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Biomedical subjects

A E Retief

Publications and source records attributed to A E Retief.

At least 19 recordsLinked to original sources

Molecular analysis reveals a high mutation frequency in the first untranslated exon of the PPOX gene and largely excludes variegate porphyria in a subset of clinically affected Afrikaner families.

A subset of probands from 11 South African families with clinical and/or biochemical features of variegate porphyria (VP), but without the known protoporphyrinogen oxidase (PPOX) gene defects identified previously in the South African population, were subjected to mutation analysis. Disease-related mutation(s) could not be identified after screening virtually the entire PPOX gene by heteroduplex single-strand conformation polymorphism analysis (HEX-SSCP), although three new sequence variants were detected in exon 1 of the gene in three normal controls. The presence of these single base changes at nucleotide positions 22 (C/G), 27 (C/A) and 127 (C/A), in addition to the known exon 1 polymorphisms I-26 and I-150, indicates that this untranslated region of the PPOX gene is particularly mutation-prone. Furthermore, microsatellite markers flanking the PPOX and alpha-1 antitrypsin (PI) gene, on chromosomes 1 and 14, respectively, were used to assess the probability of involvement of these loci in disease presentation. Common alleles transmitted from affected parent to affected child were determined where possible in the mutation-negative index cases. Allelic frequencies of these < > alleles were compared to findings in the normal population, but no predominant disease-associated allele could be identified. Co-segregation of a specific haplotype with the disease phenotype could also not be demonstrated in a large Afrikaner family. It is concluded that further studies are warranted to determine the genetic factor(s) underlying the autosomal dominant pattern of inheritance in molecularly uncharacterized cases showing clinical symptoms of an acute porphyria.

Base Sequence↗

Mapping of the variegate porphyria (VP) gene: contradictory evidence for linkage between VP and microsatellite markers at chromosome 14q32.

The gene for variegate porphyria (VP), an autosomal dominant disease with a high prevalance in South Africa, evidently due to a founder effect, was previously mapped to chromosome 14q32. In the current study this localization was evaluated by linkage and haplotype analyses using microsatellite markers spanning a region of more than 20 cM on chromosome 14q32. In many recent studies linkage disequilibrium between disease and marker loci has been utilized to map genes in founder populations, but we could not find any association between VP and the markers used in this study. Our data suggest that the allocation of VP to chromosome 14q32 may be incorrect.

Chromosome Mapping↗

Identification of three mutations and associated haplotypes in the protoporphyrinogen oxidase gene in South African families with variegate porphyria.

Mutation analysis of genomic DNA samples obtained from 17 unrelated South African patients with variegate porphyria (VP) revealed three novel missense mutations in the protoporphyrinogen oxidase (PPOX) gene. A common C to T transition at nucleotide position 452 (R59W) was identified in 15 of the patients analysed, while base changes at positions 336 (H20P) and 779 (R168C) were identified in the remaining two patients. Using protein analysis software we were able to predict that all three mutations have a similar biophysical effect on the protein, being the disturbance of amphiphatic regions within the protein, which might result in misfolding of the protein. Mutation R59W, identified in the majority of South African VP families, was shown to create a Styl restriction site, while mutation R168C would abolish a Dsal restriction site in genomic DNA of affected individuals. As 100% of the index patients analysed were molecularly characterized, the combined use of restriction enzyme and single-strand conformation polymorphism (SSCP) analysis now allows a rapid and accurate diagnosis of VP in South Africa. Mutation R59W was furthermore shown to be in association with one of four potential haplotypes defined by two newly described polymorphisms in exon 1 of the PPOX gene. Our molecular data thus strongly support the founder hypothesis for VP in South Africa.

DNA Mutational Analysis↗

Dinucleotide repeat polymorphism at the D5S99 locus on chromosome 5q33-34.

We report a highly polymorphic, sequence-tagged microsatellite site (STMS) at the D5S99 locus that was previously identified by a less informative restriction fragment length polymorphism (RFLP). This marker, which was also localized to the physical map of chromosome 5q by fluorescent in situ hybridization (FISH), should assist in the precision mapping of genes in the area 5q33-34.

Base Sequence↗

The use of DNA markers in the pre-clinical diagnosis of familial adenomatous polyposis in families in South Africa.

Haplotype association studies were performed in 10 unrelated South African families and 1 German immigrant family with familial adenomatous polyposis (FAP). Three DNA probes, recognising five restriction fragment length polymorphisms (RFLPs) around the gene locus for FAP on chromosome 5q, were used. The RFLP analysis was informative or partially informative in all the families studied. Five haplotypes were found to segregate with the disease locus. The predominant association of two of these haplotypes with FAP in the South African families suggests that two mutations may cause the disease in about 70% of families in this population. Meiotic recombination events were detected between the FAP gene and probe M4 (D5S6), but not probes Pi227 (D5S37) and C11p11 (D5S71). Haplotype analysis allowed the preclinical diagnosis of FAP in 5 subjects.

Adenomatous Polyposis Coli↗

The CEPH consortium linkage map of human chromosome 13.

