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Nutrition support for glutaric acidemia type I.

Glutaric acidemia type I is a rare, autosomal recessive, inborn error of lysine and tryptophan metabolism. This disorder is caused by a defect in the mitochondrial enzyme glutaryl-coenzyme A dehydrogenase, resulting in permanent or episodic elevations of glutaric acid. Despite clinical variability, untreated children often experience progressive neurologic damage that frequently leads to death. Recent evidence suggests that a lysine- and tryptophan-restricted diet and pharmacologic therapy with oral riboflavin and L-carnitine may arrest the neurologic deterioration. Several cases of normal growth and development have been reported in children diagnosed and treated before neurologic insult. In this article, we review previously published experience with dietary and pharmacologic therapy and provide guidelines for nutrition support based on our experience of treating four affected children. We suggest that dietary restriction of lysine and tryptophan is a safe and potentially effective therapy for individuals with glutaric acidemia type I.

Amino Acid Metabolism, Inborn Errors↗

Identification of glutarylcarnitine in glutaric aciduria type 1 by carboxylic acid analyzer with an ODS reverse-phase column.

A technique for the identification of glutarylcarnitine in urine from a patient with glutaric aciduria type 1 is described. The patient's urine sample was partially purified using an anion exchange column and analyzed by a carboxylic acid analyzer fitted with an ODS reverse-phase column. The chromatogram of the patient's urine sample revealed 3 different peaks, which corresponded respectively to those of carnitine with amino acids, acetylcarnitine and glutarylcarnitine. Following hydrolysis of the sample, the chromatogram had no peaks of acetylcarnitine and glutarylcarnitine but had remarkably amplified peaks of carnitine, acetic acid and glutaric acid. The eluent fraction of glutarylcarnitine from the non-hydrolyzed sample was hydrolyzed and analyzed again. It no longer had the glutarylcarnitine peak on the chromatogram, but had only two separate peaks of carnitine and glutaric acid. This technique simplifies the identification of glutarylcarnitine, in that it requires only removal of organic acids for preparation of samples, and does not require radioisotope or mass spectrometry.

Acetylcarnitine↗

Chronic subdural hematoma, as an initial manifestation of glutaric aciduria type-1.

A 10-month-old male with glutaric aciduria type-1 (GA-1) is reported. This patient showed frequent partial motor seizures, irritability, and involuntary movements, including oral dyskinesia at the age of 3 months. On admission, magnetic resonance (MR) scanning revealed a chronic subdural hematoma and widening of the bilateral insular cisterns. Urine organic acid analysis showed marked excretion of glutaric acid, 3-hydroxy glutaric acid and glutaconic acid, suggesting GA-1. Removal of the subdural hematoma was effective for the irritability but not for the extrapyramidal signs. This is the first report of a subdural hematoma as an initial symptom in a patient with GA-1. However, the complication of subdural fluid collection in GA-1 is not rare. To our knowledge, of 29 patients with GA-1 who underwent computed tomographic or MR scans, 5 had subdural fluid collection. Disproportional hypoplasia of the temporal lobes may be a suggestive etiology of subdural fluid collection/chronic subdural hematoma.

Amino Acid Metabolism, Inborn Errors↗

Glutaric acidemia type II: neuroimaging and spectroscopy evidence for developmental encephalomyopathy.

Glutaric acidemia type II is associated with neonatal hypoketotic hypoglycemia, metabolic acidosis, profound hypotonia, progressive cardiomyopathy, and early death. Deficiency of either electron transfer flavoprotein or electron transport flavoprotein:ubiquinone oxidoreductase leads to intramitochondrial accumulation of metabolites of compounds oxidized by enzymes that transfer electrons to flavoprotein. No detailed results of antemortem neuroimaging or magnetic resonance spectroscopy have been described previously. We investigated a patient with typical neonatal onset glutaric acidemia type II without obvious dysmorphogenesis or renal malformations. Cranial tomographic scan revealed hypoplastic temporal lobes and marked widening of the sylvian fissures ("bat-wing" appearance). Cranial magnetic resonance imaging documented underdeveloped frontal and temporal lobes with delayed myelination and hypoplasia of the corpus callosum. 31P-Magnetic resonance spectroscopy of muscle was grossly abnormal with a very low energy state consistent with mitochondrial dysfunction. 1H-Magnetic resonance spectroscopy of brain revealed elevated intracerebral lactate concentration and abnormally high choline/creatine ratio suggestive of dysmyelination. These findings constitute the first in vivo evidence of a developmental encephalomyopathy in glutaric acidemia type II.

Age of Onset↗

Glutaric aciduria types I and II.

