blood lactate level decreased and was maintained within the normal range. DCA was detected in the brain (25 micrograms g tissue-1) and the liver, kidney and muscle (33.8, 33.8 and 26.3 micrograms g tissue-1, respectively) obtained at autopsy of patient 1, and in the cerebrospinal fluid of patient 2 at a concentration of 125 micrograms ml-1 when the blood concentration was 250 micrograms ml-1. The lactate levels in the cerebrospinal fluid decreased from 7 and 4 mmol l-1 to 2.4 and 2.6 mmol l-1 in patients 1 and 2, respectively. Thus DCA may be useful in clinical treatment of chronic congenital lactic acidosis because it seems to cross the blood-brain barrier. However, it must be given at non-toxic doses, determined by monitoring the concentrations of lactate and DCA in the blood, because orally administered DCA tends to accumulate in tissues.

Acetates↗

Type B lactic acidosis and metastatic breast cancer.

A case is presented of a patient with longstanding metastatic breast cancer whose condition suddenly deteriorated due to hypercalcemia and severe lactic acidosis which rapidly proved fatal. Postmortem examination showed no explanation for the lactic acidosis other than extensive metastatic disease. A review of the rare syndrome of malignancy-induced lactic acidosis is presented with particular emphasis on the 5 other cases reported in association with metastatic breast cancer. Theories of pathogenesis and management controversies are discussed.

Acidosis, Lactic↗

Intracellular potential and K+ activity in rat kidney proximal tubular cells in acidosis and K+ depletion.

Techniques were developed for the measurement of intracellular potentials and potassium activities in rat proximal tubule cells using double barreled K+ liquid-ion-exchanger microelectrodes. After obtaining measurements of stable and reliable control values, the effects of K+ depletion and metabolic and respiratory acidosis on the intracellular potential and K+ activity in rat kidney proximal tubular cells were determined. At a peritubular membrane potential of -66.3 +/- 1.3 mV (mean +/- SE), intracellular K+ activity was 65.9 +/- 2.0 mEq/liter in the control rats. In metabolic acidosis [70 mg NH4Cl/100 g body wt) the peritubular membrane potential was significantly reduced to -47.5 +/- 1.9 mV, and cellular K+ activity to 53.5 +/- 2.0 mEq/liter. In contrast, in respiratory acidosis (15% CO2) the peritubular membrane potential was significantly lowered to -46.1 +/- 1.39 mV, but the cellular K+ activity was maintained at an almost unchanged level of 63.7 +/- 1.9 mEq/liter. In K+ depleted animals (6 weeks on low K+ diet), the peritubular membrane potential was significantly higher than in control animals, -74.8 +/- 2.1 mV, and cellular K+ activity was moderately but significantly reduced to 58.1 +/- 2.7 mEq/liter, Under all conditions studied, cellular K+ was above electrochemical equilibrium. Consequently, an active mechanism for cellular K+ accumulation must exist at one or both cell membranes. Furthermore, peritubular HCO3- appears to be an important factor in maintaining normal K+ distribution across the basolateral cell membrane.

Acidosis↗

The effects of acidosis and alkalosis on coronary flow and cardiac nucleotide metabolism.

The changes of the coronary flows and of the cardiac nucleotide metabolism during acidosis and during alkalosis were studied in 50 perfused guinea pig hearts with and without hypoxia. At pH 7.0 the coronary flows increased, and at pH 7.8 a significant reduction of the flows took place. At 20% O2, acidosis elicited a further flow increase, whereas alkalosis inhibited the flow increase produced by hyoxia. The increases after adenosine injections and after coronary occlusions were greater during acidosis and smaller during alkalosis than at pH 7.4. The cardiac nucleotide contents did not clearly differ from the controls whereas adenosine exhibits higher levels in acidotic hearts. Alkalosis always induced a decreased production of adenine nucleoside irrespective of the presence or the absence of hypoxia. At 20% O2 a decreased ATP level and increased ADP- and CrP-contents could be observed during alkalosis.

Acidosis↗

Ammonium chloride metabolic acidosis and the activity of renin-angiotensin-aldosterone system in children.

