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Multiple carboxylase deficiency.

1. The multiple carboxylase deficiencies are inborn errors in the metabolism of biotin in which there is defective activity of propionyl CoA carboxylase, 3-methylcrotonyl CoA carboxylase and pyruvate carboxylase. 2. Two distinct disorders have been described. 3. In one the fundamental defect is in the enzyme holocarboxylase synthetase which catalyzes the molecular activation of the apocarboxylase proteins. 4. In the other the fundamental defect is in biotinidase which catalyzes the reutilization of biotin and may be involved in its digestion and intestinal absorption.

Amidohydrolases

Fatty acid transport in multiple carboxylase deficiency fibroblasts.

Holocarboxylase synthetase (HS) and biotinidase deficiencies have been identified as causes of biotin-responsive multiple carboxylase deficiency. Acetyl-CoA carboxylase (ACC) deficiency has been shown to occur in multiple carboxylase deficiency, and HS(-) fibroblasts are being employed to investigate compensatory regulatory responses in cells deficient in ACC. In previous studies, biotin starved HS(-) fibroblasts showed a reduced fatty acid content, an abnormal percentage composition of fatty acids, and a preservation of longer-chain fatty acid contents of cells. We herein ask whether the mutant cells show compensatory increases in the transport of longer-chain fatty acids from the medium into fibroblasts. In the present experiments there was no change in the uptake of arachidonate, palmitate or oleate following growth of mutant and control fibroblasts in (+) or (-) biotin conditions. Differential fatty acid uptake from the medium is therefore not a compensatory mechanism in HS(-) cells, and cannot account for the specific changes in fatty acid composition produced by biotin restriction.

Arachidonic Acid

Abnormal fatty acid composition of biotin-responsive multiple carboxylase deficiency fibroblasts.

Clinical and biochemical correlations in the biotin-responsive multiple carboxylase deficiencies have suggested that disordered lipogenesis plays a role in the pathogenesis of the disease. In particular, the activity of biotin-dependent acetyl CoA carboxylase and the de novo synthesis of fatty acids are reduced in mutant fibroblasts. In the present work, we examine the biochemical consequences of these deficiencies, and document and characterize an abnormal fatty acid composition in holocarboxylase synthetase deficiency fibroblasts. Following growth in biotin-restricted medium, the total fatty acid content of mutant cells is reduced. There were significant reductions in the percentage as 16:0, 18:0 and 20:3N9 fatty acids, with the proportion of longer-chain fatty acids either increased or maintained at control levels. The cellular content of 16:0, 16:1, 18:0, 18:1 and 20:3N9 fatty acids was reduced, while that of the longer-chain fatty acids was preserved at control levels in mutant cells deprived of biotin. We speculate that the components of the altered fatty acid pools may be disproportionately incorporated into complex lipids in mutant cells, with pathologic effects on the multiple carboxylase deficiency phenotype.

Biotin

Biotin-responsive multiple carboxylase deficiency in an 8-year-old boy with normal serum biotinidase and fibroblast holocarboxylase-synthetase activities.

An 8-year-old boy with late onset multiple carboxylase deficiency is described. Biotinidase deficiency and holocarboxylase-synthetase deficiency have been excluded. A very slow biochemical response to biotin was found. The decrease in urinary organic acid excretion followed first-order kinetics with a half-life of about 50 days. The initially low carboxylase activities in thrombocytes were increased but not normalized after 3 months of treatment.

Amidohydrolases

Heterogeneity of holocarboxylase synthetase in patients with biotin-responsive multiple carboxylase deficiency.

Holocarboxylase synthetase activity has been determined in fibroblasts of seven patients with the neonatal form of biotin-responsive multiple carboxylase deficiency. The normal Km for biotin was 15 +/- 3 nmol/l, while in the patients the values ranged from 48 to 1,062 nmol/l. The mean maximum velocity was 27% of normal. Differences among the values obtained for the Km for biotin and the heat stability of holocarboxylase synthetase suggested that the patients studied represented at least four distinct variants at the holocarboxylase synthetase locus.

Biotin

Multiple carboxylase deficiency due to deficiency of biotinidase.

A patient with biotinidase deficiency was studied in whom the first admission to hospital for acidosis occurred at 5 years of age. Sensorineural abnormalities of the optic and auditory nerves antedated diagnosis and treatment with biotin, and these sensory losses did not resolve with treatment. The other clinical manifestations of the disease were highly responsive to biotin. Biotinidase was assayed using 14C-labeled natural substrate. The activity in the patient approximated 1% of the control level.

Amidohydrolases

Long-term auditory and visual complications of biotinidase deficiency.

The biochemical, dermatological and neurological motor disorders of biotinidase deficiency (multiple carboxylase deficiency) show a dramatic response to pharmacological doses of biotin. This condition is characterised by the accumulation of biocytin and depletion of biotin. Neuromuscular function returns to normal with the reversal of the characteristic organic acidaemia. It would appear that the optic and auditory nerves or their related neurological structures may suffer damage from the excess biocytin and deficient biotin. Despite reversal of the dermatological and psychomotor abnormalities children are likely to be left with auditory and/or visual handicaps if diagnosis and treatment is delayed beyond the first year of life. Treatment with biotin was commenced 6, 18, and 13 months after onset of symptoms. Two children subsequently were found to have visual impairment (acquired retinal dysplasia) and two had sensori-neural deafness. In one patient both defects were present.

