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Biomedical subjects

F Güttler

Publications and source records attributed to F Güttler.

At least 19 recordsLinked to original sources

Phenylketonuric patients decades after diet.

Nineteen early-treated phenylketonuric patients, whose diet was discontinued between 4.5 and 13 years of age, and who have been off the diet for 12-28 years, were reassessed in 1992-93. There was little change in mean IQ between end of diet and follow-up, less than one IQ point on the average, with no change for any individual exceeding 12 IQ points. Both prior and current IQ correlated slightly negatively with mean phenylalanine (Phe) concentration, and positively with parents' education. The phenylalanine level at follow-up was significantly lower on average by about 900 mumol/L. Five of the subjects (26%) have evidence of mental disease. However, the data suggest that the discontinuation of the diet did not cause intellectual deterioration. Nonetheless, the patients' intellect cannot be the only consideration for maintenance of diet. The occurrence of psychopathology among phenylketonuric patients and the possible unknown effects of toxic elevation of phenylalanine during their lifetime suggest the need to maintain the diet. The use of DNA for diagnostic and prognostic purposes might assist in decisions about dietary quality and duration, and in anticipation of psychopathology.

Adult

In vivo assessment of mutations in the phenylalanine hydroxylase gene by phenylalanine loading: characterization of seven common mutations.

UNLABELLED: Mutations in the gene encoding phenylalanine hydroxylase (PAH) cause persistent hyperphenylalaninaemia. To date, more than 200 point mutations and microdeletions have been characterized. Each mutation has a particular quantitative effect on enzyme activity and recessive expression of different mutant alleles results in a marked interindividual heterogeneity of metabolic and clinical phenotypes. In this paper we demonstrate how a simple clinical test can be used to evaluate the correlation between mutation genotype and phenylalanine metabolism. In hyperphenylalaninaemic patients with known PAH mutation genotype, we have investigated phenylalanine turnover in vivo by measuring the ability to eliminate a test dose of L-phenylalanine. All patients could be considered functionally hemizygous for one of their mutant alleles by carrying on the other allele a mutation that is known to completely abolish PAH activity and encode a peptide with no immunoreactivity. Seven mutations (R408W, IVS-12nt1, R261Q, G46S, Y414C, A104D, and D415N) were characterized by oral phenylalanine loading, each mutation being represented by at least three patients. The elimination profile determined for a 3-day period provides a measure to compare residual activity of the mutant proteins and to assign each mutation to a particular metabolic phenotype. The established relation between genotype and phenotype may enable prediction of the severity of the disease by genotype determination in the newborn period. This will aid in the management of hyperphenylalaninaemia and may improve prognosis. CONCLUSION: The possibility of predicting the residual enzyme activity by DNA analysis performed already in the newborn period allows the prompt implementation of a diet that is adjusted to the degree of PAH deficiency. This may improve management and prognosis of hyperphenylalaninaemia.

Alleles

Brain magnetic resonance imaging in children with optimally controlled hyperphenylalaninaemia.

This study was undertaken to investigate whether the white-matter changes on MRI and the EEG abnormalities detectable in treated adolescents and adults with hyperphenylalaninaemia (HPA) can be detected in younger children on an optimally controlled diet. The study included 17 children, 7-12 years of age, with HPA. The MRI of five healthy children were included in the blind evaluation of the MR images. According to mutation genotype and dietary tolerance of phenylalanine, 9 patients have severe HPA and 8 have moderate HPA, all requiring dietary treatment. Mild white-matter hyperintensity was detected in 1 of the 5 healthy children and in 10 of 17 patients. EEG was abnormal in 2 patients. This group of children was compared with a previously reported group of adolescents with HPA who had been treated according to the same dietary regimen. MRI changes and EEG abnormalities were significantly less frequent in the group of children than in the group of adolescents. It is suggested that the more frequent MRI changes and EEG abnormalities seen in adolescents are related to the fact that a relaxation of the dietary treatment after the age of 8 years is often accepted.

Adolescent

Mutation analysis in families with discordant phenotypes of phenylalanine hydroxylase deficiency. Inheritance and expression of the hyperphenylalaninaemias.

Neonatal hyperphenylalaninaemia caused by mutations in the gene encoding phenylalanine hydroxylase (PAH) represents a wide spectrum of metabolic phenotypes, ranging from classical phenylketonuria (PKU) to mild hyperphenylalaninaemia (MHP). The marked interindividual heterogeneity is due to the expression of multiple PAH mutations in genetic compounds. We have investigated four unusual families in which both PKU and MHP were present. In each family three different mutations in the PAH gene were identified, including two associated with PKU and one associated with MHP. The unexpected outcome of discordant phenotypes within the families described is explained by previously unrecognized parental MHP. By mutation analysis we have also predicted the phenotypical outcome in a hyperphenylalaninaemic infant born to a mother who before pregnancy had been diagnosed as having MHP. Our results demonstrate the utility of nucleic acid analysis in follow-up in PKU screening programmes.

