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J Chelly

Publications and source records attributed to J Chelly.

At least 91 records · Page 5Linked to original sources

Mutations in the connexin 32 gene in X-linked dominant Charcot-Marie-Tooth disease (CMTX1)

X-linked dominant Charcot-Marie-Tooth disease (CMTX1) is a peripheral neuropathy which maps to Xq13 and is flanked by the loci DXS106 (Xq11.2-q12) and DXS559 (Xq13.1). Contained within this interval of approximately 2-3Mb of DNA is the gene, connexin 32 (locus designation GJ beta 1). This gene encodes a gap junction protein which is expressed in large quantities within the liver and throughout a range of other mammalian tissues. We have sequenced the coding region of exon 2 of this gene from affected individuals in nine families with CMTX 1 and have found mutations which segregate with the disease in eight of these families. The mutations detected include missense point mutations at codons 15, 60, 63, 208, and 215, a nonsense point mutation at codon 220, deletions of one base in codon 72/3 producing a stop codon 12 codons down stream and a three base pair deletion which can be predicted to result in the loss of a single amino acid. These findings are consistent with the disease CMTX1 being the result of mutations affecting the gene connexin 32 (Cx32).

Amino Acid Sequence↗

Absence of the XIST gene from late-replicating isodicentric X chromosomes in leukaemia.

The mechanism of X-inactivation in man is thought to involve a specific cis-acting locus within the X-inactivation centre at Xq13 (1,2). The XIST gene (X inactive specific transcript) at Xq13 is ubiquitously expressed only from the inactive X and as such may be involved in or influenced by the X-inactivation process (3,4). We have localised the breakpoints on two acquired isodicentric X chromosomes associated with leukaemia to a 450 kilobase region of DNA within Xq13, which result in deletion of the XIST gene. We have demonstrated that these chromosomes remain inactive and that there is no evidence of XIST expression from the remaining intact X chromosomes. The data suggest that XIST is not required for the maintenance of X-inactivation on these somatically rearranged X chromosomes.

Anemia, Refractory, with Excess of Blasts↗

The t(X;18)(p11.2;q11.2) translocation found in human synovial sarcomas involves two distinct loci on the X chromosome.

A high proportion of synovial sarcomas contain the reciprocal translocation t(X;18)(p11.2;q11.2). We have previously localized the breakpoint on the X chromosome between the X chromosome marker DXS255 and an ornithine aminotransferase (OAT) pseudogene region designated OATL2. Subsequently by fluorescence in situ hybridization (FISH) we provided evidence that YACs corresponding to the OATL2 locus spanned the break-point. In order to confirm the position of this breakpoint cosmids corresponding to the OATL2 region were isolated. Most of these cosmids mapped to four cosmid contigs designated C1-C4. Analysis of two contigs, C1- and C4, using FISH established that in four of six synovial sarcomas examined the breakpoint occurs between these two contigs: C1 lies distal to the break-point while C4 is proximal. In contrast we provide evidence that the breakpoint in the remaining two tumours mapped to a second pseudogene region called OATL1 that is telomeric to the OATL2 locus. This heterogeneity of the breakpoint position on the X chromosome explains why in previous mapping studies there have been discrepancies between the results obtained by different laboratories.

Chromosome Mapping↗

A null allele frequent in non-Jewish Tay-Sachs patients.

The molecular basis of null alleles was investigated by cDNA polymerase chain reaction (PCR) in seven Tay-Sachs patients. Although mRNAs were undetectable by Northern blot, cDNA-PCR amplification allowed us to get a sufficient amount of cDNA to characterize abnormal transcripts. In two French patients (one homozygote and one compound heterozygote with a 4-bp insertion in exon 11 of the second allele) suffering an infantile form of the disease, we detected abnormal RNAs with a 17-bp insertion due to a GT to AT transition at the donor site of intron 9, resulting in the activation of a cryptic donor site in the intron. This mutation has been found in 9 out of 82 Tay-Sachs chromosomes (11%) in association with alleles responsible from different clinical courses. In the other five patients we found the 4-bp insertion in exon 11 and two nonsense mutations.

Alleles↗

Isolation of a candidate gene for Menkes disease that encodes a potential heavy metal binding protein.

