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Biomedical subjects

A Poustka

Publications and source records attributed to A Poustka.

At least 19 recordsLinked to original sources

Completion of the physical map of Xq28: the location of the gene for L1CAM on the human X chromosome.

The gene for the neural cell adhesion molecule L1 (L1CAM) has been shown to be located close to the color vision pigment genes in mouse and man. This location has been confirmed by a number of different mapping strategies in both species. With pulsed field gel electrophoresis it has been proposed that L1CAM lies between the RCP, GCP, and GDX, G6PD loci. We report here a reinterpretation of the location of this gene, based on the physical linkage of L1CAM to the more proximal locus DXS15. This places L1CAM between this marker and the color vision genes (RCP, GCP), a region very dense in CpG islands, expected to contain a large fraction of the disease genes assigned to the Xq28 region. In combination with the physical mapping data on Xq28 described previously, this closes the last remaining gap in the map of the Xq27-Xq28 region. This removes the last contradiction between the maps of this region in the genomes of man and mouse, and confirms the close similarity of order and distances of markers between these organisms.

Cell Adhesion Molecules, Neuronal

Fragile X syndrome without CCG amplification has an FMR1 deletion.

We describe a patient with typical clinical features of the fragile X syndrome, but without cytogenetic expression of the fragile X or an amplified CCG trinucleotide repeat fragment. The patient has a previously uncharacterized submicroscopic deletion encompassing the CCG repeat, the entire FMR1 gene and about 2.5 megabases of flanking sequences. This finding confirms that the fragile X phenotype can exist, without amplification of the CCG repeat or cytogenetic expression of the fragile X, and that fragile X syndrome is a genetically homogeneous disorder involving FMR1. We also found random X-inactivation in the mother of the patient who was shown to be a carrier of this deletion.

Adult

A strategy for the selection of transcribed sequences in the Xq28 region.

As an essential step towards an exhaustive analysis of the coding potential of large regions of the genome, we have developed a protocol allowing the rapid isolation of transcripts defined by overlapping clone libraries. The method is based on the hybridisation of cDNA inserts, which had been amplified by PCR from cDNA libraries, to biotinylated DNA from cosmids or cosmid pools. Nonspecific hybrids are then removed, the selected cDNAs are eluted and reamplified by PCR. Using a cosmid containing part of the FMR-1 gene as test, we were able to demonstrate an eighty thousand fold enrichment of cDNAs for this gene after two rounds of selection-amplification. The technique was applied to the analysis of transcripts from two cosmid contigs, together encompassing a region of 900 kb in Xq28. These experiments have thus far resulted in the identification of 81 cDNA clones, of which 54 clones were mapped back to the cosmid contigs. Of the 54 clones placed on the contig maps, 12 cDNA clones can be shown to belong to two genes which have been previously reported (L1CAM and QM).

Base Sequence

Identification and characterization of a new gene in the human Xq28 region.

A human Xqter chromosome cosmid library was screened with a mixed probe derived from porcine kidney mRNA. A new expressed gene was identified in a cosmid clone known to be part of a G6PD cosmid contig. This gene is most likely a housekeeping gene because the cDNA clone recognizes a 1 kb mRNA transcript in all cell lines and tissues tested. Hybridizing genomic DNA of several species with a cDNA probe indicated that the gene is highly conserved during evolution and that it belongs to a gene family. The genomic sequence shows a 100% homology with the recently identified QM cDNA sequence.

Adrenoleukodystrophy

An archipelago of CpG islands in Xq28: identification and fine mapping of 20 new CpG islands of the human X chromosome.

19 probes for CpG islands, mapping to Xq28, have been used as probes to construct a physical map of genes of this band of the human X chromosome. A total of 22 CpG islands have been precisely mapped in respect to known loci along the 9-10 Mb of Xq28. The fine mapping of such a large number of CpG islands has demonstrated that also in gene rich Giemsa light bands, like Xq28, gene distribution is non uniform: the CpG islands are clustered in the distal portion of the band in a 2 Mb region between the G6PD gene and the DXS15 locus. Moreover, 16 CpG islands were found between the G6PD and the RCP/GCP genes, a region of DNA of only about 300 kb. If this structural organization has a biological function it has yet to be determined. However, the isolation of large genomic regions enriched in gene sequences and the availability of cosmid or YAC contigs will provide the means to test the significance of such gene organization, as well as the material for large sequencing projects and gene search, for the identification of candidate genes for inherited disorders mapped to Xq28 and for comparative mapping.