The present study was undertaken to assess the effects of acute metabolic acidosis on the activity of the renin-angiotensin-aldosterone system in 12 children with a mean age of 8.9 years who underwent NH4Cl loading test. Ammonium chloride was given in a dose of 0.15 g/kg per day for 3 consecutive days to evaluate renal acidification. Prior to and following NH4Cl administration blood acid-base parameters, plasma and urine electrolytes, creatinine and aldosterone concentrations as well as plasma renin activity (PRA), urine flow rate and net H+ excretion were measured. Ammonium chloride administration significantly depressed blood pH (P less than 0.05), bicarbonate (P less than 0.01) and base excess (P less than 0.01) and resulted in a slight, but significant elevation of plasma potassium concentration (P less than 0.05). Furthermore, NH4Cl ingestion induced a marked increase in urine flow rate (P less than 0.01) and urinary sodium, potassium and chloride excretion (P less than 0.01). In response to NH4Cl metabolic acidosis, PRA doubled (4.72 +/- 1.18 vs 8.13 +/- 1.02 ng/ml per hour, P less than or equal to 0.05) and there was a nearly four-fold increase in plasma aldosterone level (0.49 +/- 0.12 vs 1.52 +/- 0.24 ng/ml, P less than 0.01) and in urinary aldosterone excretion (19.2 +/- 4.3 vs 71.8 +/- 13.8 micrograms/day, P less than 0.01). The elevated aldosterone production observed in this study is assumed to be mediated by the combined effect of sodium and water diuresis-related increased PRA, hyperkalaemia and the direct stimulation of adrenal steroidogenesis by metabolic acidosis.

Acid-Base Equilibrium↗

Relationship between metabolic acidosis and calcium phosphate urinary stone formation in women.

The relationship between the degree of metabolic acidosis and calcium phosphate stone formation was studied. Furthermore, the reasons why renal tubular acidosis (RTA) and primary hyperparathyroidism (PHPT) dominantly occur in women, and female stone formers more often produce calcium phosphate stone are discussed. Blood was slightly more acidotic in women than in men in both the urolithiasis and the control groups. Likewise, blood was significantly more acidotic and urinary pH significantly higher in patients with PHPT. Patients with RTA had severe metabolic acidosis, and urinary pH was highest among all groups. Calcium phosphate concentration was significantly higher in women than in men, and was also higher in patients with PHPT than in those with urolithiasis. All patients with RTA had pure calcium phosphate stones. The reasons why females are more acidotic and have more calcium phosphate in stones are suspected to be related to progesterone and urinary tract infection.

Acidosis, Renal Tubular↗

Zinc bone loss in chronic renal failure and chronic metabolic acidosis.

The effects of chronic metabolic acidosis (CMA) on zinc (Zn) bone content and urinary excretion were examined in the presence of normal or reduced renal function together with some aspects of calcium (Ca) metabolism. Four groups of rats were compared. All were fed a 30% protein and 9 mg Zn/100 g diet. Two were uremic (U): The first developed acidosis (UA), which was suppressed in the other (UNA) by NaHCO3 supplement. Two other groups had normal renal function: One was normal (CNA), and the other had NH4Cl in the drinking water and acidosis (CA). Femur total Zn and Ca content was markedly reduced by CMA and was not affected by uremia. Zn urinary excretion was increased by CMA and unaltered by uremia. Ca urinary excretion was markedly reduced in uremic rats, but was enhanced in both acidotic conditions. Urinary Ca and Zn showed a strong correlation in uremic and in control rats. Plasma parathormone and 1,25(OH)2D3 were unchanged by CMA. These data are in agreement with a direct primary effect of CMA on bone in releasing buffers. CMA induces bone resorption and a parallel decrease of mineral bone components, such as Ca and Zn, with little or no role of PTH, 1,25(OH)2D3 and of uremia itself.

Acidosis↗

[The role of metabolic acidosis in alphathesin-induced tachypnea in dogs].