The CEPH consortium map of chromosome 13 is presented. This map contains 59 loci defined by genotypes generated from CEPH family DNAs with 94 different probe and restriction enzyme combinations contributed by 9 laboratories. A total of 25 loci have been placed on the map with likelihood support of at least 1000:1. The map extends from loci in the centromeric region of chromosome 13 to the terminal band of the long arm. Multipoint linkage analyses provided estimates that the male, female, and sex-averaged maps extend for 158, 203, and 178 cM respectively. The largest interval is 24 cM and is between D13Z1 (alpha RI) and ATP1AL1. The mean genetic distance between the 25 uniquely placed loci is 7 cM.

Chromosome Mapping↗

Highly informative dinucleotide repeat polymorphism at the D11S29 locus on chromosome 11q23.

The informativeness of locus D11S29 as a genetic marker was improved by the identification of a highly polymorphic (GT)n repeat within the locus. Ten alleles were identified in parents of 40 Centre d'Etude du Polymorphisme Humain families and the polymorphism information content (PIC) was 0.77. The increased PIC value thus enables refinement of the linkage map of 11q23.

Alleles↗

DNA screening of hyperlipidemic Afrikaners for familial hypercholesterolemia.

Three different point mutations of the low-density lipoprotein receptor (LDLR) gene are responsible for familial hypercholesterolemia (FH) in about 90% of Afrikaner patients. Screening of hyperlipidemic Afrikaner individuals for these founder-related mutations was performed to determine the distribution of the mutations in individuals with different lipid profiles, and to provide guidelines for screening of the mutations in hyperlipidemics. Rapid DNA methods, based on restriction enzyme analysis or allele-specific hybridisation of enzymatically-amplified genomic DNA, have been used to analyse the LDLR gene mutations in four groups of Afrikaner individuals. Group 1 included 84 individuals in whom FH was diagnosed on clinical data. Groups 2-4 included 89 hyperlipidemic individuals who did not fulfil the criteria for inclusion in the FH study group. The founder-related LDLR gene mutations were present in 36% of the hyperlipidemics whose clinical diagnosis excluded them from the FH study group. This indicates that conventional methods for the diagnosis of FH, based mainly on lipid determinations and a family history of coronary heart disease, do not always allow an accurate diagnosis of the disease. Screening of hyperlipidemic Afrikaner individuals for specific founder-related LDLR gene mutations can provide a definite diagnosis of FH, which may lead to better counselling and optimal treatment.

Adult↗

Linkage map of eight human chromosome 11q markers, including DRD2, spanning 60 cM.

We have constructed a linkage map of eight RFLP markers located on chromosome 11q in the region of the dopamine D2 receptor gene (DRD2) recognized by probe hD2G1. Abnormalities in dopaminergic neurotransmission mediated by this receptor have been implicated in several psychiatric disorders. The map was generated using six large reference families (from 294 to 419 individuals per locus), which are largely independent of the CEPH families, primarily using the LINKMAP and ILINK programs of the LINKAGE package of Lathrop and Lalouel. The most likely order and recombination frequencies are: [sequence: see text] The relative order of D11S84-STMY, DRD2-D11S29, and D11S146-INT2 could not be resolved reliably. There were no significant sex differences in recombination frequency. We introduce here a version of LINKMAP adapted to run under distributed parallel processing (LINDA-LINKMAP). Using pairwise analyses, we have also placed D11S421 proximal to this group.

Chromosome Mapping↗

The frequency of the delta F508 mutation in the cystic fibrosis genes of 71 unrelated South African cystic fibrosis patients.

The common delta F508 mutation is present in approximately 70% of mutant cystic fibrosis (CF) genes of European and North American populations. The frequency of the delta F508 mutation has been established for two groups of South African CF subjects. The mutation was found to be present in 82% and 53% of CF genes of white and coloured (i.e. of mixed ancestry) subjects respectively. These findings assist in providing appropriate counselling to individuals who have a family history of CF and in defining laboratory strategies for the establishment of an efficient genetic service for cystic fibrosis.

Cystic Fibrosis↗

The molecular basis and diagnosis of familial hypercholesterolaemia in South African Afrikaners.

Three different point mutations were recently identified in South African familial hypercholesterolaemics. These mutations result in the modification of recognition sites of specific restriction endonucleases. This study describes rapid methods for presymptomatic detection of these defects based on restriction enzyme analysis or allele-specific hybridization of enzymatically amplified genomic DNA. These methods were used to determine the frequencies of the three known low-density lipoprotein (LDL) receptor gene mutations in 138 chromosomes of Afrikaner FH patients. It has been shown that a common mutation at the 3' end of exon 4 (base 681) of the LDL receptor gene is present in about 70% of alleles, while the mutations in exons 9 (base 1285) and 4 (base 523) of the gene are present in about 20 and 10% respectively of the genes studied. These mutations were found in approximately 95% of Afrikaner familial hypercholesterolaemic patients studied, indicating at least three founder members for the disease in this population of South Africa.

Base Sequence↗

Deletion mapping of 39 random isolated Y-chromosome DNA fragments.

Thirty-nine recombinants isolated from a Y chromosome-specific library were deletion mapped. Seven deletion intervals were defined by hybridization of probes to DNA of eight individuals with aberrant Y chromosomes. Extreme cytogenetic limits of the deletion intervals were determined by in situ hybridization of one probe per deletion interval. Five intervals, with a total of twenty-five probes, were allocated to the long-arm euchromatic region. The probes described will be useful for characterization of aberrant Y chromosomes, in searching for expressed sequences on the Y chromosome, and for further study of the evolutionary relationship between the Y chromosome and other chromosomes.

Chromosome Deletion↗