Amidohydrolases

[Quantitative analysis of urinary organic acid].

We showed the optimum conditions for analysis of urinary organic acids using solvent extraction and GC/MS by the stable isotope dilution technique. Examples of the diagnosis in a case of heterozygote of ornithine transcarbamylase deficiency and a case of multiple carboxylase deficiency were described. The accurate quantitative analysis of urinary organic acids with stable isotope dilution technique is necessary for routine examination conducted in clinical laboratories.

Female

Comparison of patients with complete and partial biotinidase deficiency: biochemical studies.

Seventeen partially biotinidase-deficient patients detected by neonatal screening or family studies were compared with four patients with classical biotinidase deficiency. Using a sensitive HPLC method for biotinidase in plasma (substrate: biocytin) the patients could be divided into two groups: one with residual biotinidase activity, and the second with undetectable biotinidase activity (0-activity). Biocytin excretion, characteristically elevated in 0-activity patients, decreased rapidly with increasing residual biotinidase activity and was almost normal when residual activity exceeded 2-3% of mean normal. In one patient with classical disease (0-activity) biotin deficiency, typical organic aciduria and multiple carboxylase deficiency were found as early as at the second week of life. In contrast, 13 infants with residual activities from 1.2% to 23% had no remarkable clinical or biochemical abnormalities. However, in three 5-, 14- and 15-year-old healthy siblings with residual biotinidase activities between 2.3% and 4.2%, biotin deficiency was proven by decreased activities of the mitochondrial carboxylases in lymphocytes (30-57% of mean normal) and, in the older siblings, also by subnormal plasma biotin concentrations. In biotinidase deficiency, biotin depletion presumably occurs earlier in the brain than in other tissues and may thus first affect the central nervous system. For this reason and because of discrete biochemical abnormalities found in a patient with residual biotinidase activity of 8%, we suggest that at least all patients with residual activities below 10% should be treated with biotin.

Acids

Rapid differential diagnosis of carboxylase deficiencies and evaluation for biotin-responsiveness in a single blood sample.

We have developed a method for rapid differential diagnosis of isolated or multiple deficiencies of the 3 mitochondrial biotin-dependent carboxylases: propionyl-CoA (PCC), 3-methylcrotonyl-CoA (MCC) and pyruvate carboxylase (PC), and for simultaneous evaluation of biotin-responsiveness using a single blood sample. Lymphocytes were isolated from heparinized blood and preincubated without and with 10(-5) mol/l biotin in medium before determination of PCC, MCC and PC activities. Plasma was used for estimation of biotin concentration and biotinidase activity. A definitive diagnosis could be made in 7 of 9 patients studied up to now: 4 patients suffered from biotin-nonresponsive isolated PCC-deficiency, and 3 patients from biotin-responsive multiple carboxylase deficiency caused by deficient biotinidase activity. In two patients, a carboxylase deficiency was excluded. These results were confirmed in studies using fibroblasts. In addition, a simple method for detection of deficiency in holocarboxylase synthesis is described.

Acyl Coenzyme A

Ocular aspects in biotinidase deficiency. Clinical and genetic original studies.

There are two distinct forms of multiple carboxylase deficiency. A neonatal onset form is due to deficiency of holocarboxylase-synthetase. A later onset form in which neurological abnormalities are seen as well as those of the skin and hair is due to biotinidase deficiency. It is the purpose of this report to describe a patient with biotinidase deficiency who presents bilateral optic atrophy. The dosage of biotinidase enzyme in the patient's serum and in other members of his family confirms the autosomal recessive transmission of this condition.

Alopecia

[Biotinidase deficiency--a progressive metabolic disease in children with seizures and ataxia].

Biotinidase deficiency is the primary biochemical defect in late-onset multiple carboxylase deficiency and an autosomal recessive disorder and characterized by seizures, ataxia, alopecia and skin rash. We describe a colorimetric semiquantitative method for screening for biotinidase activity from dried samples of whole blood spotted on filter papers. The administration of biotin to affected children can be a lifesaving procedure and can prevent irreversible neurologic damage.

Amidohydrolases

Effect of biotin deficiency and supplementation on lipid metabolism in rats: cholesterol and lipoproteins.

The effect of biotin deficiency and supplementation upon tissue cholesterol and serum lipoprotein profile in rats was investigated. Biotin-dependent carboxylases in liver of deficient animals were decreased to 12-27% of control activity. The brain carboxylase activities of deficient rats were reduced less than in liver. The total, free, and esterified cholesterol were decreased in the serum of deficient rats compared to those in control or supplemented rats. Deficient rats had increased serum low-density lipoprotein fractions and decreased very low-density lipoprotein fractions, but no change in the high-density lipoprotein fractions. No differences were found between groups in the cholesterol content of liver, cerebrum, or cerebellum. Pharmacologic doses of biotin had no effect on tissue cholesterol content or serum lipoprotein profile. These results suggest that the neurologic symptoms in biotin deficiency and in the inherited multiple carboxylase deficiencies are not due to alterations in the content of cholesterol or lipoproteins.

Acetyl-CoA Carboxylase