In the dog anaesthetized with Althesin, tachypnea has been observed under light anaesthesia. There was also a metabolic acidosis which might be responsible for the increase of the respiratory rate. The ventilatory effects of the correction of the metabolic acidosis were studied in five dogs anaesthesized with Althesin administered at a constant rate of infusion (6.06 +/- 2.67 microliters X kg-1 X min-1). The ventilatory pattern (duration of inspiration, TI; duration of expiration, TE; duration of the respiratory cycle, Ttot; respiratory rate, f; ratio TI/Ttot, tidal volume (VT), minute ventilation (VE), mean inspiratory flow (VT/TI) and blood gases, pHa, PaCO2, PaO2, were measured before and after administration of 42 p milli sodium bicarbonate (495 mmol X l-1). Arterial pH increased from 7.27 +/- 0.10 to 7.44 +/- 0.20 (p less than 0.05). There was no statistically significant change of other values, particularly for respiratory rate which varied from 41 +/- 10.5 to 43.3 +/- 17.2 per minute. Metabolic acidosis does not explain the tachypnea. Mechanisms of tachypnea, particularly the role of histamine, are discussed.

Acidosis↗

Thyroid hormones changes in infants and children with metabolic acidosis.

The influence of the acidotic state on the thyroxine (T4) peripheral metabolism was studied in two different forms of metabolic acidosis, ie infantile diarrhea and diabetic ketoacidosis. The serum concentrations of T4, free T4 (FT4), triiodothyronine (T3), reverse T3 (rT3), thyrotropin (TSH) and thyroxine-binding globulin (TBG) were measured and compared to healthy control groups. Lower T4 and T3 and higher rT3 serum concentrations were found in both tested groups of patients in relation to the control groups. In infants with severe metabolic acidosis FT4 values were lower than those observed in the control group. In addition, serum TBG levels were lower in diabetic patients as compared to control subjects. Despite the reduced serum T3 and T4 concentrations in both groups of patients, TSH concentrations, were within the normal range. Therefore, we concluded that acidosis caused either by diarrhea (not so far described) or by diabetes mellitus (well documented up to now) affects the thyroid hormones metabolism in a similar way, at least as far as the thyroid hormones blood levels are concerned.

Acidosis↗

Long-term follow-up in distal renal tubular acidosis with sensorineural deafness.

A 20-year-old man presented with failure to thrive and bilateral genu valgum. On the basis of growth failure, skeletal deformity, hyperchloremic metabolic acidosis with alkaline urine and hypokalemia, nephrocalcinosis, and hearing loss, a diagnosis of distal renal tubular acidosis (DRTA) with sensorineural deafness was made. The genu valgum was treated by corrective osteotomy. Skeletal deformity was corrected and impaired growth improved after sustained therapy of metabolic acidosis with alkali supplementation. During an 8-year follow-up period the patient's glomerular filtration rate remained stable, the nephrocalcinosis did not progress, and his height increased 10 cm. Although nephrolithiasis led to atrophy of the right kidney, at last follow-up, when the patient was 44 years old, his creatinine clearance was 50 ml/min per 1.73 m2 body surface.

Acidosis, Renal Tubular↗

Unexplained metabolic acidosis in critically ill patients: the role of pyroglutamic acid.

OBJECTIVE: To determine the role of pyroglutamic acid (PGA) in the pathogenesis of unexplained metabolic acidosis in critically ill patients. DESIGN AND SETTING: Case series in the medical ICU of an urban hospital. PATIENTS: 23 patients admitted to the medical ICU with acidemia (pH <7.35 or HC0(3) < or = 16 mEq/l) not explained by the presence of ketoacidosis, lactic acidosis, renal failure or ingestion of drugs or toxins and who had an increase in the strong ion gap (SIG) greater than 5. MEASUREMENTS AND RESULTS: Plasma levels of sodium, potassium, chloride, bicarbonate, calcium (ionized), magnesium, lactate, phosphate, albumin, blood urea nitrogen, and creatinine were measured. Arterial blood gases and urine dipstick for ketones were also analyzed. Plasma was assayed for PGA using gas chromatography. The patient's history and Kardex were reviewed for evidence of acetaminophen administration. The plasma PGA level was found to be very low in all patients studied. The correlation between SIG and PGA (r) was -0.01 (95% CI: -0.42 to 0.40). PGA therefore did not account for the observed increase in the SIG. There appeared to be no obvious influence of acetaminophen intake on levels of PGA in the plasma. CONCLUSIONS: We were unable to confirm the importance of PGA as a cause of unexplained metabolic acidosis and increased SIG in our critically ill patients.

