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C M Disteche

Publications and source records attributed to C M Disteche.

At least 127 records · Page 7Linked to original sources

Molecular detection of a translocation (Y;15) in a 45,X male.

A 45,X male individual was shown to have a translocation of Y-chromosome material to the short arm or proximal long arm of chromosome 15. This translocation was detected by genomic DNA blotting and in situ hybridization with Y-chromosome-specific DNA probes.

Chromosome Banding↗

Resistance to paraquat in a mammalian cell line.

Paraquat-resistant variants were isolated in Chinese hamster ovary (CHO) cells by stepwise increases in paraquat concentrations. Three series of selective experiments gave variants which appeared to be using one or several different mechanisms of resistance. In all variants tested (PQ-1, PQ-2, PQ-3, PQ-2X and PQ-3X of series 1), radioactively labeled paraquat was taken up by the cells. These variants exhibited no unusual resistance to either oxygen or radiation, nor were increases found in the activities of free-radical scavenging enzymes. They had extra DNA (3-12%) and an unusual acrocentric marker chromosome which was common to all of the variants but never observed in the parental cells. Double minutes were observed in 29% of metaphases of the PQ-3 variant. One of the resistant lines exhibited evidence of an intrinsic chromosomal instability, a phenotype that could conceivably facilitate gene amplification. Selection series 2 and 3 were designed to further evaluate gene amplification as a mechanism of resistance. These variants exhibited high frequencies (40-100%) of tetraploidy or hypotetraploidy with loss of chromosomes and varying frequencies of double minutes (10-75% of metaphases). In two of the variants the same marker chromosome which was observed in the series 1 variants was seen. Two other lines exhibited a variant of this marker, incorporating it into a metacentric chromosome. It may be that gene amplification facilitates resistance to paraquat and that both stable and unstable methods of amplifying genes are used.

Animals↗

Small deletions of the short arm of the Y chromosome in 46,XY females.

Structural anomalies of the sex chromosomes provide a means to study the location of genes responsible for sex determination. Recently, a type of sex reversal in humans, the 46,XX male, was shown to result in some cases from translocation of Y chromosome material to the X chromosome. In the present report, another type of sex reversal, the 46,XY female, is shown to result, in two cases, from small deletions of the short arm of the Y chromosome. Prometaphase chromosome analysis showed a 46,X,Yp- karyotype. Several Y chromosome-specific DNA probes were found to be deleted in the two female patients. DNA analysis showed that the two deletions were different but included a common overlapping region likely to be essential for male determination.

Chromosome Deletion↗

Quantitative analysis of sex-chromosome mosaicism with X-Y DNA probes.

Sex-chromosome mosaicism was quantitatively analyzed in two patients using DNA probes specific for human X and Y chromosomes. Both patients were female with stigmata of the Turner syndrome, and both had a 45,X cell line and a 46,XY cell line. One of the patients had a morphologically abnormal, nonfluorescent Y chromosome, dic(Y)(q11). Hybridization of DNA from this patient with two repetitive DNA sequences specific for the heterochromatic region of the Y chromosome indicated that most of the Y-heterochromatic sequences were deleted. DNA from both patients was hybridized with a probe for the DXYS1 locus and found to have the X- and Y-linked loci. Densitometric measurements of the relative intensities of the X- and Y-linked bands were used to calculate the degree of mosaicism in each case. The percentages of 45,X cells obtained by DNA analysis agreed with those obtained by chromosome analysis. DNA analysis provides a way to quantitate mosaicism at the DNA level and in nondividing tissue.

Adolescent↗

Chromosomal locations of the murine T-cell receptor alpha-chain gene and the T-cell gamma gene.

Two independent methods were used to identify the mouse chromosomes on which are located two families of immunoglobulin (Ig)-like genes that are rearranged and expressed in T lymphocytes. The genes coding for the alpha subunit of T-cell receptors are on chromosome 14 and the gamma genes, whose function is yet to be determined, are on chromosome 13. Since genes for the T-cell receptor beta chain were previously shown to be on mouse chromosome 6, all three of the Ig-like multigene families expressed and rearranged in T cells are located on different chromosomes, just as are the B-cell multigene families for the Ig heavy chain, and the Ig kappa and lambda light chains. The findings do not support earlier contentions that genes for T-cell receptors are linked to the Ig heavy chain locus (mouse chromosome 12) or to the major histocompatibility complex (mouse chromosome 17).

Animals↗

Isolation and characterization of two repetitive DNA fragments located near the centromere of the mouse X chromosome.

Two repetitive DNA fragments located on the mouse X chromosome are described. The fragments were isolated from a lambda phage library enriched in X-chromosomal sequences by flow sorting. Both fragments, which are repeated 20 to 50 times in the genome, were mapped to the mouse X chromosome by Southern blot hybridization to DNA from hybrid cells retaining the mouse X chromosome, by dosage analysis, and by in situ hybridization to mouse chromosomes. In mouse strain C57BL/10BK, one fragment appeared to be located only on the X chromosome, while the other fragment had homologous sequences on chromosome 11 in addition to the X chromosome. The latter fragment showed DNA variants between mouse strains, which are potentially useful for mapping. Both fragments cross-hybridized to another mouse species: Mus caroli. In this species, each fragment appeared to be located on the X chromosome, indicating that some X-chromosome repetitive sequences are partially conserved. In addition, one fragment cross-hybridized to human DNA.

