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Biomedical subjects

U Orth

Publications and source records attributed to U Orth.

At least 37 records · Page 2Linked to original sources

Five novel mutations in the L1CAM gene in families with X linked hydrocephalus.

Five novel mutations have been identified in the gene encoding L1CAM, a neural cell adhesion protein, in families with X linked hydrocephalus (XHC). Interestingly, all five mutations are in the evolutionarily highly conserved Ig-like domains of the protein. The two frameshift mutations (52insC and 955delG) and the nonsense mutation (Trp276Ter) most probably result in functional null alleles and complete absence of L1CAM at the cell surface. The two missense mutations (Tyr194Cys and Pro240Leu) may considerably alter the structure of the L1CAM protein. These data provide convincing evidence that XHC is genetically extremely heterogeneous.

Abnormalities, Multiple↗

Gene for Simpson-Golabi-Behmel syndrome is linked to HPRT in Xq26 in two European families.

Linkage analysis was performed in 2 previously described European families segregating for the Simpson-Golabi-Behmel (SGB) syndrome. In both kindreds close linkage without recombination (zmax = 4.45 at theta = 0.00) was observed between the disease locus and the HPRT locus mapped in Xq26. These data are very similar to those (zmax = 7.5 at theta = 0.00) reported recently by others after studying a large Dutch-Canadian kindred with SGB syndrome. Compiled lod scores from the 3 families reach their maximum of 11.95 at recombination fraction of 0.00 with one lod unit support interval of 0.00-0.04.

Abnormalities, Multiple↗

Mapping of the autosomal dominant exudative vitreoretinopathy locus (EVR1) by multipoint linkage analysis in four families.

Autosomal dominant exudative vitreoretinopathy is a disorder affecting primarily the development of the human retinal vascular system. The disease locus has recently been assigned to 11q13-q23 by linkage studies in two families. Two-point analysis on a total of four families has now revealed close linkage (Zmax = 8.34 at theta = 0.00) between the disease locus and D11S873. Multipoint linkage analysis mapped the disease locus between D11S527/D11S533 and D11S35 with a maximum lod score of over 11 directly at D11S873. No evidence appeared for genetic/linkage heterogeneity among the four families examined.

Chromosome Mapping↗

Heterozygous missense mutation in the rod cGMP phosphodiesterase beta-subunit gene in autosomal dominant stationary night blindness.

The locus for autosomal dominant congenital stationary night blindness (adCSNB) has recently been assigned to distal chromosome 4p by linkage analysis in a large Danish family. Within the candidate gene encoding the beta-subunit of rod photoreceptor cGMP-specific phosphodiesterase (beta PDE), we have identified a heterozygous C to A transversion in exon 4, predicting a His258Asp change in the polypeptide. We found a perfect cosegregation (Zmax = 22.6 at theta = 0.00) of this mutation with the disease phenotype suggesting that this missense mutation is responsible for the disease in this pedigree. Homozygous nonsense mutations in the beta PDE gene have been found recently in patients with autosomal recessive retinitis pigmentosa, a common hereditary photoreceptor dystrophy.

3',5'-Cyclic-GMP Phosphodiesterases↗

Multipoint linkage analysis in X-linked juvenile retinoschisis.

Thirteen families with X-linked juvenile retinoschisis (XLRS) were studied in order to evaluate the linkage relationship between the XLRS locus (RS) and seven X-chromosomal DNA markers. Linkage was found between RS and DXS9 (theta max = 0.11, Zmax = 4.17), DXS16 (theta max = 0.06, Zmax = 7.72), DXS41 (theta max = 0.06, Zmax = 8.13) and DXS43 (theta max = 0.03, Zmax = 6.11). Recombinants were found between RS and all loci studied. Multipoint linkage analysis and recombination analysis significantly favour the order of Xpter-(DXS9, (DXS16-DXS43))-RS-DXS41-Xcen.

Adult↗

[Molecular genetic diagnosis of Wiskott-Aldrich syndrome].

BACKGROUND/AIMS: Wiskott-Aldrich syndrome is a severe X-linked recessive disorder of the hematopoietic system. The gene locus for Wiskott-Aldrich syndrome was mapped on the proximal short arm of the X chromosome by demonstrating close linkage to the loci DXS255 and TIMP. Carriers for Wiskott-Aldrich syndrome are asymptomatic and, hence, can not be identified clinically. METHODS: For a better estimate of the carrier risk of female family members, an extended molecular genetic analysis has been carried out on two kindreds with Wiskott-Aldrich syndrome: We followed the allele segregation at the two marker loci mentioned above known to be closely linked to the disease locus (indirect genotype diagnostics); in addition, we determined the pattern of X-inactivation by analyzing the methylation status of the two X chromosomes. RESULTS: We show that carriers for Wiskott-Aldrich syndrome can reliably be identified by the combination of segregation and X chromosome inactivation studies. Helpful information can be obtained by such studies in sporadic cases, too, or in families, in which--due to the early death--no surviving affected males are available for an DNA study. CONCLUSION: Indirect genotype analysis combined with the study of X-inactivation pattern is a valuable diagnostic tool for genetic counselling of families with Wiskott-Aldrich syndrome.

Adult↗

[Autosomal dominant hereditary retinopathia pigmentosa with genetic heterogeneity].

