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Biomedical subjects

F K Trefz

Publications and source records attributed to F K Trefz.

At least 37 records · Page 2Linked to original sources

Maternal mild hyperphenylalaninaemia: an international survey of offspring outcome.

Maternal phenylketonuria (PKU) has adverse effects on the offspring including microcephaly, mental retardation, congenital heart disease, and intrauterine growth retardation. Maternal non-PKU mild hyperphenylalaninaemia (MHP) is believed to be benign, but whether there may be long-term consequences to offspring is unclear. In an international survey we have obtained information about 86 mothers with MHP (blood phenylalanine 167-715 mumol/L), their 219 untreated pregnancies, and 173 offspring. Spontaneous fetal loss (13% of pregnancies), congenital heart disease (2.3% of offspring), and severe non-cardiac anomalies (2.9% of offspring) occurred at frequencies within expected limits for the general population. For weight and length at birth the median percentile was the 50th but that for birth head circumference was the 25th. Median z-scores for birth length and head circumference were significantly lower for offspring of mothers with phenylalanine concentrations above 400 mumol/L than for those whose mothers had lower values (p = 0.05 and p = 0.005, respectively). The median intelligence quotient (IQ) of the offspring (3-27 years) was 100 for those whose mothers had higher phenylalanine concentrations and 108 for those of the lower phenylalaninaemia group. However, offspring IQ correlated slightly more closely with maternal IQ (r = 0.53, p < 0.001) than with maternal phenylalanine concentration (r = 0.45, p = 0.02). Maternal MHP does not seem to have serious consequences for the fetus. A maternal phenylalanine concentration of less than 400 mumol/L does not warrant intervention. Nevertheless, maternal blood phenylalanine above this value is associated with slightly lower birth measurements and offspring IQ than lower maternal blood phenylalanine concentrations.

Adolescent↗

Neurological manifestations of organic acid disorders.

Neurological manifestations are very common and can be the leading and/or presenting feature in organic acid disorders, sometimes in the absence of metabolic derangement. Review of the time course and presentation of neurological disease in organic acid disorders reveals characteristic clinical findings of ataxia, myoclonus, extrapyramidal symptoms, metabolic stroke and megalencephaly. A group of organic acid disorders presents exclusively with neurological symptoms. These include glutaryl-CoA dehydrogenase deficiency (glutaric aciduria type I), succinic semialdehyde dehydrogenase deficiency (4-hydroxybutyric aciduria), mevalonic aciduria, N-acetylaspartic aciduria (Canavan disease) and L-2-hydroxyglutaric aciduria. As a group these "cerebral" organic acid disorders appear to remain often undiagnosed and their true incidence is much less well-known than that of the "classical" organic acid disorders. Unfortunately, stringent guidelines for a clinical preselection of neuropaediatric patients to be investigated for organic acid disorders cannot be provided. Today, screening for neurometabolic disorders should be as comprehensive as possible and include determinations of amino acids, purines and pyrimidines and markers of peroxisomal function in addition to organic acid analysis.

Brain Diseases, Metabolic↗

Genotype-phenotype correlations in phenylketonuria.

Genotyping of the phenylalanine hydroxylating system offers a new way of characterizing patients with phenylalanine hydroxylase (PAH) deficiency. This paper investigates the power of genotyping as a parameter for differential diagnosis and as a measure of the risk factor of brain damage in well-treated patients with phenylketonuria (PKU). Thirty-three PKU patients were followed up over 9 years and the quality of dietary treatment, plasma phenylalanine (phe) in the newborn period before treatment and intellectual outcome at the age of 9 years were measured and correlated with the predicted residual activity (PRA) of the phe hydroxylase system as estimated from mutation analysis of the PAH gene. Patients were grouped in group Ia (PRA = 0%), group Ib (PRA = 5-15%) and group II (PRA > or = 25% of the normal activity). Mean plasma phe levels in the newborn in group Ia were 37.9 +/- 6.5 (2296 +/- 394), in group Ib 40.8 +/- 15.9 (2472 +/- 963) and in group II 16.2 +/- 4.2 (981 +/- 254) mg/dl (mumol/l). Difference in mean plasma values of groups Ia and Ib on the one hand and group II on the other were highly significant (P < 0.0001). No difference could be seen between groups Ia and Ib. There was a higher mean IQ at the age of 9 years in group II (97.4 +/- 5.4) in comparison with groups Ia (92.7 +/- 12.8) and Ib (85.0 +/- 14.4). The difference between group Ib and group II was significant (P < 0.040).(ABSTRACT TRUNCATED AT 250 WORDS)

Child↗

Structural characterization of the 5' regions of the human phenylalanine hydroxylase gene.