Animals↗

A cloning assay for 6-thioguanine resistance provides evidence against certain somatic mutational theories of aging.

The frequencies of 6-thioguanine-resistant primary clones from the kidneys and skeletal muscles of aging male cohorts of two F1 hybrid strains of Mus musculus varied from 0.59 to 10.96 X 10(-5) and did not increase as a function of donor age (up to 40 months). Resistant clones were shown to be severely deficient in the activity of hypoxanthine-guanine phosphoribosyltransferase (EC 2.4.2.8). These deficiencies presumably resulted from molecular alterations at this X-linked locus, including point mutations. No alterations of the X-chromosome were observed at the level of the light microscope. These results are inconsistent with predictions of the intrinsic mutagenesis and protein synthesis error catastrophe theories of aging. They do not rule out, however, somatic mutational theories that invoke comparatively large-scale chromosomal lesions, many of which would be likely to be lethal at the cellular level.

Adenine↗

X-inactivation patterns in lymphocytes and skin fibroblasts of three cases of X-autosome translocations with abnormal phenotypes.

X-inactivation patterns were studied by replication analyses both in lymphocytes and skin fibroblasts of two patients carrying balanced X-autosome translocations, t(X;10)-(pter;q11) and t(X;17)(q11;q11), and one patient with an unbalanced translocation t(X;22)(p21;q11). Preferential late replication of the normal X chromosome was found in lymphocytes of both patients carrying balanced translocations and in skin fibroblasts of the patient carrying the translocation t(X;17). However, skin fibroblasts of the patient with a translocation t(X;10) showed preferential late replication of the abnormal der(X) chromosome with no spreading of late replication to the autosomal segment. In the case of unbalanced translocation t(X;22) there was preferential late replication of the der(X) chromosome both in lymphocytes and skin fibroblasts. The abnormal phenotype of the patients is discussed in relation to the observed X-inactivation patterns and the variability of the patterns in different tissues.

Adult↗

Localization of cloned mouse chromosome 7-specific DNA to lethal albino deletions.

Mouse chromosome X- and 7-specific DNA fragments have been isolated from a recombinant DNA library enriched for X(7) chromosome sequences. The library was enriched by flow sorting the X(7) chromosome, a derivation of the Cattanach translocation, prior to library construction. A DNA fragment was found to be located in a region deleted in newborn mice doubly heterozygous for the two albino deletions c3H and c6H in chromosome 7. These chromosome-specific DNA fragments will be useful for studying X inactivation spreading in the X-autosome translocation (T(X;7) 1 Ct) and for investigating the developmental effects of the lethal albino deletions.

Albinism↗

Altered differentiation, indefinite growth potential, diminished tumorigenicity, and suppressed chimerization potential of hybrids between mouse teratocarcinoma cells and thymocytes.

Hybrids between normal mouse thymocytes and a hypoxanthine-guanine phosphoribosyl transferase (HGPRT) -deficient, pseudodiploid, multipotent mouse teratocarcinoma cell line displayed predominately hypotetraploid modes with differential patterns of karyotypic variation and no apparent consistent pattern of chromosome segregation. The hybrids failed to express thymocyte antigens Thy-1.2, Lyt-1, and Lyt-2, indicating suppression of thymocyte differentiation. Like the teratocarcinoma parent, the hybrids had an embryonal carcinoma (EC) stem cell component which exhibited indefinite growth potential in vitro and produced tumors with multiple pathways of tissue differentiation when injected subcutaneously. Hybrids had decreased proportions of EC cells and individually unique patterns of differentiation. The tumorigenicity of hybrids was diminished, indicating partial suppression of the neoplastic phenotype by the genome of the thymocyte parent. The EC parent gave chimerization frequencies of 18.5-19.2%, confirming the findings of Dewey et al. that mutant teratocarcinoma cells can be used to synthesize chimeric mice. "Selfed" near-tetraploid EC cells gave a frequency of 2.3%, showing that an increase in ploidy can reduce, although not eliminate, chimerization potential. No chimeras could be detected with hybrids (frequency less than 0.65%). Thus, there was no evidence that a thymocyte could be "reprogrammed" to participate in new developmental pathways.

Animals↗

Isolation of mouse x-chromosome specific DNA from an x-enriched lambda phage library derived from flow sorted chromosomes.