Glutaric aciduria type I is an autosomal recessive disorder resulting from a deficiency of glutaryl-CoA dehydrogenase. This leads to an accumulation of glutaric and 3-hydroxyglutaric acids and secondary carnitine deficiency. The symptomatology is discussed, especially those resulting from lesions in the basal ganglia, and the encephalopathic episodes which are often precipitated by infections. The variability of the clinical presentation is stressed. The most serious complications are collections of fluid and blood in the middle fossae, the bleeding resulting from rupture of bridging veins. The prognosis does not seem to be related to the extent of the enzyme deficiency. The diagnosis is confirmed by identifying the abnormal acids in the urine and the deficiency of the enzyme in cultured fibroblasts. The differential diagnosis is reviewed: from other biochemical disorders and from other cerebral lesions. Treatment is by special diet and carnitine supplementation. The dystonia can prove difficult to treat, and surgery may be needed to remove the collections of fluid and blood. Glutaric aciduria type II is caused by a deficiency of either electron transport flavoprotein or of electron transport flavoprotein oxoreductase. The symptoms can be mild or severe. The former may only occur in times of stress, and the latter include congenital anomalies, especially of the kidneys and heart. The pathology of these are discussed. The demonstration of organic acids in the urine and the results of muscle and liver biopsies confirm the diagnosis, and treatment with a special diet and supplementation with carnitine and riboflavine is effective.

Carnitine↗

Riboflavin-responsive glutaric aciduria type II with recurrent pancreatitis.

A 22-year-old woman had suffered from several episodes of acute pancreatitis since the age of 11. Other than exercise intolerance since early childhood, her psychomotor development was normal. At age 21, she experienced two episodes of generalized muscle weakness including acute respiratory failure and hepatomegaly. Liver biopsy indicated fatty metamorphosis, and muscle biopsy revealed vacuolar myopathy with lipid accumulation. Biochemical investigations demonstrated elevated serum creatine kinase and elevated 2-hydroxylglutaric, pyruvic, ethylmalonic, hippuric, adipic, and seburic acids in urinary organic acid analysis. These findings confirmed the diagnosis of glutaric aciduria type II. Although acute pancreatitis in glutaric aciduria type II has been reported previously, this is the first reported case of recurrent pancreatitis occurring in glutaric aciduria type II. We treated the patient with l-carnitine and riboflavin. As of the latest follow-up 2.5 years later, the patient has had no further episodes of muscle weakness or pancreatitis. We suggested analyzing urine organic acid when lipid storage myopathy is suspected.

Acyl-CoA Dehydrogenase↗

Pharmacological evidence for GABAergic and glutamatergic involvement in the convulsant and behavioral effects of glutaric acid.

The effect of intrastriatal administration of glutaric acid (GTR), a metabolite that accumulates in glutaric acidemia type I (GA-I), on the behavior of adult male rats was investigated. After cannula placing, rats received unilateral intrastriatal injections of GTR buffered to pH 7.4 with NaOH or NaCl. GTR induced rotational behavior toward the contralateral side of injection and clonic convulsions in a dose-dependent manner. Rotational behavior was prevented by intrastriatal preadministration of DNQX and muscimol, but not by the preadministration of MK-801. Convulsions were prevented by intrastriatal preinjection of muscimol. This study provides evidence for a participation of glutamatergic non-NMDA and GABAergic mechanisms in the GTR-induced behavioral alterations. These findings may be of value in understanding the physiopathology of the neurological dysfunction in glutaric acidemia.

Animals↗

Glutaric aciduria type I: unusual biochemical presentation.

We describe a patient with glutaryl-coenzyme A dehydrogenase deficiency, demonstrated by a residual enzyme activity of only 1% in cultured fibroblasts. Although the clinical presentation was typical of glutaric aciduria type I, the urine concentrations of glutaric, glutaconic, and 3-hydroxyglutaric acids remained normal, even during episodes of clinical decompensation. An increased free glutarate level was demonstrated only in cerebrospinal fluid.

Carnitine↗

Glutaric aciduria: clinical and laboratory findings in two brothers.

In two siblings with dystonic cerebral palsy the urinary metabolic profiles of organic acids were dominated by glutaric acid, a metabolite not normally present in urine. The exretion of glutaric acid amounted to several grams per day. The urinary excretion of beta-OH-glutaric acid and glutaconic acid was also enhanced. Imparied metabolism of glutaryl-CoA by leukocytes indicates that the patients suffer from an inborn error of lysine, tryptophan, and hydroxylysine metabolism. A defective oxidation of glutaryl-CoA to crotonyl-CoA, probably due to a deficiency of glutaryl-CoA dehydrogenase, is consistent with these findings.

Amino Acid Metabolism, Inborn Errors↗

Glutaric aciduria type I: enzymatic and neuroradiologic investigations of two kindreds.