Acid-Base Equilibrium↗

Regulation of renal Na-HCO3 cotransporter: VIII. Mechanism Of stimulatory effect of respiratory acidosis.

We examined the effect of respiratory acidosis on the Na-HCO3 cotransporter activity in primary cultures of the proximal tubule of the rabbit exposed to 10% CO2 for 5 min, 2, 4, 24 and 48 hr. Cells exposed to 10% CO2 showed a significant increase in Na-HCO3 cotransporter activity (expressed as % of control levels, 5 min: 142 +/- 6, 2 hr: 144 +/- 13, 4 hr: 145 +/- 11, 24 hr: 150 +/- 15, 48 hr: 162 +/- 24). The increase in activity was reversible after 48 hr. The role of protein kinase C (PKC) on the stimulatory effect of respiratory acidosis on the cotransporter was examined in presence of PKC inhibitor calphostin C or in presence of PKC depletion. Both calphostin C and PKC depletion prevented the effect of 10% CO2 for 5 min or 4 hr to increase the activity of the cotransporter. 10% CO2 for 5 min or 4 hr increased total and particulate fraction PKC activity. To examine the role of phosphotyrosine kinase (PTK) on the increase in cotransporter activity we studied the effect of two different inhibitors, 2-hydroxy-5-(2,5-dihydroxylbenzyl) aminobenzoic acid (HAC) and methyl 2,5-dihydroxycinnamate (DHC) which inhibit phosphotyrosine kinase in basolateral membranes. Cells were pretreated either with vehicle or HAC or DHC and then exposed to 10% CO2 for 5 min or 4 hr. In cells treated with vehicle, 10% CO2 significantly increased cotransporter activity as compared to control cells exposed to 5% CO2. This stimulation by 10% CO2 was completely prevented by HAC or DHC at 5 min (5% CO2: 1.8 +/- 0.2, 10% CO2: 2.6 +/- 0.2, 10% CO2 + HAC: 1.6 +/- 0.2, 10% CO2: +DHC: 2.0 +/- 0.3 pH unit/min) and also at 4 hr. The protein synthesis inhibitors actinomycin D and cycloheximide appear to prevent the effect of 10% CO2 for 4 hr on the cotransporter. Our results show that early respiratory acidosis stimulates the Na-HCO3 cotransporter through PKC and PTK-dependent mechanisms and the late effect appears to be mediated through protein synthesis.

Acidosis, Respiratory↗

Ketoacidosis and lactic acidosis--frequent causes of death in chronic alcoholics?

In clinical medicine, severe keto- or lactic acidosis associated with vomiting, nausea, abdominal pain, tachycardia or pathological respiration, has been described in chronic alcoholics. This study reports on fatalities of chronic alcoholics where the cause of death could not be determined by thorough autopsy, histology and toxicology including determination of alcohol concentration. In a first series, acetone was determined in the blood of such chronic alcoholics (n = 24), diabetics with metabolic decompensation (n = 7), cases of hypothermia (n = 7) and controls (n = 218). Among the 24 chronic alcoholics where the cause of death was unknown, 9 cases showed very high levels of acetone (74-400 mg/l). These comprised 6 cases without additional findings and 3 cases where a second patho-mechanism such as intoxication possibly contributed to the cause of death. In a second series, the sum values according to Traub (lactate/glucose) were determined in cerebrospinal liquor of chronic alcoholics with undetermined cause of death (n = 45), diabetics (n = 6) and controls (n = 39). Among the 45 alcoholics, 17 cases showed very high sum values (294-594 mg/dl) including 8 cases where non-lethal intoxications may have contributed to the final outcome. Other causes of a ketoacidosis or lactic acidosis (e.g. diabetes) were excluded in both groups of alcoholics. Consequently, ketoacidosis and lactic acidosis can be the cause of death of chronic alcoholics in a considerable number of cases where no pathomorphological or toxicological changes are present. A scheme for medical and laboratory examination is described.

Acetone↗

Intranephron localization and regulation of the V1a vasopressin receptor during chronic metabolic acidosis and dehydration in rats.