Animals

Fragile X syndrome: molecular analysis reveals a new mechanism of mutation in human genetic diseases.

The fragile X syndrome belongs to the most common genetic diseases and has a prevalence of one in every 2000 children. The syndrome is named after the fragile site in q27.3 on the X chromosome. The molecular cloning of the DNA containing the fragile site has resulted in the identification of a heritable unstable DNA sequence revealing a new mechanism of mutation in human genetic disorders. This DNA sequence significantly facilitates the diagnosis and provides a rapid method for carrier detection and prenatal diagnosis. The unstable element is located within a candidate gene, FMR1. The FMR1 protein is not made in fragile X patients and nothing is known about its function. We will have to await studies on this protein to be able to understand the variable phenotype of this disease.

Chromosome Fragile Sites

A microdeletion of less than 250 kb, including the proximal part of the FMR-I gene and the fragile-X site, in a male with the clinical phenotype of fragile-X syndrome.

A gene designated "FMR-1" has been isolated at the fragile-X locus. One exon of this gene is carried on a 5.1-kb EcoRI fragment that exhibits length variation in fragile-X patients because of amplification of or insertion into a CGG-repeat sequence. This repeat probably represents the fragile site. The EcoRI fragment also includes an HTF island that is hypermethylated in fragile-X patients showing absence of FMR-1 mRNA. In this paper, we present further evidence that the FMR-1 gene is involved in the clinical manifestation of the fragile-X syndrome and also in the expression of the cellular phenotype. A deletion including the HTF island and exons of the FMR-1 gene was detected in a fragile X-negative mentally retarded male who presented the clinical phenotype of the fragile-X syndrome. The deletion involves less than 250 kb of genomic DNA, including DXS548 and at least five exons of the FMR-1 gene. These data support the hypothesis that loss of function of the FMR-1 gene leads to the clinical phenotype of the fragile-X syndrome. In the fragile-X syndrome, there are pathogenetic mechanisms other than amplification of the CGG repeat that do have the same phenotypic consequences.

Base Sequence

Physical map of human Xq27-qter: localizing the region of the fragile X mutation.

We describe a physical map of the end of the long arm of the human X chromosome encompassing the region from Xq27.2 to the q telomere, inclusive of the chromosomal band Xq28. This region is of particular interest, since it contains the highest density of genes associated with genetic diseases. The map covers a total of 12 megabases (Mb) of DNA and extends from the telomere to 3 Mb beyond the most likely position of the fragile X mutation, defined by a cluster of translocation breakpoints in somatic cell hybrids. The map determines order and position of loci throughout the Xq28 region and localizes cell line breakpoints marking the fragile X region to an interval of 300-700 kilobases between 8 and 8.7 Mb proximal of the Xq telomere.

Blotting, Southern

The human embryonic myosin alkali light chain gene: use of alternative promoters and 3' non-coding regions.

Recently we have found evidence that the human embryonic myosin alkali light chain (MLC1 emb) gene has two functional promoters and that its mRNAs exhibit heterogeneity in their 3'untranslated regions (UTR). To study this more in detail we have isolated and characterized the human MLC1emb gene. We focussed in particular on 2 kilobases of 5'flanking region and the alternative 3'UTRs. RNA primer extension and S1 mapping analyses revealed that the MLC1emb gene can indeed be driven either by a proximal or a distal promoter, both in fetal and adult cardiac tissue. These MLC1emb RNAs can contain either the proximal or distal 3'UTR. In contrast to this, in fetal as well as adult masseter muscle MLC1emb mRNA is predominantly transcribed from the proximal promoter and contains mainly the distal 3'UTR. These results explain the known heterogeneity of MLC1emb mRNAs. Finally, we present evidence that the murine MLC1emb gene also contains a functional distal promoter element which has hitherto been undetected.