Two kindreds with glutaric aciduria type I were investigated. Of 20 family members who underwent neurologic examination and organic acid analysis of urine, 18 had glutaryl-coenzyme A dehydrogenase (GDH) activity determined in cultured skin fibroblasts and 12 had computed tomographic brain scans. Six homozygotes were identified who had undetectable GDH activity and identical biochemical profiles (consisting of glutaric and 3-hydroxyglutaric aciduria, reduced serum carnitine concentrations, and frontotemporal atrophy). Serial computed tomographic brain scans of one homozygous infant demonstrated the sequential postnatal development of this atrophy during 3 years before the development of clinical manifestations. In three of the six homozygotes, including the father in one kindred, there were no clinical manifestations of glutaric aciduria type I. These findings raise questions about the value of prenatal diagnosis in predicting clinical manifestations in homozygous newborn infants.

Adult↗

[Type I glutaric aciduria: an unrecognized cause of progressive dystonia].

INTRODUCTION: Glutaric acidemia type I is one of the least rare organic acidemias. The number of diagnosed causes is however still low because the presentation is variable and often confusing. The disease may sometimes have a slowly progressive course. Typically, it presents in infancy, mimicking acute encephalitis, leaving a previously healthy child severely handicapped with generalized dystonia, spastic quadriplegia or choreoathetosis. Cerebral MRI shows large CSF-containing spaces (sylvian fissures and anterior to the temporal lobes) and basal ganglia abnormal signal. CASE REPORT: An eight year-old boy had begun at 18 months with motor difficulties and abnormal posture of upper and lower left limbs. When examined, he had generalized dystonia more pronounced at the left side, severe dysarthria and tongue dystonia. IQ was normal. MRI showed high T2 signal in basal ganglia and enlarged CSF containing spaces. Urinary organic acids chromatography confirmed glutaric acidemia type I. Two of his sisters deceased before the age of two years with a clinical picture of fever, seizures and hypotonia. Another sister had the same symptoms at the same age. She lived until 10 year with severe quadriplegia. COMMENTS: Our observation shows variability of clinical picture and course of glutaric acidemia type I in the same kindred. We propose systematic organic acides chromatography in all children with acute or progressive dystonia with basal ganglia abnormalities on MRI. This seems an imperative attitude because appropriate diet could slow the progression of the illness.

Amino Acid Metabolism, Inborn Errors↗

Glutaric aciduria type I diagnosed after poliovirus immunization: magnetic resonance findings.

Glutaric aciduria type I is an uncommon inborn error of metabolism. It is a serious disease, often with a fatal outcome. Magnetic resonance imaging findings and the clinical course of monozygotic twin females with glutaric aciduria type I who were admitted with acute encephalopathic crisis symptoms 3 days after immunization for poliovirus are presented in this report. Magnetic resonance imaging findings revealed hyperintensity in the putamen, head of the left caudate nucleus, and globus pallidus, periventricular white matter (on T(2)-weighted images), arachnoid cysts in bilateral temporal regions, and enlargement of the sylvian fissures. Glutaric aciduria type I should be included in the differential diagnosis of patients with acute encephalopathic crisis occurring shortly after poliovirus immunization. Typical magnetic resonance findings guide urinary organic acid analysis in these patients.

Diagnosis, Differential↗

[Vegetarian diet in glutaric aciduria type I].

Glutaric aciduria type I is an autosomal recessive metabolic disease (1 case/30,000) characterized by a progressive dystonic-diakinetic syndrome in children. Pathologic examination reveals striatal degeneration of the caudate and putamen nucleus and biochemical analysis shows glutaryl CoA dehydrogenase deficiency. Values of glutaric and -hydroxyglutaric acids in urine are usually increased. Currently, the disease is considered untreatable since there are usually irreversible lesions in the central nervous system at diagnosis. However, treatment can be provided to pre-symptomatic children and usually to the siblings of patients with this diagnosis. We present the case of a 23-month-old boy, with macrocephaly and minimal neurologic manifestations at diagnosis, which were attributed to his semivegetarian diet. A dietary regimen and vitamin supplementation halted and even improved symptomatic progression of the disease. We conclude that amino and organic acids in urine should be investigated in all children with progressive macrocephaly of unknown etiology to rule out glutaric aciduria type I.

Amino Acid Metabolism, Inborn Errors↗

Hypothesis: a role for quinolinic acid in the neuropathology of glutaric aciduria type I.

Glutaric aciduria type I is an autosomal recessive metabolic disorder of children associated with severe dystonic motor disturbances and degeneration in the cerebral cortex, striatum and cerebellum. Biochemical studies demonstrate a deficiency in the enzyme glutaryl-CoA dehydrogenase. This enzyme metabolizes substrate derived from dietary tryptophan that could otherwise be converted to quinolinic acid within the brain. The law of mass action predicts that the production of quinolinic acid should be increased in glutaric aciduria type I. Quinolinic acid is a potent neurotoxin and convulsant when it is injected into the central nervous system of experimental animals. This paper argues that quinolinic acid may accumulate within the brain and cause the neuropathology of glutaric aciduria type I.