Amino Acid Metabolism, Inborn Errors

Mutations in the phenylalanine hydroxylase gene: methods for their characterization.

Mutations in the phenylalanine hydroxylase (PAH) gene represent the root cause of PAH-deficient hyperphenylalaninemia. To date, more than 160 different mutations have been reported. Single-base substitutions and microdeletions account for the majority of molecular defects. This review provides a brief general introduction to various strategies for detection of PAH mutations, and summarizes our own methodological developments. We have established a method based on PCR in combination with denaturing gradient gel electrophoresis (DGGE) for mutation scanning of the entire coding sequence and all exon/intron boundaries of the PAH. Systematic application of this method to the study of a large number of mutant chromosomes from hyperphenylalaninemic patients demonstrated a 98% diagnostic efficiency and a 100% mutation detection efficiency. We have created compromised PCR and DGGE conditions for simultaneous amplification and simultaneous mutation scanning of all PAH-coding fragments. This technique is convenient in a diagnostic setting and allows "same-day" DNA-based diagnosis of newborns with hyperphenylalaninemia. A further modification of the method allows unambiguous identification of known mutations, circumventing the cumbersome step of nucleotide sequencing.

DNA Mutational Analysis

Association between haplotypes, hind III-VNTR alleles and mutations at the PAH locus in Sicily.

In this study we report previously undescribed associations between mutations, haplotypes and a minisatellite polymorphism (Hind III VNTR) of the PAH gene in the Sicilian population. Analysis of the association between mutations and linked polymorphisms between Sicilians and other Mediterranean populations may be a useful tool to study the time-space origin of mutant PAH genes in Southern Europe.

Alleles

Mutations in the phenylalanine hydroxylase gene: genetic determinants for the phenotypic variability of hyperphenylalaninemia.

Phenylalanine hydroxylase (PAH) deficiency is a heterogeneous disease at the phenotype level. The spectrum of clinical and metabolic phenotypes spans from the potential pathogenic disease classical phenylketonuria (PKU) to the benign condition non-PKU hyperphenylalaninemia (non-PKU HPA). This review provides an introduction to the clinical variants of PAH deficiency, and summarizes our attempts to define the disease at the molecular level and to relate mutation genotype to clinical outcome. Complete genotype determination in a large number of patients with PAH-deficient hyperphenylalaninemia demonstrates that clinical heterogeneity can be explained by a multiplicity of mutations in the PAH gene. Some combinations of mutations are associated with phenylalanine levels fluctuating around the border between PKU and non-PKU HPA. However, certain mutations seem always to cause non-PKU HPA irrespective of the mutation on the second allele and can, therefore, unambiguously be designated as being associated with the non-PKU HPA phenotype. Our results suggest that mutation analysis in newborns presenting with hyperphenylalaninemia can be used for rapid and highly efficient differential diagnosis of PAH deficiency, and for predicting the severity of the disease. These possibilities may facilitate and optimize the management of hyperphenylalaninemia and thereby improve prognosis.

Denmark

The international collaborative study of maternal phenylketonuria: status report 1994.

Neonatal screening for phenylketonuria (PKU) has created a problem as females with PKU are reaching child-bearing age. Surveys have revealed that maternal phenylalanine blood concentrations greater than 1200 mumol/l are associated with fetal microcephaly, congenital heart defects and intrauterine growth retardation. It is estimated that as many as 3000 hyperphenylalaninemic females may be at risk of producing these fetal abnormalities. To examine this problem, the international maternal PKU collaborative study was developed to evaluate the efficacy of a phenylalanine-restricted diet in reducing fetal morbidity. Preliminary findings have indicated that phenylalanine restriction should begin before conception for females with PKU planning a pregnancy. Dietary control should maintain maternal blood phenylalanine levels between 120 and 360 mumol/l and should provide adequate energy, protein, vitamin and mineral intake. Pregnant hyperphenylalaninemic females who achieved metabolic control after conception or by the 10th week of pregnancy had a better offspring outcome than anticipated. The results of 402 pregnancies are reviewed.

Adult

An occipito-temporal syndrome in adolescents with optimally controlled hyperphenylalaninaemia.