Menkes disease is a lethal-X linked recessive disorder associated with copper metabolism disturbance. We have recently mapped two chromosome breakpoints related to this disease in a 1 megabase yeast artificial chromosome contig at Xq13.3. We now report the construction of a phage contig and the isolation of candidate partial cDNAs for the Menkes disease gene. The candidate gene expresses an 8 kb message in all investigated tissues, and deletions were detected in 16% of 100 unrelated Menkes patients. The deduced partial protein sequence shared the GMTCXXC motif with bacterial metal resistance operons, suggesting a potential heavy metal binding protein. These findings should lead to more accurate prenatal diagnosis of this severe disease and a better understanding of the cellular homeostasis of essential heavy metals.

Adenosine Triphosphatases↗

Characterisation of molecular DNA rearrangements within the Xq12-q13.1 region, in three patients with X-linked hypohidrotic ectodermal dysplasia (EDA).

A panel of somatic cell hybrids and X-linked hypohidrotic ectodermal dysplasia (EDA) patient-derived cell lines, containing different rearranged X chromosomes, have been used to refine the physical map of the Xq12-q13.1 region. The patient-derived material included genomic DNA from an EDA male (EDA family 1015) with an interstitial deletion, and a cell line GM0705A, obtained from an isolated female patient with a de novo balanced (X;9) translocation, and the somatic hybrid, AnLy, derived from this cell line. This map subdivides the region into at least 6 mapping-intervals. DNA probes from DXS732 and DXS453, identified as the closest flanking marker loci to the EDA locus, were used to identify homologous Yeast Artificial Chromosome (YAC) clones. Two of the DXS732-specific YACs were shown by fluorescent in situ hybridisation (FISH) analysis to bridge the (X;9) translocation breakpoint. These two YACs were also screened against the ICRF human X chromosome cosmid library and identified 36 cosmid clones. Direct cosmid-cosmid hybridisation analysis placed subsets of these clones within four different cosmid contigs. Mapping of anchor clones from each contig, against the mapping panel, localised all these contigs within the Xq12-q13.1 region. One cosmid, ICRFc104C03.184, identified potential junctional-fragments in several restriction digests of AnLy hybrid DNA. This was confirmed by FISH analysis of the GM0705A cell line with total cosmid ICRFc104C03.184, in which both chromosomal elements of the (X;9) translocation were identified. A single-copy probe pC03.184E2, derived from this cosmid, also identified the der(9)-derived junctional fragment when hybridised against AnLy DNA.(ABSTRACT TRUNCATED AT 250 WORDS)

Cell Line↗

Fine mapping of the human SCIDX1 locus at Xq12-13.1.

Previous linkage analysis of families with X-linked severe combined immunodeficiency (SCIDX1) mapped this locus to a large region encompassing about 10 to 20 cM at Xq12-21. We have analyzed in SCIDX1 families the segregation of 7 highly polymorphic microsatellites repeats localized to this region, including a new polymorphic microsatellite at the DXS135 locus described in this study, to refine the mapping of this disease locus. The observations of genetic recombinants within the previously defined SCIDX1-region allow us to establish new flanking markers at the DXS135 and DXS227 loci, which significantly reduce the region harboring the SCIDX1 locus to a distance estimated between 3 to 5 cM. The existence of multiple, highly polymorphic markers in the refined SCIDX1 region will greatly improve the accuracy of carrier detection and prenatal diagnosis for SCIDX1.

Alleles↗

2.6 Mb YAC contig of the human X inactivation center region in Xq13: physical linkage of the RPS4X, PHKA1, XIST and DXS128E genes.

