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At least 19 recordsLinked to original sources

Lactic acidemia and mitochondrial disease.

Lactic acidemia is present in the majority of patients with mitochondrial oxidative defects as well as in disorders of gluconeogenesis. An understanding of the dynamics of lactic acid metabolism in the human body and the influences on lactate/pyruvate ratios exerted by changes in cellular redox state allows for the development of diagnostic algorithms based on clinical and biochemical phenotypes. Mitochondrial disorders can be due to defects in nuclear genes directly affecting the respiratory chain assembly or function, mtDNA genes affecting the respiratory chain or nuclear genes influencing mtDNA structure and viability. In this review, we look at the classification of mitochondrial disease from the perspective of not just the genetic and biochemical etiology but also from the perspective of the clinical phenotypic expression.

DNA, Mitochondrial↗

Leigh's disease with decreased activities of pyruvate carboxylase and pyruvate decarboxylase.

In a patient with the clinical symptoms of Leigh's disease a partial deficiency of hepatic pyruvate carboxylase and pyruvate decarboxylase was found at necropsy. Cerebral pyruvate decarboxylase activity was also diminished. All enzyme activities were measured in total homogenates. The finding of typical necrotic lesions in the brain stem was consistent with the clinical diagnosis. During life moderate lactic acidaemia and no hypoglycaemia were observed, but an abnormal organic acid excretion pattern was present. The contribution of the enzyme defects to the aetiology of the disease is discussed.

Brain↗

Mitochondrial myopathies.

Mitochondrial myopathies are clinically heterogeneous disorders that can affect multiple systems besides skeletal muscle (mitochondrial encephalomyopathies or cytopathies) and are usually defined by morphological abnormalities of muscle mitochondria. There are a few distinctive syndromes, such as the Kearns-Sayre syndrome; myoclonus epilepsy with ragged-red fibers; and mitochondrial myopathy, encephalopathy, lactic acidosis, and strokelike episodes. Biochemically, mitochondrial myopathies can be divided into defects of substrate utilization, oxidation-phosphorylation coupling, and the respiratory chain. Because mitochondria have their own DNA and their own translation and transcription apparatuses, mitochondrial myopathies can be due to defects of either a nuclear or mitochondrial genome and can be transmitted by mendelian or maternal inheritance.

Carnitine↗

Defects of pyruvate metabolism and the Krebs cycle.

Seizures and metabolic disease are frequently associated, either indirectly as a consequence of the metabolically caused brain dysgenesis or directly by the metabolic derangement. This article describes defects in pyruvate metabolism (pyruvate carboxylase deficiency, pyruvate dehydrogenase deficiency) and Krebs cycle defects such as fumarase deficiency. Clinical characterizations and diagnostic strategies have been developed for each of these diseases. In contrast, very little is known about the specific epileptic features in these disorders. In females with a pyruvate dehydrogenase deficiency E1alpha owing to the mutation in the subunit E1alpha of the pyruvate dehydrogenase complex West's syndrome associated with large ventricles and corpus callosum agenesis on magnetic resonance imaging can be the main feature of the disease. In fumarase deficiency, prenatal brain dysgenesis is the most prominent feature of the disease. Diagnosis of these disorders requires measurements of lactate and pyruvate in plasma and cerebrospinal fluid, analysis of amino acids in plasma and organic acids in urine, and neuroradiologic investigations. Further biochemical and molecular analysis leads to a definitive diagnosis and opens the way to adequate treatment, genetic counseling, and prenatal diagnosis.

Brain↗

Neonatal congenital lactic acidosis with pyruvate carboxylase deficiency in two siblings.

The authors report 2 familial cases of neonatal congenital lactic acidosis with pyruvate carboxylase deficiency in the liver. In both cases, disorders started immediately after birth and were characterized by major neurological symptoms, acute metabolic acidosis with hyperketonemia and hyperammonemia. Course was rapidly fatal despite intensive care, bicarbonate therapy and several therapeutic attempts with biotin and thiamine. Hyperlactacidemia was associated with dramatic increase in lactate/pyruvate ratio, without anoxia, in contrast with decreased beta hydroxybutyrate/acetoacetate ratio. This unusual metabolic pattern may be assumed to result from decreased oxaloacetate synthesis as a result of pyruvate carboxylase deficiency, and impairment of oxaloacetate dependent mitochondrial redox shuttles. Post mortem enzymatic study of the liver and kidney showed biotin unresponsive total deficiency of pyruvate carboxylase. Other gluconeogenic enzyme activities were normal.

Acetoacetates↗

The genetic heterogeneity of lactic acidosis: occurrence of recognizable inborn errors of metabolism in pediatric population with lactic acidosis.

