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L-Glutaric acidemia: investigation of a patient and his family.

A 5-month-old infant had an unusual combination of clinical signs and symptoms. These consisted of irritability, dystonia, lack of head control, grimacing, opisthotonos, choreoathetoid movements, delayed development, and severe metabolic acidosis. Metabolic investigation by gas-liquid chromatography/mass spectrometry detected urinary organic acids. This confirmed the diagnosis of L-glutaric aciduria. The concentration of L-glutaric acid in the patient's plasma was 2.5 mg/dl (normal range, 0 to 0.1 mg/dl), and in the patient's urine was 4.6 mg/mg of creatinine (normal range, 0 to 0.05 mg/mg of creatinine), but the concentration was not elevated in the plasma and urine of the infant's parents nor of two other family members. No glutaryl-CoA dehydrogenase activity was found in leukocytes taken from the patient. Three of the four family members, including the parents, demonstrated 38%, 42%, and 42% activity, respectively, compared with the activity of normal controls. These findings are consistent with an autosomal recessive disorder involving the metabolism of glutaryl-CoA to crotonyl-Co-a. Dietary restriction was instituted on two separate occasions. First, a low protein diet of 1.6 gm/kg of body weight per day was given, then a low lysine intake of 50 mg/kg/day. These dietary manipulations caused a decrease in the plasma and urine concentrations of L-glutaric acid and beta-hydroxyglutaric acid. However, no effect on the clinical manifestations of the disease was noted.

Amino Acid Metabolism, Inborn Errors

Odd-Chain Dicarboxylic Acid Feeding Produces a Glutaric Aciduria Type 1-Like Metabolic Signature in Mice.

Glutaric aciduria type-1 (GA1) is an inherited mitochondrial neurometabolic disorder with a poorly understood pathogenesis and unmet medical needs. GA1 can be diagnosed via its hallmark biochemical signature consisting of glutaric aciduria, 3-hydroxyglutaric aciduria, and increased plasma glutarylcarnitine. These glutaryl-CoA-derived metabolites are thought to originate solely in the mitochondria. Here, we demonstrate that wild-type mice fed an 11-carbon odd-chain dicarboxylic acid (undecanedioic acid, DC11) recreate the biochemical phenotype of GA1. Odd-chain dicarboxylic acids like DC11 are not present in food but can arise from several endogenous processes, such as lipid peroxidation and fatty acid ω-oxidation. DC11 is chain-shortened in peroxisomes to glutaryl (DC5)-CoA, which then gives rise to the GA1-like pattern of DC5 metabolites in urine, tissues, and blood. Glutaric acid released from peroxisomes during DC11 chain-shortening can enter mitochondria for reactivation by the enzyme succinyl-CoA:glutarate-CoA transferase (SUGCT) and become substrate for glutaryl-CoA dehydrogenase (GCDH), the enzyme that is deficient in GA1. Our data provide proof-of-concept that the generation of dicarboxylic acids by ω-oxidation, which is stimulated during the same catabolic states known to trigger acute encephalopathy in GA1, may exacerbate disease by increasing the glutaryl-CoA substrate load in mitochondria.

Animals

Demonstration of N-dicarboxyl-mono-glycines in dicarboxylic acidurias by mass fragmentography.

Urine samples from 18 individuals with various types of dicarboxylic acidurias have been investigated by mass fragmentography for N-dicarboxyl-mono-glycines (dicarboxylglycines). One patient with methylmalonic acidemia excreted 14-20 microgram methylmalonylglycine/mg creatinine, three patients with glutaric aciduria excreted 20-60 microgram glutarylglycine/creatinine, and one patient with C6-C10-dicarboxylic aciduria excreted 120-365 microgram succinylglycine/mg creatinine. Excretion of C6-C10-dicarboxylic acids in patients with ketosis and glycogenosis and in neonates were not accompanied by excretion of C8-C10-dicarboxylglycines in measurable amounts (greater than 1 microgram/mg creatinine). Nor did patients with succinic aciduria excrete succinylglycine in amounts larger than 1 microgram/mg creatinine. On the basis of these data it is argued that production of short- and medium-chain dicarboxylglycines is not a metabolic pathway of biological significance for the elimination of short- and medium-chain dicarboxylic acids from individuals with dicarboxylic acidurias.

Adolescent

Organic acidemias.

Inherited organic acidemias are a group of metabolic disorders currently being described and investigated as gas-liquid chromatography is applied to unexplained diseases of infancy and childhood. Common clinical presentations include attacks of ketoacidosis, unexplained metabolic acidosis, failure of normal development, seizures, and other neurologic abnormalities. Hyperglycinemia, hyperammonemia, and hypoglycemia are other laboratory findings frequently present. Diagnosis depends on examination of urine, and sometimes blood, by gas-liquid chromatography to measure concentrations of organic acids and organic acid derivatives. Prognosis in many cases is excellent if diagnosis is made promptly and the metabolic acidosis can be reversed. Recovery from neurologic deficits has frequently been seen. Long-term therapy is generally dependent on restricting precursors of the toxic organic acid which builds up as a consequence of the enzyme deficiency. If there is some enzyme activity retained or if alternate metabolic pathways exist, success with therapy is likely.

Acidosis, Renal Tubular