Brain Diseases↗

[Hyperthyroidism in early childhood and a very rare variant of glutaric aciduria: coincidence or causal relation?].

Hyperthyrosis is a rare disease in early childhood typically characterized by tachycardia, restlessness, elevated body temperature, failure to thrive, diarrhoea, goiter and a tendency to hyperglycaemia. A 3-year old boy presented with typical symptoms of thyrotoxicosis accompanied by ketotic hypoglycemia and excessively high glutaric acid excretion. To our knowledge this association has so far not been described. Specific defects responsible for glutaric aciduria types I & II were excluded. Our patient suffered from glutaric aciduria type III which was described once and is characterized by mild metabolic signs.

Age Factors↗

Recurrent hypoglycemia associated with glutaric aciduria type II in an adult.

Repeated episodes of hypoglycemia accompanied by elevated serum concentrations of free fatty acid without ketosis, fatty infiltration of the liver, hepatic dysfunction, and proximal myopathy in a 19-year-old woman, prompted us to analyze her urine for organic acids. Greatly increased quantities of glutaric acid, ethylmalonic acid, dicarboxylic acids with six to 10 carbons, and isovalerylglycine were consistently found in her urine. The ability of cultured skin fibroblasts from the patient to oxidize [1(-14)C]butyrate and [2(-14)C]lysine was reduced. These urinary and in vitro findings indicated defective activity of several acyl coenzyme A dehydrogenases, including glutaryl, isovaleryl, and butyryl coenzyme A dehydrogenases -- establishing a diagnosis of glutaric aciduria Type II. Carnitine concentrations in the skeletal muscle and liver were moderately reduced, but carnitine deficiency was considered a secondary biochemical abnormality. Although glutaric aciduria Type II has previously been described only in a neonate, the disease must be considered in the differential diagnosis of hypoglycemia in adults.

Adult↗

Biochemical, pathologic and behavioral analysis of a mouse model of glutaric acidemia type I.

Glutaric acidemia type I (GA-I) is an autosomal recessive disorder of amino acid metabolism resulting from a deficiency of glutaryl-CoA dehydrogenase (GCDH). Patients accumulate glutaric acid (GA) and 3-OH glutaric acid (3-OHGA) in their blood, urine and CSF. Clinically, GA-I is characterized by macrocephaly, progressive dystonia and dyskinesia. Degeneration of the caudate and putamen of the basal ganglia, widening of the Sylvian fissures, fronto-temporal atrophy and severe spongiform change in the white matter are also commonly observed. In this report we describe the phenotype of a mouse model of GA-I generated via targeted deletion of the Gcdh gene in embryonic stem cells. The Gcdh-/- mice have a biochemical phenotype very similar to human GA-I patients, including elevations of GA and 3-OHGA at levels similar to those seen in GA-I patients. The affected mice have a mild motor deficit but do not develop the progressive dystonia seen in human patients. Pathologically, the Gcdh-/- mice have a diffuse spongiform myelinopathy similar to that seen in GA-I patients. However, unlike in human patients, there is no evidence of neuron loss or astrogliosis in the striatum. Subjecting the Gcdh-/- mice to a metabolic stress, which often precipitates an encephalopathic crisis and the development of dystonia in GA-I patients, failed to have any neurologic effect on the mice. We hypothesize that the lack of similarity in regards to the neurologic phenotype and striatal pathology of GA-I patients, as compared with the Gcdh-/- mice, is due to intrinsic differences between the striata of mice and men.

Amino Acid Metabolism, Inborn Errors↗

Pelospora glutarica gen. nov., sp. nov., a glutarate-fermenting, strictly anaerobic, spore-forming bacterium.

The strictly anaerobic, Gram-negative, spore-forming bacterium strain WoGl3T had been enriched and isolated in mineral medium with glutarate as the sole source of energy and organic carbon. Glutarate was fermented to a mixture of butyrate, isobutyrate, CO2 and small amounts of acetate. Strain WoGl3T grew only with the dicarboxylates glutarate, methylsuccinate and succinate. 16S rDNA sequence analysis revealed an affiliation of strain WoGl3T to the family Syntrophomonadaceae. This monophyletic group is comprised of strain WoGl3T and the genera Syntrophomonas, Syntrophospora and Thermosyntropha, within the phylum of Gram-positive bacteria with a low DNA G + C content. Overall intra-group 16S rRNA sequence similarities of 89.2-93.9% document a separate phylogenetic status for strain WoGl3T. Strain WoGl3T (= DSM 6652T) is described as the type strain of a new species within a new genus, Pelospora glutarica gen. nov., sp. nov.

DNA, Bacterial↗