A total of 40 skin fibroblast cultures from pediatric cases of lactic acidosis were subjected to a series of tests designed to elucidate the nature of an underlying defect in metabolism. Of these 40 cases, in 14 we were able to define the following problems. Pyruvate carboxylase deficiency was evident in five cases showing < 10% normal activity. Phosphoenolpyruvate carboxykinase deficiency was evident in one case where the whole cells showed 17% of normal activity whereas the mitochondrial activity of this enzyme was 6% of normal. Pyruvate dehydrogenase deficiency was present in six cases showing 8 to 39% of normal activity, five of them being due to deficient pyruvate decarboxylase activity and one of them being due to deficient dihydrolipoyl dehydrogenase activity. Two cases were found with normal enzymes of pyruvate metabolism in which the production of 14CO2 from [3-14C]pyruvate was deficient at 13 and 28% of normal activity, respectively, which we consider to be indicative of reduced activity of the Krebs' cycle. The grounds for the diagnosis of these 14 affected cases are documented, and the clinical presentation of these enzyme deficiencies is assessed in the light of present knowledge about lactic acidosis.

Acidosis↗

[Differential diagnosis of the symptom of lactic acidosis in childhood].

Transitory Lactic acidemia may be found under very different conditions, eg. hyperventilation, hypoxia, strenuous muscular work, diabetic ketoacidosis, malignancies and totally parenteral alimentation. In contrast chronic, permanent lactic acidemia and lactic aciduria may point to one of several and usually severe inherited metabolic diseases of gluconeogenesis, pyruvate oxidation, the Krebs cycle or the respiratory chain. Clinical hints for a stepwise differential diagnosis are presented.

Acidosis↗

[Congenital enzyme deficiency in carbohydrate metabolism. Its significance for clinical pediatrics and human biochemical genetics (author's transl)].

A review of the enzyme deficiencies of carbohydrate metabolism known at the present time is given. Through prominent clinical symptoms and consideration of food as a pathological agent, it is possible to suspect the various diseases before the results of the biochemical determinations are available. On account of the sometimes striking course, therapy can consequently be started at the earliest possible moment.

Carbohydrate Metabolism, Inborn Errors↗

[Enzymopathic congenital hyperlactacidemia].

Congenital enzymopathic hyperlactacidemia results from a defect of utilisation of pyruvate either at the level of the pyruvate junction (pyruvate-carboxylase, pyruvate-dehydrogenase and Kreb's cycle), or at the level of the unidirectional enzymes on neo-glucogenesis and of neo-glycogenogenesis, e.g. glucose-6-phosphatase, phosphoenol-pyruvate-carboxykinase and glycogen synthetase. The enzymopathies which affect neoglucogenesis associate hyper-lactacidemia and fasting hypoglycemia and more or less marked hepatomegaly. Type I glycogenesis (von Gierke's disease) is the best known example. Enzymopathies which affect the pyruvate junction and the Krebs cycle, may be manifested in addition by: --either chronic neuropathies, e.g. Leigh's disease, recurrent ataxia, and moderate hyperalactacidemia,--or, as in congenital lactic acidoses, which have a rapid and severe prognosis with major hyperlactacidemia. Functional investigation, in particular, loading tests are of great value in orientation and justify the practice of tissue biopsy which permits the enzyme diagnosis. Recent, still unconfirmed knowledge of the pathogenesis of these diseases emphasizes the considerable importance of estimation of blood lactic acid in the investigation of metabolic acidoses of hereditary origin.

Acidosis↗

Leigh encephalopathy: histologic and biochemical analyses of muscle biopsies.

To elucidate the pathogenesis of Leigh encephalopathy, histologic, biochemical, and mitochondrial DNA analyses were performed on biopsied muscles from 33 patients with the clinical characteristics of this disorder. On muscle histochemistry, cytochrome c oxidase activity was decreased or absent in 7 patients (21%), although none had ragged-red fibers. In 2 patients with cytochrome c oxidase deficiency, staining for this enzyme was poor in the muscle fibers and fibroblasts but was normal in the arterial wall, indicating tissue-specific involvement. Ten patients (30%) had biochemical defects, including 2 with pyruvate dehydrogenase complex, 4 with cytochrome c oxidase, 1 with NADH-cytochrome c reductase (complex I), and 3 with multiple complex deficiencies. None of the 28 patients in whom muscle mitochondrial (mt)DNA was analyzed had DNA deletions or point mutation at nucleotide positions 3,243 or 8,344. These results indicate that the underlying defect in Leigh encephalopathy is heterogeneous because only 30% of patients had enzyme defects demonstrable in muscle biopsy material.

Child↗

Progressive infantile poliodystrophy (Alpers' disease) with a defect in citric acid cycle activity in liver and fibroblasts.

We present the case history of a boy, who died at the age of 3 1/2 years after a rapidly progressive neurologic disorder, characterized by psychomotor retardation, hypotonia, hemiparesis, seizures and myoclonic contractions. Histopathologic studies showed slight lipid storage in liver. Autopsy showed the characteristic features of progressive infantile poliodystrophy (Alpers' disease); ultrastructural examination showed an increased density of mitochondria in cerebral gray matter. Biochemical studies in leukocytes, cultured fibroblasts and liver indicated a deficiency in the citric acid cycle between succinate and fumarate; this deficiency was not present in muscle tissue. This study supports the view that progressive infantile poliodystrophy is associated with abnormalities in pyruvate metabolism and/or in cell mitochondria.

Brain↗