Clinical correlation of dysequilibrium syndrome and 4-hydroxybutyric aciduria.
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Biomedical subjects
Publications and source records attributed to L Sweetman.
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Lysates of lymphocytes, isolated from whole blood, and Epstein-Barr virus transformed cultured lymphoblasts catalysed the transamination of 4-aminobutyric acid with 2-oxoglutaric acid as co-substrate. 4-Aminobutyric acid aminotransferase activity in lymphocyte and lymphoblast sonicates derived from 12 unrelated control individuals (6 each) was 39 +/- 19 pmol min(-1) (mg protein (-1] (mean +/- 1 SD). Activities in lysates of both types of cell derived from a Flemish patient were less than 3% of control. 4-Aminobutyric acid aminotransferase activity in sonicates derived from the parents and a healthy sibling were 15-37% of the control mean for lymphocytes and 13-20% of the control mean in lymphoblasts, respectively. Km values in a control lymphoblast sonicate were 0.63 and 0.08 mmol L(-1) for 4-aminobutyric and 2-oxoglutaric acids, respectively. These data indicate that the parents and healthy sibling are heterozygous and the patient is homozygous for a defective gene responsible for 4-aminobutyric acid aminotransferase deficiency, and that inheritance is autosomal recessive.
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A 3-month-old girl and a 13-month-old boy with vitamin B12-unresponsive methylmalonic acidaemia were studied to determine responses to varying levels of protein intake of growth, nitrogen balance and organic acid metabolism. A linear increase in the excretion of methylmalonic acid was observed in both patients above a critical level of protein intake. The inflection point was judged to reflect a ceiling above which amino acid intake exceeded requirements and catabolism was initiated. Below this point in each infant there was a plateau of minimal excretion of methylmalonic acid. Within this plateau level a reasonable rate of growth and metabolic stability were achieved at intakes between 0.70 and 0.75 and between 0.75 and 1.17 g protein kg-1, respectively, indicating that there is a range of protein tolerance and the importance of an individual approach to the provision of protein in patients with methylmalonic acidaemia. In the 3-month-old infant, nitrogen equilibrium was achieved at protein intakes above 0.6 g kg-1 and modest nitrogen retention was attained at a protein intake of 0.75 g kg-1, a level at which the excretion of methylmalonic acid was minimal and weight gain satisfactory. A protein intake of 1.25 g kg-1 was required to achieve a level of nitrogen retention often considered optimal for normal growth; however, this infant demonstrated an elevated excretion of methylmalonic acid and was close to clinical illness at this level of protein intake. The 13-month-old infant demonstrated a normal level of nitrogen retention, minimal excretion of methylmalonic acid, and a satisfactory rate of growth at protein intakes of 1.0-1.17 g kg-1. The values should prove useful guidelines for the management of infants requiring minimal intakes of protein. In studies carried out at 18-20 months of age, supplementation of the basic diet containing 0.75 g kg protein-1 with a mixture of amino acids not containing the precursors of methylmalonic acid was associated with increase of retention of nitrogen and increased concentrations of some essential amino acids in plasma, but effects on growth and the excretion of methylmalonic acid were not significant.
Biotin deficiency associated with total parenteral nutrition is an emerging clinical problem; criteria for diagnosis and dosage for treatment are unclear. We have diagnosed and successfully treated biotin deficiency in three patients. Each patient had alopecia totalis, hypotonia, and developmental delay. Two developed the characteristic scaly periorificial dermatitis; one had only an intermittent scaly rash on the cheeks and occipital scalp. Zinc and essential fatty acid supplements were adequate; serum zinc levels and triene/tetraene ratios confirmed sufficiency of these nutrients. None of the patients received biotin prior to diagnosis, and each had decreased excretion of urinary biotin and increased urinary excretion of organic acids diagnostic of deficiency of two biotin-dependent enzymes (methylcrotonyl-coenzyme A carboxylase and priopionyl-coenzyme A carboxylase). Only one patient had a plasma biotin concentration below the normal range (Ochromonicas danica assay). The rash, alopecia, and neurologic findings responded dramatically to biotin therapy (100 micrograms/day in all patients; an initial larger dose of 1 mg/day for 1 week plus 10 mg/day for 7 weeks in one patient), and did not recur. However, abnormal organic acid excretion persisted in one patient who did not receive the larger dose. We conclude that plasma biotin concentration does not reflect biotin status in all cases and speculate that the biotin supplement currently recommended for pediatric patients (20 micrograms/day) may not be adequate therapy for biotin deficiency and might not even be adequate to maintain normal biotin status during TPN.