Animals

New genes in the class II region of the human major histocompatibility complex.

A detailed map of the class II region of the human major histocompatibility complex has been constructed by pulsed-field gel electrophoresis. This map revealed clusters of sites for enzymes that cut preferentially in unmethylated CpG-rich DNA often found at the 5' ends of genes. Three of these clusters have been cloned by cosmid walking and chromosome jumping. Analysis of the clones encompassing these regions through the use of zoo blots, Northern blots, and cDNA libraries resulted in the discovery of four novel genes. The D6S111E and D6S112E genes are centromeric to the HLA-DPB2 gene, while D6S113E and D6S114E are between HLA-DNA and HLA-DOB. Preliminary characterization of the new genes indicates that they are unrelated to the class II genes themselves, although D6S114E expression, like class II expression, is inducible with interferon. In addition, the HLA-DNA gene has been accurately positioned and oriented for the first time.

Animals

Homozygous deletion in Wilms tumours of a zinc-finger gene identified by chromosome jumping.

Cytogenetic analysis has identified chromosome 11p13 as the smallest overlap region for deletions found in individuals with WAGR syndrome, which includes Wilms tumour (a recessive childhood nephroblastoma), aniridia, genito-urinary abnormalities and mental retardation. The underlying loci have since been resolved into an aniridia (AN2) locus at a telomeric position, and a locus of closely spaced genes or a single pleiotropic gene involved in genito-urinary tract abnormalities and Wilms tumour at a more centromeric position. Pulsed-field gel analysis of the 11p13 region has revealed the presence of several putative CpG islands, structures which are frequently associated with the 5' ends of expressed sequences, mainly housekeeping genes and some tissue-specific genes. Starting from a CpG island, we have now isolated four neighbouring CpG islands, all within 650 kilobases (kb), by means of two consecutive bidirectional jumps in rare-cutting restriction-enzyme jumping libraries. In two instances, flanking sequences were conserved in other species and RNA transcripts were identified. A complementary DNA clone isolated for one of them derives from an RNA highly expressed in fetal kidney, and is predicted to encode a Krüppel-like zinc-finger protein that is probably a transcription factor. The entire cDNA region is included in two partially overlapping homozygous deletions found in Wilms tumour DNA samples. Cloning of the breakpoints in one tumour revealed a deletion size of 170 kb, one-third of which is covered by the cDNA. The expression pattern and sequence of this cDNA could point to an important role for its corresponding gene in the normal development of the renal system as well as in Wilms tumour.

Amino Acid Sequence

Cloning of the T gene required in mesoderm formation in the mouse.

The murine developmental mutation T identifies an essential gene in mesoderm formation. Embryos lacking normal gene activity fail to form the notochord, the entire posterior region and the allantois, and die at about 10 days of gestation. We have isolated the T gene using a combination of molecular and genetic techniques, thus making molecular tools available to study processes underlying mesoderm formation in the mouse.

Alleles

The murine genes Hox-5.1 and Hox-4.1 belong to the same HOX complex on chromosome 2.

Two different loci of Antennapedia-related homeobox-containing genes have been shown to map to mouse chromosome 2: the HOX-5 complex and the Hox-4.1 gene. These independently derived loci are likely to be parts of a single gene complex, although their close linkage has not yet been demonstrated. Since cosmid walks to extend the HOX-5 cluster and to potentially link the two loci were unsuccessful, we have used large restriction fragments separated by pulsed-field gel electrophoresis to demonstrate the linkage between probes from the HOX-5 region and sequences near Hox-4.1. To further define the distance between the two linked loci, we screened a NotI jumping library with sequences near the Hox-5.1 gene to obtain a marker within the region predicted to contain Hox-4.1. The jumping endpoint lies within genomic clones from a lambda phage walk extending from the 5' end of Hox-4.1, and thus provides clear evidence of linkage between the two Hox loci. Our results demonstrate that Hox-4.1 lies approximately 35 kb downstream of the Hox-5.1 gene and that the two loci do indeed thus constitute parts of the same HOX complex.