X chromosome inactivation is a mechanism of dosage compensation that regulates the expression of mammalian X-linked genes between XY males and XX females. This phenomenon is cis-acting, clonally heritable, and requires the presence of an X inactivation center (XIC). In our attempts to characterize this phenomenon, we have focused on the physical organization of the human XIC localized to Xq13. From previous studies, we had determined that the candidate XIC interval contained two loci (DXS128 and XIST) and was bound by the breakpoints of two structurally abnormal inactivated X chromosomes, a t(X;14) and an idic(Xp). Here we present a refined mapping of the XIC-containing region using the breakpoint of a late replicating rearranged X (rea(X)), and the initial characterization of a set of 40 yeast artificial chromosomes (YACs) derived from the XIC-containing region. These YACs form a 2.6 Mb contig which completely covers the XIC, and physically links the RPS4X, PHKA1, XIST, and DXS128E genes, as well as a laminin receptor pseudogene (LAMRP4). Furthermore, we have determined the relative orientations of these four genes, and have derived a restriction map of the region using the rare cutter enzymes BssHII, EagI, MluI, NruI, SalI, SfiI, SstII (or SacII), and NotI. We have identified at least 9 CpG-rich islands within this region, and have discovered a large (approximately 125 kb) inverted duplication proximal to the XIC based on symmetrical restriction patterns and homologous probes. We estimate the maximum size of the XIC-containing interval to be between 680 kb and 1200 kb, based on the localization of the breakpoints of the rearranged X chromosomes mentioned above. This lays the groundwork for the further characterization of the XIC region and the isolation of other expressed sequences therefrom.

Amino Acid Sequence↗

Illegitimate transcription: its use in the study of inherited disease.

In 1988, by using the powerful and accurate cDNA/PCR technique, it was demonstrated that there are very low levels of dystrophin mRNA in a variety of non-muscle tissues, including cultured fibroblasts and lymphoblastoid cell lines. The phenomenon was also shown for a number of other tissue-specific genes, including beta-globin, factors VIIIc and IX, anti-Müllerian hormone, L-pyruvate kinase, retinal blue pigment, phenylalanine hydroxylase. The level of transcript in inappropriate cells is exceedingly low, perhaps one mRNA per 100-1000 cells. This low-level ubiquitous transcription of tissue-specific genes was called "illegitimate" or "ectopic" transcription, and has been proven to occur for 17 gene transcripts to date. The mechanism and biological significance of illegitimate transcription are still obscure, but, since illegitimate transcripts exhibit the same pathology as legitimate transcripts, they have been useful tool in the study of already 9 inherited diseases. This strategy will be applied widely for diseases where samples from the appropriate tissue for study is difficult to obtain, or where an mRNA is easier or more informative to study than a genomic DNA (as for large genes, or where alternative splicing is involved).

Animals↗

CFTR illegitimate transcription in lymphoid cells: quantification and applications to the investigation of pathological transcripts.

Since the isolation of the cystic fibrosis transmembrane conductance regulator gene (CFTR) and the characterization of the main mutation (delta F508) in 1989, a large number of rare mutations has been found. Full screening of the CFTR gene is difficult because it is split into 27 exons covering 250 kb of genomic DNA. This gene is essentially expressed in the lung and intestinal tract, neither of which are easily accessible for routine investigations. The recent description of a faint transcription of highly tissue-specific genes in any cell, a phenomenon known as illegitimate transcription, would facilitate the research of mutations and the characterization of truncated m-RNA caused by splicing mutations. Using the polymerase chain reaction on cDNA (cDNA-PCR), we detected transcripts of the CFTR gene in lymphocytes and lymphoblast cells at a very low level (about 300 times less than in lung or intestine). This strategy allowed us to obtain a sufficient amount of cDNA-PCR product compatible with further molecular analyses. We have, therefore, analyzed a cDNA fragment overlapping exons 10 and 11 by polyacrylamide gel electrophoresis and direct sequencing, and detected the delta F508 mutation at this level. Our protocol can be generalized to the investigation of the total 4.5-kb CFTR coding sequence.

Animals↗

Isolation of DNTR polymorphisms from yeast artificial chromosomes encompassing X chromosomal loci PGK1 and DXS56.

Five dinucleotide tandem repeat (DNTR) sequences were isolated from yeast artificial chromosomes containing the PGK1 and DXS56 loci in Xq13. Sequence information of these DNTR loci is given. Four of the five DNTR sequences were polymorphic. Polymorphism information content values were 0.44, 0.49, 0.47, and 0.76 for loci PY5-10, PY2-31, 4548-1, and 4548-7, respectively. Corresponding heterozygosities were 0.55, 0.55, 0.56, and 0.78. These DNTRs are useful for the fine mapping of disease loci in Xq13 and provide sequence tagged sites for this region of the X chromosome.

Base Sequence↗

Characterization of a 1.0 Mb YAC contig spanning two chromosome breakpoints related to Menkes disease.