The study included 16 adolescents with optimally controlled hyperphenylalaninaemia (McKusick 26160), of whom six did not require treatment according to conventional criteria. All except the two patients with lowest median serum phenylalanine level throughout childhood (most values at 200-300 mumol/L) had white matter abnormalities detectable with magnetic resonance imaging. The lesions were particularly prominent in the watershed regions between the posterior and middle cerebral arteries. In most patients with moderate or severe hyperphenylalaninaemia frontal white matter lesions were present as well. Normal proton magnetic resonance spectra indicated that the lesions were stable. Occipital EEG abnormalities were frequent, and deficient performance on a pattern-recognition test was a characteristic neuropsychological finding. Serum phenylalanine levels at about 300 mumol/L or below throughout childhood and early adolescence may be required to avoid lesions. The present study demonstrates the limitations of even an optimally controlled dietary regimen in hyperphenylalaninaemia.

Adolescent

Molecular basis for nonphenylketonuria hyperphenylalaninemia.

Nonphenylketonuria hyperphenylalaninemia (non-PKU HPA) is defined as phenylalanine hydroxylase (PAH) deficiency with blood phenylalanine levels below 600 mumol/liter (i.e., within the therapeutic range) on a normal dietary intake. Haplotype analysis at the PAH locus was performed in 17 Danish families with non-PKU HPA, revealing compound heterozygosity in all individuals. By allele-specific oligonucleotide (ASO) probing for common PKU mutations we found 12 of 17 non-PKU HPA children with a PKU allele on one chromosome. To identify molecular lesions in the second allele, individual exons were amplified by polymerase chain reaction and screened for mutations by single-strand conformation polymorphism. Two new missense mutations were identified. Three children had inherited a G-to-A transition at codon 415 in exon 12 of the PAH gene, resulting in the substitution of asparagine for aspartate, whereas one child possessed an A-to-G transition at codon 306 in exon 9, causing the replacement of an isoleucine by a valine in the enzyme. It is further demonstrated that the identified mutations have less impact on the heterozygote's ability to hydroxylate phenylalanine to tyrosine compared to the parents carrying a PKU mutation. The combined effect on PAH activity explains the non-PKU HPA phenotype of the child. The present observations that PKU mutations in combination with other mutations result in the non-PKU HPA phenotype and that particular mutation-restriction fragment length polymorphism haplotype combinations are associated with this phenotype offer the possibility of distinguishing PKU patients from non-PKU individuals by means of molecular analysis of the hyperphenylalaninemic neonate and, consequently, of determining whether a newborn child requires dietary treatment.

Base Sequence

Multiple origins for phenylketonuria in Europe.

Phenylketonuria (PKU), a disorder of amino acid metabolism prevalent among Caucasians and other ethnic groups, is caused primarily by a deficiency of the hepatic enzyme phenylalanine hydroxylase (PAH). PKU is a highly heterogeneous disorder, with more than 60 molecular lesions identified in the PAH gene. The haplotype associations, relative frequencies, and distributions of five prevalent PAH mutations (R158Q, R261Q, IVS10nt546, R408W, and IVS12n1) were established in a comprehensive European sample population and subsequently were examined to determine the potential roles of several genetic mechanisms in explaining the present distribution of the major PKU alleles. Each of these five mutations was strongly associated with only one of the more than 70 chromosomal haplotypes defined by eight RFLPs in or near the PAH gene. These findings suggest that each of these mutations arose through a single founding event that occurred within time periods ranging from several hundred to several thousand years ago. From the significant differences observed in the relative frequencies and distributions of these five alleles throughout Europe, four of these putative founding events could be localized to specific ethnic subgroups. Together, these data suggest that there were multiple, geographically and ethnically distinct origins for PKU within the European population.

Europe

Correlation between cerebrospinal fluid phenylalanine and beta-endorphin in patients with phenylketonuria.

Previous animal and human studies have suggested an analgesic effect of phenylalanine involving endogenous opioid peptides. Phenylalanine was measured by a HPLC method with electrochemical detection and beta-endorphin by a specific radioimmunoassay in 14 lumbar cerebrospinal fluid samples from 13 patients with phenylketonuria. Cerebrospinal fluid beta-endorphin was also determined in 6 age-matched control subjects. We found a trend towards a higher beta-endorphin level in phenylketonuria (median 26.0 pM, range 13.0-37.8) than in the control subjects (20.6 pM, 12.7-28.0), P = 0.13. Cerebrospinal fluid concentrations of phenylalanine and beta-endorphin were significantly correlated (r = 0.68, P = 0.008). The results support the hypothesis that phenylalanine modifies the central endogenous opioid system.

Adolescent

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