Animals

Physical maps of 4p16.3, the area expected to contain the Huntington disease mutation.

The gene for Huntington disease, a neurodegenerative disorder with autosomal dominant inheritance, has been localized to the terminal portion of the short arm of human chromosome 4 (4p16.3) by linkage analysis. Since eventual isolation of the gene requires the application of high-resolution genetic analysis coupled with long-range DNA mapping and cloning techniques, we have constructed a physical map of the chromosomal region 4p16.3 using more than 20 independently derived probes. We have grouped these markers into three clusters which have been ordered and oriented by genetic and somatic cell genetic mapping information. The mapped region extends from D4S10 (G8) toward the telomere and covers minimally 5 Mb.

Chromosome Mapping

The murine GABAA receptor delta-subunit gene: structure and assignment to human chromosome 1.

The murine chromosomal gene for the GABAA receptor delta subunit was isolated and characterized by high-resolution mapping and DNA sequencing. Spanning 13 kb, it comprises nine exons and displays an intron pattern comparable, but not identical, to that seen in members of the nicotinic acetylcholine receptor family. Notably, the second transmembrane domain thought to line the ion channel and conserved among different GABAA receptor subunits, is interrupted by an intron. The 5'-flanking region of the delta gene displays features characteristic of a CpG island and lacks canonical promoter elements such as TATA and CCAAT consensus sequences in proximity to the transcriptional initiation site. The human delta subunit gene was localized on the short arm of chromosome 1.

Amino Acid Sequence

The (6;9) chromosome translocation, associated with a specific subtype of acute nonlymphocytic leukemia, leads to aberrant transcription of a target gene on 9q34.

The specific (6;9)(p23;q34) chromosomal translocation is associated with a defined subtype of acute nonlymphocytic leukemia (ANLL). The 9q34 breakpoint is located at the telomeric side of the c-abl gene. Through a combination of chromosome jumping, long-range mapping, and chromosome walking, the chromosome 9 breakpoints of several t(6;9) ANLL patients were localized within a defined region of 8 kilobases (kb), 360 kb telomeric of c-abl. Subsequent cDNA cloning revealed that this region represented an intron in the middle of a gene, called Cain (can), encoding a 7.5-kb transcript. Disruption of the can gene by the translocation resulted in the expression of a new 5.5-kb can mRNA from the 6p- chromosome. Isolation of chromosome 6 sequences showed that breakpoints on 6p23 also clustered within a limited stretch of DNA. These data strongly suggest a direct involvement of the translocation in the leukemic process of t(6;9) ANLL.

Blotting, Southern

A yeast artificial chromosome telomere clone spanning a possible location of the Huntington disease gene.

The Huntington disease (HD) gene has been mapped to the most distal subband of chromosome 4p. Analysis of recombination events has not provided an unequivocal location of the HD gene, but it indicates a position very close to the telomere as one possibility. We have constructed a yeast artificial chromosome (YAC) vector (containing a rare-cutter polylinker) for the cloning of mammalian telomeres, used it to prepare a BssHII-telomere library with DNA from an individual homozygous for HD, and have identified a 115-kb clone containing the telomere of 4p. One probable recombinant would confine the telomeric candidate location for the gene to the region covered by the YAC, which makes it possible that the clone described here contains the HD locus in its mutant form.

Chromosomes, Fungal

Clustering of multiallele DNA markers near the Huntington's disease gene.

Five highly informative multiallele restriction fragment length polymorphisms (RFLPs) of value for preclinical diagnosis of Huntington's disease (HD) have been genetically characterized. One RFLP was uncovered by expansion of the D4S43 locus while three others are at D4S111 and D4S115, loci defined by NotI-linking clones. The final marker, D4S125, represents a recently discovered VNTR locus. All four loci map closer to the HD gene and to the telomere than D4S10, the original linked marker for HD. In combination with two multiallele RFLPs previously identified for D4S43 and another linked locus, D4S95, these five new multiallele markers will dramatically improve the speed and accuracy of predictive testing in HD, and increase its applicability by maximizing the chances of an informative test for anyone with appropriate family structure.

Alleles