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Biomedical subjects

K Kidouchi

Publications and source records attributed to K Kidouchi.

36 records · Page 2Linked to original sources

Effect of carnitine administration on glycine metabolism in patients with isovaleric acidemia: significance of acetylcarnitine determination to estimate the proper carnitine dose.

In isovaleric acidemia (IVA), accumulated isovaleryl-CoA in the mitochondrion induces variable metabolic disturbances. To remove intramitochondrial isovaleryl groups, glycine therapy has been advocated primarily. On the other hand, secondary carnitine deficiency has been documented in this disorder and carnitine supplementation alone has been reported to be effective. In the present study, we administered carnitine and glycine to patients with IVA, and investigated serum carnitine and urinary excretion of total and free carnitine, acylcarnitine profile (i.e., isovalerylcarnitine and acetylcarnitine), and isovalerylglycine. By adding carnitine to glycine supplementation, more isovalerylglycine, not only isovalerylcarnitine, was excreted in the urine. Acetylcarnitine was detected in the urine only when sufficient carnitine was supplemented. We concluded that combined therapy of glycine and carnitine is more effective and safer to eliminate isovaleryl-CoA in IVA than conventional therapy using either glycine or carnitine. Urinary acetylcarnitine concentration might be a good marker indicating the optimal dose of L-carnitine supplementation.

Acetylcarnitine↗

Possible prediction of adverse reactions to pyrimidine chemotherapy from urinary pyrimidine levels and a case of asymptomatic adult dihydropyrimidinuria.

Deficiency of dihydropyrimidine dehydrogenase or dihydropyrimidinase, enzymes that catalyze the breakdown of pyrimidine chemotherapy agents such as 5-fluorouracil, may cause serious adverse reactions to these agents. We attempted to establish the reference range for urinary pyrimidines in adults to detect individuals with abnormal pyrimidine metabolism. We analyzed urinary pyrimidine levels in 1133 adults to establish a reference range for persons ages 20 years or older. Urinary dihydrouracil and uracil levels were determined by high-performance liquid chromatography with column switching. The reference range obtained was found to be 0-59.3 micromol/g creatinine for dihydrouracil and 0-129.8 micromol/g creatinine for uracil. In addition, an asymptomatic man with suspected dihydropyrimidinase deficiency was detected on the basis of dihydropyrimidinuria. Although only three cases of this disease have been found worldwide, including one infant reported previously by our group, it may not be so rare as has been thought. In this man, a 10 mg/kg oral uracil loading test yielded a peak blood dihydrouracil level of 192.1 micromol/liter and a peak uracil level of 67.8 micromol/liter. Eight h after loading, the uracil level was still 11.1 micromol/liter, about 17 times that in healthy subjects. Additional research on dihydropyrimininase deficiency may help to prevent adverse reactions to pyrimidine chemotherapy agents in susceptible individuals.

Adult↗

Automated screening system for purine and pyrimidine metabolism disorders using high-performance liquid chromatography.

An automated screening system for purine and pyrimidine metabolism disorders using high-performance liquid chromatography (HPLC) with column switching is described. The system consists of a reversed-phase column, a cation-exchange column, a column switch, four sets of ultraviolet absorbance detectors, a microcomputer and other conventional equipment. As this system permits the simultaneous determination of urinary orotic acid, uracil, dihydrouracil, pseudouridine, xanthine, 2,8-dihydroxyadenine and succinyladenosine, it offers a useful method for the detection of orotic aciduria, dihydropyrimidine dehydrogenase deficiency, dihydropyrimidinuria, xanthinuria, adenine phosphoribosyltransferase deficiency and adenylosuccinase deficiency.