A lambda phage library enriched in X(7) chromosomal material has been constructed from flow sorted chromosomes isolated from mice carrying the Cattanach translocation T(X;7)1Ct. The flow sorted fraction that was cloned contained 40% X(7) chromosomes, so that the resulting lambda phage library should be more than 10-fold enriched for X chromosomal DNA. Approximately 100,000 lambda phage clones were obtained; of these, at least 80% were recombinant. Three quarters of recombinants were positive for mouse repetitive DNA as detected either by phage plaque filter hybridization or by Southern blotting. Recombinant DNA inserts were prepared from some of the remaining nonrepetitive phage fraction. The X-chromosome specificity of cloned DNA inserts was tested by hybridization to DNA from mouse-hamster somatic cell hybrids that had retained all or most of the mouse X as the only mouse chromosome and by comparison of the extent of hybridization to DNA from male and female mice. Out of nine cloned unique sequence segments successfully examined thus far, two were presumably derived from the X. Possession of phage library highly enriched for mouse X DNA should facilitate molecular studies of the control of X chromosome gene expression.

Animals↗

Flow sorting of the mouse Cattanach X chromosome, T (X; 7) 1 Ct, in an active or inactive state.

Cells containing the mouse T(X;7)1Ct translocation were used to separate active and inactive X chromosomes. Cytophotometric data showed that the X(7) chromosome was at least 15% larger than any normal mouse chromosome. Cloned cell lines were established from male and female embryos with a normal karyotype and carrying the X(7) chromosome in an active or inactive state as shown by replication kinetics. As expected from the cytophotometric data, flow histograms of normal mouse chromosomes stained with 33258 Hoechst had five peaks. A sixth peak was present when the chromosomes came from mice carrying T1Ct. In this peak 6, 30 to 50% of the chromosomes were X(7) and there was almost no contamination by the normal X chromosome.

Animals↗

Late replication in an X-autosome translocation in the mouse: correlation with genetic inactivation and evidence for selective effects during embryogenesis.

A technique involving 5-bromodeoxyuridine, 33258 Hoechst, and fluorescence microscopy has been used to analyze replication kinetics in cells from embryonic and adult mice bearing the Cattanach [T(X;7)ICt] translocation in a balanced or an unbalanced form. In balanced 9- and 13-day female embryos, the translocated X was late replicating in 28 and 22% of the cells, respectively, whereas it was late replicating in only 13% of adult cells. In contrast, in unbalanced females, the translocated X was late replicating in 62 and 70% of 9- and 13-day embryos and in 70% of adult cells. Such divergent late replication frequencies suggest the operation, during development, of selection against cells with extreme genetic imbalance. Within a late-replicating translocated X chromosome, the autosomal segment itself replicated late approximately half of the time, regardless of karyotypic balance. The late replication data are consistent with the measurements of levels of mitochondrial malic enzyme (MOD-2, whose locus is on the autosomal segment) activity in these mice [Eicher E. & Coleman, D. (1977) Genetics 85, 647-658]. The present study also shows a dissociation between the replication timing in X chromatin distal and proximal to the autosomal segment, supporting the hypothesis of at least two inactivation centers in the X chromosome.

Animals↗

The mouse Cd83 gene: structure, domain organization, and chromosome localization.

Human CD83 (hCD83) is a 45 000 Mr cell-surface protein expressed predominantly by dendritic lineage cells. In this report, the genomic locus encoding mouse CD83 (Cd83) was isolated and the gene structure determined. The Cd83 gene spans approximately 19 kilobases (kb) and is composed of five exons, with two exons encoding a single extracellular immunoglobulin (Ig)-like domain. Mouse CD83 (mCD83) cDNAs were isolated by reverse transcriptase polymerase chain reaction of mouse RNA. Sequence determination revealed substantial conservation, with mCD83 and hCD83 sharing 63% amino acid identity. The transmembrane and cytoplasmic regions of CD83 were most highly conserved. Mouse CD83 mRNA of 2.4 kb was abundantly expressed in spleen and brain, but could also be detected in most tissues analyzed. These results suggest that in the mouse, as in humans, widely distributed dendritic cells may express mCD83. Chromosome localization revealed that the Cd83 gene is present on mouse chromosome 13 band A5, while the locus for the human gene (CD83) is located within a homologous region of human chromosome 6p23. Thus, the CD83 protein and gene appear to be well conserved during recent mammalian evolution. The isolation and characterization of the mCD83 cDNA and gene provides important information and tools that will facilitate the study of CD83 and dendritic cell function in a mouse model system.

Amino Acid Sequence↗

Age-related increase in methylation of ribosomal genes and inactivation of chromosome-specific rRNA gene clusters in mouse.

An age-related increase in DNA methylation of the multicopy 18S and 28S ribosomal RNA genes was found in CBA/Ca mice beginning between 6 and 18 months of age at the 5' end of these genes in liver, brain and spleen. The highest level of age-associated hypermethylation was mapped to the proximal 5' spacer domain. Silver staining of actively transcribing ribosomal genes in metaphase chromosomes from stimulated spleen cells provided cytological evidence that these mice have 3 rRNA cistrons located on chromosomes 15, 16, and 18. The ribosomal gene cluster located on chromosome 16 was preferentially inactivated in older animals. Exposure of spleen cells from older individuals to 5-azacytidine appeared to both reactivate ribosomal gene clusters and reduce rRNA gene methylation.

Aging↗