Human phenylalanine hydroxylase (PAH) is expressed in a liver-specific manner and catalyzes the enzymatic conversion of phenylalanine to tyrosine. Genetic deficiency of PAH results in the autosomal-recessive disorder phenylketonuria (PKU). Through the application of genomic and cDNA cloning, primer extension studies, SI mapping experiments, and PCR methodologies, the transcription initiation (CAP) site has been identified and the 5'-flanking region determined. The most upstream CAP site for the human hepatic PAH gene transcript is located 154 nucleotides upstream of the first translation codon. The genomic and cDNA sequences analyzed demonstrated that the previously reported cDNA sequence, phPAH247 [Kwok et al. (1985) Biochemistry 24, 556-561], contained a 164-nucleotide cloning artifact at its 5'-end. The 319 base pair region immediately upstream of the CAP site is characterized by the lack of a proximal TATA box and the presence of sequences similar to GC boxes, CACCC boxes, CCAAT boxes, activator protein 2 (Ap-2) sites, partial glucocorticoid response elements (GREs), and partial cyclic AMP response elements (CREs). This suggests that the human PAH gene has a TATA-less promoter regulated by multiple transcription factors.

Base Sequence↗

L-2-hydroxyglutaric acidemia: a novel inherited neurometabolic disease.

Routine screening for organic acids revealed increased and isolated urinary excretion of L-2-hydroxyglutaric acid in 8 mentally retarded patients from five unrelated families, including three pairs of siblings. L-2-Hydroxyglutaric acid concentration was also found to be increased in the cerebrospinal fluid (CSF) and to a lesser extent in plasma. The only other biochemical abnormality was an increased concentration of lysine, both in plasma and in CSF. No organic acid abnormality was found on screening of asymptomatic family members. Patients were of either sex, and became symptomatic during childhood, with moderate to severe mental deficiency in all and definite cerebellar dysfunction in 7. Magnetic resonance imaging revealed an identical abnormal pattern with subcortical leukoencephalopathy, cerebellar atrophy, and signal changes in the putamina and dentate nuclei, in all patients. No specific biochemical function or catabolic pathway involving L-2-hydroxyglutaric acid is known in mammals, including humans. Preliminary loading and dietary studies failed to reveal the origin of the compound. The elevated CSF/plasma ratio suggests that it is in part generated within the central nervous system. This report describes a novel inherited neurometabolic disease, probably autosomal recessive, with distinct clinical, biochemical, and neuroimaging features.

Adolescent↗

3-Methylglutaconic aciduria associated with Pearson syndrome and respiratory chain defects.

3-Methylglutaconic aciduria was detected in four patients with Pearson syndrome, a multitissue disorder with hematologic abnormalities, lactic acidosis resulting from defective oxidative phosphorylation, and deletions in the mitochondrial genome. 3-Methylglutaconic acid may be an additional useful marker for Pearson syndrome and may be a more specific marker than other organic acids identified in this disorder.

Acidosis, Lactic↗

[Selective screening for amino and organic acid inborn errors].

Aminoacidopathies and organoacidopathies are the most common acute life-threatening inborn errors of metabolism in the neonatal period. In the Federal Republic of Germany approximately 1 out of 5000 newborns is currently diagnosed as having an aminoacidopathy and approximately 1 out of 9000 newborns an organoacidopathy. Especially in the case of organoacidopathies there is substantial evidence that this number represents an underestimation. Many cases of amino- and organoacidopathies are still likely to remain undiagnosed. The incidence figures would warrant neonatal population screening for these disorders; however, the complexity and expense of the current methods prohibit this approach. Instead specialized investigations are carried out in children who develop symptoms indicative of an inborn error of metabolism. This approach is called selective screening. Early diagnosis, therefore, rests on a high degree of suspicion. In this paper clinical and laboratory findings of amino- and organoacidopathies are summarized. They can be nonspecific and misinterpreted. In the neonate and infant the presentation is commonly that of an acute overwhelming disease, whereas in the older child unexplained mental and/or neurological problems are often the leading symptom. We present an algorithm for the quick and comprehensive diagnosis of acutely presenting inborn errors of metabolism using commonly available parameters. However, in many cases the definitive diagnosis is not reached by selective metabolic screening of a single urine specimen of a patient, but requires close cooperation between the referring physician and the metabolic specialist. Multiple analyses, sometimes of different physiological fluids, or even in vivo and in vitro loading tests may be necessary.(ABSTRACT TRUNCATED AT 250 WORDS)

Acidosis↗

[Maternal phenylketonuria. Problems in detecting and risk educating identified females].

Maternal PKU is an embryo-fetopathy caused by elevated plasmaphenylalanine levels in pregnant women with hyperphenylalaninemia and phenylketonuira. Leading symptoms are microcephaly, mental retardatioin and congenital malformations, especially congenital heart disease. Maternal PKU becomes more important since early treated and normally developed girls with PKU are reaching their reproductive age in increasing numbers. There is a lack of adequate knowledge about the dangers of maternal PKU in at-risk women. Only 43% of these women in the Federal Republic of Germany are located by now and can be informed and instructed. Ways and conditions of tracking are described.