Adenine↗

Liquid chromatographic-atmospheric pressure chemical ionization mass spectrometric analysis of glycine conjugates and urinary isovalerylglycine in isovaleric acidemia.

n-Acetylglycine, n-propionylglycine, n-butyrylglycine, isobutyrylglycine, n-valerylglycine, isovalerylglycine, heptanoylglycine, phenylacetylglycine and isovalerylglucuronide were identified based on their liquid chromatographic-atmospheric pressure chemical ionization mass spectra (LC-APCI-MS). We were able to detect the presence of urinary isovalerylglycine in two cases of isovaleric acidemia using LC-APCI-MS. Membrane-filtered urine samples were injected into the LC-APCI-MS system in the negative-ion mode without any further pretreatment, and large amounts of isovalerylglycine were detected as the [M-H]- ion. The urinary excretion of isovalerylglycine appeared to increase after L-carnitine therapy. This analytical method is quick and easy and it may be a useful tool in understanding dysfunctional conditions in isovaleric acidemia.

Acidosis↗

Automated determination of hypoxanthine and xanthine in urine by high-performance liquid chromatography with column switching.

We report a high-performance liquid chromatographic method with column switching for urinary hypoxanthine and xanthine. Analyses were carried out with both a reversed-phase column and an anion-exchange column connected by a column switch and controlled automatically by a computerized system controller. The relationships between standard concentrations and peak heights were linear in a concentration range of 1 to 1000 nmol/ml. The recovery of hypoxanthine added to urine was 101.1%, and that of xanthine was 98.1%. With our method urinary hypoxanthine and xanthine can be measured accurately without any sample preparation other than filtration.

Adult↗

Alteration of ammonia and carnitine levels in short-term treatment with pivalic acid-containing prodrug.

We investigated the influence on mitochondrial functions in carnitine deficiency caused by short-term treatment of cefteram-pivoxil (CFTM-PI) which is one of pivaloyloxymethyl-esterified antibiotics in adult volunteers and diseased children. Administration of CFTM-PI caused hypocarnitinemia in all cases, and we observed a significant elevation of blood ammonia levels compared with those after its withdrawal in diseased children. A significant negative correlation was found between the levels of serum free carnitine and blood ammonia, and a positive correlation was observed between serum carnitine and blood glutamine levels in all adult samples and samples during administration in diseased children. Our data suggest that these antibiotic medications affect the mitochondrial function even in a short-term treatment and that L-carnitine supplementation would be necessary for patients treated with CFTM-PI.

Adolescent↗

[Nested polymerase chain reaction for the diagnosis and follow-up of tuberculous meningitis: a case report].

We presented a case of tuberculous meningitis in which a nested polymerase chain reaction was useful for its rapid diagnosis and follow-up. A 5-month-old girl was hospitalized for gastrointestinal complaints of 4 days' duration. She initially had no meningeal signs, but showed a bulging of the anterior fontanel on the 10th day of her illness. Cerebrospinal fluid examination revealed a cell count of 886/3 microliters (80% lymphocytes), protein of 20 mg/dl, and glucose of 27 mg/dl. Tuberculous meningitis was suspected clinically and an antituberculous therapy was commenced on the 13th day. Although repeated attempts to culture Mycobacterium tuberculosis were negative, the DNA of the organism was detected sequentially from the cerebrospinal fluid of the 13th and 16th day by the method of a nested polymerase chain reaction. The final diagnosis of tuberculous meningitis was established on the basis of the positive results of the nested polymerase chain reaction, a positive tuberculin test, and typical cerebrospinal fluid findings. She recovered rapidly in response to the therapy and was discharged from the hospital without any neurological sequelae on the 89th day. The follow-up samples of the nested polymerase chain reaction resulted as negative after the 26th day of the illness.

Female↗

Automated determination of orotic acid, uracil and pseudouridine in urine by high-performance liquid chromatography with column switching.