The intrarenal localization and role of the V1a vasopressin receptor in body fluid homeostasis are unclear. We investigated the intranephron localization of V1a receptor mRNA and protein using reverse transcription (RT)-competitive polymerase chain reaction (PCR) and immunohistochemistry with a specific polyclonal antibody. To determine whether the V1a receptor is involved in the regulation of acid-base balance, we also examined the effects of acute and chronic metabolic acidosis and dehydration on V1a receptor expression. V1a mRNA was expressed most abundantly in the cortical collecting ducts (CCD) and decreased in the deeper CD. Expression in the glomeruli and thick ascending limbs was low. The immunohistochemical study revealed the presence of the V1a receptor in the glomeruli, the thick ascending limbs and the CD. Dehydration decreased V1a mRNA expression in the CD. Chronic metabolic acidosis increased V1a receptor mRNA expression in the CD but decreased V2 receptor mRNA expression. Western blot analysis revealed up-regulation of the V1a receptor protein in chronic metabolic acidosis. Incubation of microdissected CCD or outer medullary CD (OMCD) in a low-pH (or or low-HCO3-) medium increased the levels of V1a receptor mRNA but decreased V2 receptor mRNA expression. Incubating OMCD with arginine vasopressin (AVP) and the V1a receptor antagonist (OPC21268) increased V2 receptor mRNA expression compared with incubation with AVP alone. These data suggest that V1a receptors are present primarily in the principal and intercalated cells in the CD and that these receptors are involved in the regulation of water and acid-base balance.

Acidosis↗

Carbon dioxide pneumoperitoneum causes severe peritoneal acidosis, unaltered by heating, humidification, or bicarbonate in a porcine model.

BACKGROUND: Carbon dioxide (CO(2)) is the most common gas used for insufflation in laparoscopy, but its effects on peritoneal physiology are poorly understood. This study looks at the changes in peritoneal and bowel serosal pH during CO(2) pneumoperitoneum, and whether heating and humidification with or without bicarbonate alters the outcomes. METHODS: Twenty-one pigs divided into four groups as follows: (1) standard (STD) laparoscopy (n = 5); (2) heated and humidified (HH) laparoscopy (n = 6); (3) heated and humidified with bicarbonate (HHBI) laparoscopy (n = 5); and (4) laparotomy (n = 5). Peritoneal pH, bowel serosal pH, and arterial blood gas (ABG) were obtained at 15-min intervals for 3 h. RESULTS: Severe peritoneal acidosis (pH range 6.59-6.74) was observed in all laparoscopy groups, and this was unaltered by heating and humidification or the addition of bicarbonate. Bowel serosal acidosis was observed in all laparoscopy groups with onset of pneumoperitoneum, but it recovered after 45 minutes. No significant changes in peritoneal or bowel serosal pH were observed in the laparotomy group. CONCLUSION: CO(2) pneumoperitoneum resulted in severe peritoneal acidosis that was unaltered by heating and humidification with or without bicarbonate. Alteration in peritoneal pH may conceivably be responsible for providing an environment favorable for tumor-cell implantation during laparoscopy.

Acidosis↗

Confirmation of the ATP6B1 gene as responsible for distal renal tubular acidosis.

Primary distal renal tubular acidosis (dRTA) type I is a hereditary renal tubular disorder, which is characterized by impaired renal acid secretion resulting in metabolic acidosis. Clinical symptoms are nephrocalcinosis, nephrolithiasis, osteomalacia, and growth retardation. Biochemical alterations consist of hyperchloremic metabolic acidosis, hypokalemia with muscle weakness, hypercalciuria, and inappropriately raised urinary pH. Autosomal dominant and rare forms of recessive dRTA are known to be caused by mutations in the gene for the anion exchanger AE1. In order to identify a gene responsible for recessive dRTA, we performed a total genome scan with 303 polymorphic microsatellite markers in six consanguineous families with recessive dRTA from Turkey. In four of these there was an association with sensorineural deafness. The total genome scan yielded regions of homozygosity by descent in all six families on chromosomes 1, 2, and 10 as positional candidate region. In one of these regions the gene ATP6B1for the ss1 subunit of the vacuolar H(+)-ATPase is localized, which has recently been identified as causative for recessive dRTA with sensorineural deafness. Therefore, we conducted mutational analysis in 15 families and identified potential loss-of-function mutations in ATP6B1in 8. We thus confirmed that defects in this gene are responsible for recessive dRTA with sensorineural deafness.

Acidosis, Renal Tubular↗