Adolescent↗

Facts and artefacts in mevalonic aciduria: development of a stable isotope dilution GCMS assay for mevalonic acid and its application to physiological fluids, tissue samples, prenatal diagnosis and carrier detection.

A stable isotope dilution assay using D3-mevalonic acid was developed and applied to the study of mevalonic aciduria. The method also appears to be suitable for the evaluation of different therapeutic regimens in patients with hypercholesterolemia. Mevalonic acid was isolated by liquid partition chromatography and quantified as the underivatized lactone by means of ammonia chemical ionization selected ion monitoring capillary gas chromatography-mass spectrometry. In heterozygotes there was significantly greater urinary excretion of mevalonic acid, while the range of enzymatic activity of mevalonate kinase showed an overlap with that of controls. The analysis of amniotic fluids of two pregnancies at risk for mevalonic aciduria showed a 3277-fold elevation as compared to controls in the first case, diagnostic of an affected fetus, and a normal value in the second one. Mevalonic acid concentration was much increased in tissues of the affected and aborted fetus. Concentrations ranged from 840 to 1120 mumol/kg in various tissues and were as high as 1810 mumol/kg in brain. Concentrations in control fetal tissues were approximately 1 mumol/kg.

Adult↗

Molecular basis of phenotypic heterogeneity in phenylketonuria.

BACKGROUND: Phenylketonuria is a metabolic disorder that results from a deficiency of the hepatic enzyme phenylalanine hydroxylase. Its clinical phenotype varies widely, and to date more than 10 mutations in the phenylalanine hydroxylase gene have been identified in persons with the disorder. We attempted to relate the clinical phenotype of patients to their genotype. METHODS: We studied 258 patients with phenylketonuria from Denmark and Germany for the presence of eight mutations previously found in patients from these countries. The in vitro activity of the enzymes associated with these mutations was determined by expression analysis in heterologous mammalian cells. The level of activity was then used to predict the in vivo level of phenylalanine hydroxylase activity in patients with various combinations of mutant phenylalanine hydroxylase alleles. RESULTS: The eight mutations involved 64 percent of all mutant phenylalanine hydroxylase alleles in the patients. Expression analysis showed that these mutant enzymes produced from 0 to 50 percent of normal enzyme activity. The predicted level of phenylalanine hydroxylase activity correlated strongly with the pretreatment serum level of phenylalanine (r = 0.91, P less than 0.001 in the Danish patients and r = 0.74, P less than 0.001 in the German patients), phenylalanine tolerance in the Danish patients (r = 0.84, P less than 0.001), and the serum phenylalanine level measured after standardized oral protein loading in the German patients (r = 0.84, P less than 0.001). CONCLUSIONS: Our results strongly support the hypothesis that there is a molecular basis for phenotypic heterogeneity in phenylketonuria. The establishment of genotype will therefore aid in the prediction of biochemical and clinical phenotypes in patients with this disease.

Alleles↗

Chronic cardiomyopathy and weakness or acute coma in children with a defect in carnitine uptake.

A defect in intracellular uptake of carnitine has been identified in patients with severe carnitine deficiency. To define the clinical manifestations of this disorder, the presenting features of 15 affected infants and children were examined. Progressive cardiomyopathy, with or without chronic muscle weakness, was the most common presentation (median age of onset, 3 years). Other patients presented with episodes of fasting hypoglycemia during the first 2 years of life before cardiomyopathy had become apparent. A defect in carnitine uptake was demonstrable in fibroblasts and leukocytes from patients. The defect also appears to be expressed in muscle and kidney. Concentrations of plasma carnitine and rates of carnitine uptake in parents were intermediate between affected patients and normal control subjects, consistent with recessive inheritance. Early recognition and treatment with high doses of oral carnitine may be life-saving in this disorder of fatty acid oxidation.

Biological Transport↗

The identification of two mis-sense mutations at the PAH gene locus in a Turkish patient with phenylketonuria.

DNA sequence analysis of the 13 exons and intron/exon boundaries of the phenylalanine hydroxylase (PAH) gene has detected two base transitions, resulting in mis-sense mutations, in the genomic DNA of a Turkish patient (E1) with phenylketonuria (PKU). The Leu48----Ser amino acid substitution was associated with the mutant haplotype 3 allele and the Glu221----Gly amino acid substitution with the mutant haplotype 4 allele of this family. Allele-specific oligonucleotide (ASO) dot-blot analysis subsequently detected the Leu48----Ser mutation in the haplotype 4 PKU alleles of nine (18.8%) of the 48 unrelated Caucasian PKU families investigated. This mutation results in mild PKU in the homozygous state. The Glu221----Gly mutation has only been detected within patient E1 and his father.

Alleles↗