A column-switching high-performance liquid chromatographic method, requiring no sample preparation apart from filtration, is described for quantification of urinary orotic acid, uracil and pseudouridine. The analyses were carried out using a reversed-phase octadecylsilane-bonded column for sample clean-up and a cation-exchange column for separation; 5-20 microliters samples of urine were directly analysed, and more than 100 samples could be analysed consecutively. Each sample required only 30 min. Detection limits of these compounds were 5 pmol. Creatinine-related urinary uracil excretion was lowest in the newborn period (17.3 +/- 14.4 mumol/g of creatinine). A patient with partial ornithine transcarbamylase deficiency and his mother usually excreted a high level of uracil during the period of normal orotic acid excretion and normal serum ammonia level.

Adolescent↗

Carnitine deficiency in inherited organic acid disorders and Reye syndrome.

A large quantity of propionylcarnitine in the urine of patients with propionic acidemia and methylmalonic aciduria was demonstrated. The amount excreted depended on the administered L-carnitine dose from 25 to 75 mg/kg/day. A high level of propionylcarnitine was also detected in the amniotic fluid of fetuses at risk of methylmalonic aciduria. Glutaric aciduria type 1 was characterized by excessive urinary excretion of glutarylcarnitine. In a neonate with glutaric aciduria type 2, several specific acylcarnitines were detected in the urine. These included isovaleryl-, acetyl-, isobutyryl-, and butyrylcarnitine as major carnitine esters and glutaryl-, and octanoylcarnitine as minor components. However, the pattern of acylcarnitines excreted changed from isovalerylcarnitine (via leucine) to isobutyrylcarnitine (via valine) during early life. In patients diagnosed as Reye syndrome, tissue carnitine deficiency was not always recognized and no decrease in the free/total carnitine ratio was found in the liver or muscle. The clinical and pathophysiological manifestations seen in these disorders are considered to relate to mitochondrial activity. Therefore, it is necessary to measure acylcarnitine fractions in the urine in order to obtain more precise information about mitochondrial function because carnitine and acylcarnitine compounds may express the metabolic state of mitochondria.

Amino Acid Metabolism, Inborn Errors↗

Identification of benzoylcarnitine in the urine of a patient of hyperammonemia.

Benzoylcarnitine was identified in the urine of a patient with a carbamoyl-phosphate synthase I deficiency for whom sodium benzoate and L-carnitine had been used to treat hyperammonemia. This is a newly identified metabolite of benzoate. Its excretion in the urine was increased day by day at the administration of both sodium benzoate and L-carnitine from 0.10 to 2.25 mmol/g creatinine. Since there is the possibility of a secondary carnitine deficiency and an increase of benzoyl toxicity after long-term therapy with benzoate supplementation and protein restriction, it is important to monitor the urinary excretion of benzoylcarnitine.

Ammonia↗

Urinary acylcarnitines in a patient with neonatal multiple acyl-CoA dehydrogenation deficiency, quantified by a carboxylic acid analyzer with a reversed-phase column.

A quantitative analysis for urinary acylcarnitines in a patient with neonatal multiple acyl-CoA dehydrogenation deficiency is described. This method (liquid chromatography) can quantify twelve acylcarnitines including glutarylcarnitine and 3 isomeric acylcarnitines (butyryl-1, valeryl- and octanoylisomer) in urine. Before and up to the 15th hour of DL-carnitine therapy, isovalerylcarnitine was the largest single component existing in urinary acylcarnitines. Its excretion increased approximately 10 times within 1 day of DL-carnitine therapy. However, the acetyl-, the isobutyryl- and the butyrylcarnitine values increased gradually. From the 8th day of the therapy, the isobutyrylcarnitine value exceeded the isovalerylcarnitine. The patient's dominant urinary specific acylcarnitine derived from amino acids oxidation deficiency was changed from isovalerylcarnitine(leucine) to isobutyrylcarnitine(valine) during the early period of DL-carnitine therapy. Glutarylcarnitine was a minor component in the urine. Its degree of increase was as small as that of octanoylcarnitine. 2-Methylbutyrylcarnitine and propionylcarnitine were not detected.

Acyl-CoA Dehydrogenase↗

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↗