There is considerable clinical variability in autosomal dominant retinitis pigmentosa (ADRP). The underlying biochemical defect had remained unknown until recently, so that it was not possible to determine the primary cause(s) of this phenotypic diversity. Recently, different point mutations and base pair deletions have been identified in the rhodopsin gene in a proportion of patients with ADRP, providing convincing evidence for allelic genetic heterogeneity in this disease. We screened a total of 65 patients with ADRP in Germany, Austria, and Switzerland for the presence of the point mutations described recently at codons 58 and 347 in patients in the USA. Our results show that the frequency of point mutations at codon 347 in the patients studied here is about 3%, a figure similar to that found in the USA. The frequency of the mutation at codon 58 seems to be generally low. The identification of patients with point mutations in the rhodopsin gene offers the possibility, for the first time, of studying the correlation between genotype and disease phenotype.

Chromosome Aberrations↗

A kinematic analysis of anticipatory coarticulation in the speech of anterior aphasic subjects using electromagnetic articulography.

An investigation was made into the extent and time course of anticipatory coarticulation in the speech of two normal and two anterior aphasic, German-speaking subjects. Both labial and velar coarticulation gestures were investigated. Subjects produced sentences containing target words contrasting in postconsonantal vowel rounding (e.g., [geli:ge]/[gely:gel]) and in nasality (e.g., [ti:de]/[ti:ne]). Speech kinematics were monitored by means of electromagnetic articulography. The data revealed that for correct productions, aphasic speakers' coarticulatory patterns were more highly variable than those of control subjects. These differences, however, were found chiefly for spatial displacement characteristics, while the temporal aspects of articulator movement necessary for anticipatory coarticulation appeared largely intact. Articulator mistiming did not appear to explain a small corpus of stop/nasal substitution errors produced by one of the aphasic speakers.

Aphasia↗

[X-chromosomal hereditary night blindness: detection of carriers by segregation analysis with linked DNA markers].

Congenital stationary night blindness is a rare disease with autosomal dominant, autosomal recessive, or X-linked recessive inheritance. The X-chromosomal form is frequently associated with myopia. Female carriers have no symptoms of visual impairment and therefore cannot be identified clinically. The close link recently described between the disease locus and the DXS7 locus, mapped in Xp11.3, as well as other marker loci from this chromosomal region, permits indirect genotype analysis and thus identification of the carriers; with the information thus obtained, improved genetic counseling is possible. The authors studied a large Swiss family with the X-linked trait. Segregation analysis was performed with DXS7 as well as two flanking markers, DXS255 and OTC. It was thus possible to determine the degree or probability of several female members of the family being carriers.

Chromosome Banding↗

Posthumous diagnosis of X-linked retinoschisis using DNA analysis.

X-linked juvenile retinoschisis usually results in a rather serious visual handicap in affected males. However, occasionally patients can present with very subtle clinical signs without subjective complaints. For this reason, the family history can be misleading and caution is necessary when analysing the pedigree and giving genetic advice. In this report a family with X-linked retinoschisis is described in which segregation analysis with DNA probes strongly suggests that the deceased grandfather, who was said to have had good vision, had been affected by juvenile retinoschisis.

DNA↗

Gene of X-chromosomal congenital stationary night blindness is closely linked to DXS7 on Xp.

Congenital stationary night blindness is characterized disturbed or absent night vision that is always present at or shortly after birth and nonprogressive. The X-linked form of the disease (CSNBX; McKusick catalog no. 31050) differs from the autosomal types in that the former is frequently associated with myopia. X-chromosome-specific polymorphic DNA markers were used to carry out linkage analysis in three European families segregating for CSNBX. Close linkage without recombination was found between the disease locus and the anonymous locus DXS7, mapped to Xp11.3, assigning the mutation to the proximal short arm of the X chromosome. Linkage data obtained with markers flanking DXS7 provided further support for this localization of the gene locus. Thus, in addition to retinitis pigmentosa and Norrie disease, CSNBX represents the third well-known hereditary eye disease the locus of which is mapped on the proximal Xp and closely linked to DXS7.

Chromosome Mapping↗

Human monoamine oxidase A and B genes map to Xp 11.23 and are deleted in a patient with Norrie disease.

Monoamine oxidase A and B (MAO A and B) are the central enzymes that catalyze oxidative deamination of biogenic amines throughout the body. The regional locations of genes encoding MAO A and B on the X chromosome were determined by using full-length cDNA clones for human MAO A and B, respectively. Using somatic cell hybrids, in situ hybridization, and field-inversion gel electrophoresis as well as deletion mapping in a patient with Norrie disease, we concluded that these two genes are close to each other and to the DXS7 locus (Xp 11.3).

Animals↗

A Y/5 translocation in a 45,X male with cri du chat syndrome.

In a patient described as a 45,X male with cri du chat syndrome, combined cytogenetic and molecular methods revealed Y euchromatic material to be translocated onto the short arm of one chromosome 5, resulting in a chromosome der(5)(5qter----5p14::Yp11.31----Ypter). The translocated Y euchromatin comprised only the distal short arm including the pseudoautosomal region and the so-called deletion intervals 1 and 2. A review of 45,X males from the literature showed that; most of them carry a paternally transmitted Y/autosome translocations; resulting in various autosomal deletions. Depending on the segment concerned, the deletion led to congenital malformations.

Chromosome Banding↗

X-linked dominant hypophosphatemia is closely linked to DNA markers DXS41 and DXS43 at Xp22.

Two families with X-linked dominant hypophosphatemia (McKusick No. *30780) were investigated for linkage of the disease locus with several marker genes defined by cloned, single-copy DNA sequences derived from defined regions of the X chromosome. Close linkage was found with DNA markers DXS41 (p99-6) and DXS43 (pD2) at Xp22, suggesting a location of the HPDR gene on the distal short arm of the X chromosome.

Chromosome Mapping↗