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Lactic acidosis complicating diabetic ketosis in a patient with hyperthyroidism.

The present report describes a patient with insulin-dependent diabetes who developed simultaneously lactic acidosis and ketoacidosis following insulin deprivation. Administration of insulin at low doses rapidly corrected both ketosis and lactic acidosis. There had been neither circulatory collapse, nor phenformin intake, and hepatic function was normal. The development of lactic acidosis in this case was possibly precipitated by hyperthyroidism. A review of the literature indicates that lactic acidosis is a very rare complication of diabetic ketosis per se.

Acidosis↗

Phenformin-induced lactic acidosis in diabetic patients.

Eighteen diabetic patients with lactic acidosis (L.A.) were analyzed for possible causal factors, metabolic changes, and efficacy of treatment. An antecedent phenformin therapy was performed in fifteen cases and was associated with renal insufficiency in ten cases and liver disease in eight cases. Tissular anoxia of primary hemodynamic or respiratory origin was absent in all cases. The severe metabolic acidosis (pH m.93 +/- 0,03; HCO3-= 6 +/- 1 MM; PaCO2 = 18 +/- 2 MM. Hg) and hyperlactatemia (14.2 +/- 0.3 mM) were associated with high lactate/pyruvate ration (70 +/- 22). High alanine levels (up to 4.6 mM) were measured in some of these patients. High beta-hydroxybutrate levels were sometimes measured (up to 7.6 mM), and substantial amounts of acetoacetate were also detected in twelve cases. Glucagon level was always increased (1,050 +/- 240 pg./ml.), and insulin/glucagon ratio was low. Cortisol (49 +/- 10 mug./100 ml.) and HGH (10.8 +/- 0.6 ng./ml.) were also elevated. Increased plasma levels of phenformin were measured in five L.A. diabetic subjects (50 +/- 5 mug./ml.) by comparison with other phenformin-treated diabetic subjects. The specificity of the assay was investigated, and phenformin metabolites were characterized by thin-layer chromatography. Por the treatment of L.A., adjunction of dialysis and furosemide improved the efficacy of early and massive sodium bicarbonate infusion. It is suggested that accumulation of phenformin via renal insufficiency plays a determinant role in causing L.A. through an impairment of lactate metabolism in the liver. An accelerated epuration of the drug may be helpful in therapy of L.A. Phenformin treatment should be avoided in case of renal and/or liver insufficiency.

Adult↗

Difference in the mechanisms for compensating ischemic acidosis in diabetic rat hearts.

To elucidate the difference in the mechanisms for alkalization during ischemic acidosis between diabetic and non-diabetic hearts, intracellular pH (pHi) was measured by phosphorus-31 magnetic resonance spectroscopy. Diabetes was induced by the injection of streptozotocin. The accumulation of proton ion (DeltaH+) during 15 min global ischemia at 37 degreesC was calculated from pH i. There were no significant differences in DeltaH+ between diabetic (DM: 0. 54+/-0.03 micromol/l,n=6; mean+/-s.e.m.) and non-DM hearts (0.57+/-0.04, n=6), when perfused with bicarbonate buffer. However, perfusion with HEPES buffer revealed a significant increase of DeltaH+ in DM (0.85+/-0.07, n=5) compared with non-DM (0.61+/-0.06, n=5P<0.05). On the contrary, the addition of a Na+/H+ exchange inhibitor (EIPA; 1 micromol/l) to bicarbonate buffer significantly increased DeltaH+ in non-DM (1.09+/-0.10, n=4) compared with DM (0.71+/-0.03, n=5P<0.01). Perfusion with HEPES buffer and EIPA equally increased DeltaH+ in both groups (DM 1.13+/-0.13, n=4; non-DM 1.15+/-0.14, n=4). Thus, the activity of Na+/H+ exchanger during ischemic acidosis, assessed as the increase of DeltaH+ induced by addition of EIPA to bicarbonate buffer, was higher in non-DM (0.52) than DM (0.17). In contrast, the contribution of bicarbonate-dependent systems evaluated by the deference of DeltaH+ between the bicarbonate buffer and the HEPES buffer was markedly bigger in DM (0.31) than non-DM (0.04). These results indicate that Na+/H+ exchange is a major mechanism to compensate ischemic acidosis in non-DM hearts, whereas bicarbonate-dependent systems compensate the depressed activity of Na+/H+ exchange in DM.

Acidosis↗

[Lactic acidosis in diabetics on biguanides (author's transl)].

A systematic search for cases of lactic acidosis among diabetics on biguanides revealed ten during an eight-month period, while in the preceding ten years not a single case had been definitely diagnosed. This represents a prevelance of 1 in 2000 patients admitted to hospital. All ten were over 60 years old and had previously been treated for heart failure. Most of them had suffered from renal insufficiency for some time. There was no case of biguanide overdosage. Criteria for the diagnosis of lactic acidosis are lactic concentration in blood averaging 18.4 mmol/l and a low pH, averaging 6.9. Serum-biguanide concentration (measured by radioimmuno-assay) was markedly increased. Most of the patients were in circulatory shock on admission or soon after and all of them had a history of gastro-intestinal complaints. Despite intensive treatment with insulin and glucose and careful correction of the acidosis with bicarbonate four of the ten patients died.

Biguanides↗

[Lactic acidosis in diabetic patients associated with buformin].

We report two diabetic patients who developed lactic acidosis following the use of Buformin. Treatment consisted of mechanical ventilation, massive bicarbonate administration, circulatory support with dopamine and peritoneal dialysis. Despite this, both patients died.

Acidosis, Lactic↗

Lactic acidosis in diabetic patients.

Plasma lactate and beta-hydroxybutyrate concentrations were measured during episodes of ketoacidosis and lactic acidosis in diabetics. In 39 patients with ketoacidosis, with a mean plasma beta-hydroxybutyrate concentration of 12.4 millimols/liter, the plasma lactate concentration was less than 3.6 millimols/liter in 28 and moderately elevated in 11. In seven of the latter, coexisting lactic acidosis had been suspected clinically. In these 39 patients, there was no correlation between plasma lactate and beta-hydroxybutyrate concentrations. In six of ten episodes of presumed and later proved lactic acidosis, despite negative or weakly positive serum reactions with sodium nitroprusside, the plasma beta-hydroxybutyrate concentration was elevated. Although positive, the serum reaction with nitroprusside was also misleadingly weak in five of 39 patients with ketoacidosis, including three with plasma lactate concentrations less than 3 millimols/liter.

Adult↗

Post-convulsive lactic acidosis in diabetic patients.

Diabetic patients have an increased risk of developing epileptic convulsions compared with the non-diabetic population. Generalised seizures may cause a severe, but self-correcting, lactic acidosis for which specific treatment is both unnecessary and potentially hazardous. Two cases of post-convulsive lactic acidosis occurring in diabetic patients are reported. The cause of the acidosis was confirmed only in retrospect in each case.

Acidosis, Lactic↗