Menkes disease, an X-linked recessive disorder of copper metabolism, has recently been mapped to Xq13.3 by two Menkes patients carrying chromosome rearrangements within this region. The breakpoints have been investigated by nonisotopic in situ suppression hybridization using YACs isolated from this region with the flanking markers DXS56 and PGK1. Three YACs were extending over the breakpoints at Xq13.3 and were shown to be overlapping by partial digest restriction maps, IRS-PCR fingerprinting and by the presence of common cosmid clones. These cosmids were subcloned and one of the single copy probes detected both breakpoints using rare-cutting restriction enzyme digests of the patients. All the results together localize the breakpoints to about 100 kb within the overlapping region of the YACs. Mapping of both breakpoints in a 1 Mb YAC contig implies that these YACs contain at least partially, the gene responsible for Menkes disease.

Chromosome Aberrations↗

A YAC contig in Xp21 containing the adrenal hypoplasia congenita and glycerol kinase deficiency genes.

The gene loci for adrenal hypoplasia congenita (AHC) and glycerol kinase deficiency (GK) map in Xp21 distal to Duchenne muscular dystrophy (DMD), and proximal to DXS28 (C7), by analysis of patient deletions. We have constructed a yeast artificial chromosome (YAC) contig encompassing a 1.2 Mb region extending distally from DMD, and containing DXS708 (JC-1), the distal junction clone of a patient with GK and DMD. A pulsed-field gel electrophoresis map of the YAC contig identified 3 potential CpG islands. Whole YAC hybridization identified cosmids both for construction of cosmid contigs, and isolation of single copy probes. Thirteen new single copy probes and DXS28 and DXS708 were hybridized on a panel of patients; the deletion mapping indicates that the YAC contig contains both GK and at least part of AHC, and together with the physical map defines a GK critical region of 50-250 kb. In one AHC patient with a cytogenetically detectable deletion we used the new probes to characterize a complex double deletion. Non-overlapping deletions observed in other unrelated AHC patients indicate that the AHC gene is large, extending over at least 200-500 kb. This mapping provides the basis for the identification of the AHC and GK genes.

Adrenal Gland Diseases↗

[Molecular pathology of Duchenne and Becker muscular dystrophy].

Duchenne and Becker muscular dystrophies (DMD and BMD) are two allelic recessive X-linked disorders. Molecular deletions of various regions of the dystrophin gene are the main mutations detected in DMD and BMD patients. Molecular study of DMD and BMD DNA are instrumental to understand the pathological molecular mechanisms and the function of the protein. We describe here dystrophin and its interaction with a glycoprotein complex and we then focus on two particular patients with partial deletions of the dystrophin gene: 1) a typical Becker patient, who shows an intragenic deletion disrupting the reading frame. We describe in this case alternative splicings restoring the reading frame, which might explain the mild clinical phenotype of this patient, 2) a deletion of the distal part of the DMD gene coding for the carboxyterminal domain of the dystrophin in a young patient. The normal localization of dystrophin at the inner face of the plasma membrane in the muscle of this patient suggests that the last domain of this protein is not sufficient to anchor dystrophin at the membrane.

Dystrophin↗

[Illegitimate transcription: discovery and application to gene molecular pathology].

In 1988, by using the powerful cDNA/PCR technique, it was demonstrated that there are very low levels of dystrophin mRNA in a variety of non-muscle tissues, including cultured fibroblasts and lymphoblastoid cell lines. The phenomenon was also shown for a number of other tissue-specific gene, including beta-globin, factors VIIIc and IX, anti-müllerian hormone, L-pyruvate kinase, retinal blue pigment, phenylalanine hydroxylase. The level of transcript in inappropriate cells is exceedingly low, perhaps one mRNA per 100-1,000 cells. This low-level ubiquitous transcription of tissue-specific genes was called "illegitimate" or "ectopic" transcription, and has been proven to occur for 17 gene transcripts to date. The mechanism and biological significance of illegitimate transcription are still obscure, but, since illegitimate transcripts exhibit the same pathology as legitimate transcripts, they have been useful tool in the study of already 9 inherited diseases. This strategy will be applied widely for diseases where samples from the appropriate tissue for study is difficult to obtain, or where an mRNA is easier or more informative to study than a genomic DNA (as for large genes, or where alternative splicings is involved).

Humans↗