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A direct assay has been developed for succinic semialdehyde dehydrogenase in sonicates of human lymphocytes and Epstein-Barr Virus transformed cultured lymphoblasts. Enzyme activity was quantified by incubating cell extracts with uniformly labeled [14C]succinic semialdehyde and monitoring the conversion to [14C]succinic acid. Radiolabeled products were separated by liquid partition chromatography on hydrated silicic acid. Kinetic properties and requirements of succinic semialdehyde dehydrogenase in lymphoblast sonicates were investigated in order to determine optimal conditions for the direct assay. Enzyme activity was stimulated by dithiothreitol, ammonium and potassium ions and 0.1% Triton X-100. The concentrations for half maximal activation by ammonium and potassium were 5.2 and 13.7 mM respectively. The mean activity of succinic semialdehyde dehydrogenase in assays in which equimolar NADP+ had been substituted for NAD+ was 19% of the activity of assays which contained NAD+. Substrate Michaelis constants were 21 and 30 microM for NAD+, and 26, 42 and 70 microM for succinic semialdehyde. The enzyme displayed a pH optimum between 8 and 9 and demonstrated a slight temperature activation between 37 degrees and 45 degrees C. A deficiency of succinic semialdehyde dehydrogenase activity was documented in cultured lymphoblasts derived from a patient with gamma-hydroxybutyric aciduria.
The metabolism of leucine was studied in cultured human fibroblasts derived from patients with defects in each of the major steps in the catabolism of the amino acid. Intact fibroblasts were incubated with [U-14C]leucine and the organic acid products were isolated by liquid partition chromatography. In control fibroblasts the major product of leucine was 3-hydroxyisovaleric acid. This was also the case for fibroblasts with deficiency of 3-hydroxy-3-methylglutaryl-CoA lyase, 3-methylcrotonyl-CoA carboxylase and 3-methylglutaconyl-CoA hydratase. There was little or no accumulation of the compound with fibroblasts from patients with maple syrup urine disease and isovaleric acidemia.
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.
Rapid, sensitive and accurate stable isotope dilution assays were developed for the measurement of orotic acid and uracil in amniotic fluid. The method utilizes [15N2]orotic acid and [15N2]uracil as internal standards, isolation by liquid partition chromatography and quantitation by chemical ionization selected ion monitoring gas chromatography-mass spectrometry. Orotic acid at a concentration of 0.26 +/- 0.05 mumol/l and uracil at a concentration of 0.55 +/- 0.13 mumol/l were detectable in normal amniotic fluid. As affected fetuses with argininosuccinate synthetase or ornithine carbamoyl transferase deficiency showed no significant elevation of orotic acid and/or uracil in their surrounding amniotic fluids, this method unfortunately seemed not to be useful for prenatal diagnosis of these inherited disorders. Nevertheless, it provides significant advantage over available methods for the quantitation of orotic acid and uracil in which the analysis of these compounds must be very accurate, highly specific and sensitive (e.g. detection of heterozygosity for ornithine carbamoyl transferase deficiency).
A method is described in which ammonia chemical ionization gas chromatography-mass spectrometry was utilized in the selected ion monitoring mode to provide an accurate, selective approach to the quantification in amniotic fluid of a number of hydroxylated organic acids derived from the metabolism of the branched-chain amino acids. 2-Hydroxy-n-caproic acid was employed as an internal standard and the hydroxy acids were isolated from amniotic fluid by liquid partition chromatography and the trimethylsilyl derivatives were quantified. Normal values have been obtained for 2-hydroxyisovaleric acid, the sum of 2-hydroxyisocaproic acid and 2-hydroxy-3-methylvaleric acid, 2-methyl-3-hydroxybutyric acid, 3-hydroxyisovaleric acid and 2-ethyl-3-hydroxypropionic acid. The method also provides data on the concentration of methylmalonic acid. The concentration of 2-hydroxyisovaleric acid was not useful in the prenatal diagnosis of a fetus with maple syrup urine disease. Elevated concentrations of 2-methyl-3-hydroxybutyric acid as well as methylmalonic acid were found in the amniotic fluid of two fetuses with methylmalonic acidemia.
A method for the measurement of dicarboxylic acids in amniotic fluid was developed that utilizes isolation of the acids by liquid partition chromatography and quantification by ammonia chemical ionization selected ion monitoring, gas chromatography-mass spectrometry. The concentrations of dicarboxylic acids in ten normal samples of amniotic fluid (mumol/l +/- 1 S.D.) were glutaric acid 0.91 +/- 0.15, adipic acid 0.33 +/- 0.08, suberic acid 0.27 +/- 0.08, and sebacic acid 0.21 +/- 0.10. A highly elevated concentration of 14.48 mumol/l glutaric acid was found in the amniotic fluid of a pregnancy in which the fetus was affected with glutaric aciduria type II. Adipic, suberic and sebacic acids were also significantly elevated. The dicarboxylic acids were normal in the amniotic fluid of a pregnancy at risk for glutaric aciduria type II in which the fetus was unaffected. This method is suitable for the rapid prenatal diagnosis of glutaric aciduria types I and II and of potential value for the prenatal diagnosis of other inherited disorders in which dicarboxylic acids accumulate.
Succinic semialdehyde dehydrogenase deficiency has been demonstrated in a fourth patient with 4-hydroxybutyric aciduria. Lysates of freshly isolated lymphocytes and cultured lymphoblasts of the patient had much lower than control activity in the conversion of U-14C-4-aminobutyric acid to 14C-succinic acid in an assay designed to estimate succinic semialdehyde dehydrogenase utilizing endogenous 4-aminobutyrate transaminase. Lymphocyte and lymphoblast lysates of the patient accumulated U-14C-succinic semialdehyde when incubated with U-14C-4-aminobutyric acid and NAD+ whereas none could be detected in controls. Assays using U-14C-succinic semialdehyde as substrate for succinic semialdehyde dehydrogenase in lysates of cultured lymphoblasts characterized the patient as having a severe deficiency of succinic semialdehyde dehydrogenase. The data indicate that defective activity of succinic semialdehyde dehydrogenase is responsible for 4-hydroxybutyric aciduria.
A five-year-old-girl with a history of recurrent hypoglycemia presented with acidosis, intractable vomiting, and abdominal tenderness; the diagnosis of acute pancreatitis was made by abdominal ultrasonography and supportive biochemical studies. Urinary organic acid analysis revealed metabolites suggestive of HMG-CoA lyase deficiency, and subsequent enzyme assays of lymphocytes and fibroblasts confirmed this diagnosis. Acute pancreatitis, an uncommon condition in childhood, is seen with increased frequency in patients with Reye syndrome, a metabolic disorder with which HMG-CoA lyase deficiency may be confused. The pathogenesis of pancreatitis in Reye syndrome or in HMG-CoA lyase deficiency has not been determined.
A quantitative assay for 3-hydroxyisovaleric acid in amniotic fluid was developed using D6-3-hydroxyisovaleric acid as an internal standard. 3-Hydroxyisovaleric acid was isolated by liquid partition chromatography and the amount determined by selected ion monitoring, ammonia chemical ionization gas chromatography-mass spectrometry of the trimethylsilyl derivatives. The concentration of 3-hydroxyisovaleric acid in ten normal amniotic fluid was 4.52 +/- 1.73 mumol/l. The level was elevated eight-fold in the amniotic fluid from a pregnancy resulting in the birth of a child with biotin-responsive multiple carboxylase deficiency. The stable isotope dilution assay of 3-hydroxyisovaleric acid in amniotic fluid is a rapid, sensitive and accurate method for the prenatal diagnosis of this disorder, and may be of value in the prenatal diagnosis of other inherited disorders of leucine catabolism.
Prenatal diagnosis for the genetic counselling of families at risk for having children with the life-threatening organic acidurias is advancing rapidly. The two major approaches to prenatal diagnosis are the assay for deficient activity of the enzymes in cultured amniocytes and the measurement of increased concentrations of the organic acids in the amniotic fluid. The latter, when done by stable isotope dilution analysis, is rapid, relatively inexpensive and very reliable.
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