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Comparative physical mapping links conservation of microsynteny to chromosome structure and recombination in grasses.

Nearly finished sequences for model organisms provide a foundation from which to explore genomic diversity among other taxonomic groups. We explore genome-wide microsynteny patterns between the rice sequence and two sorghum physical maps that integrate genetic markers, bacterial artificial chromosome (BAC) fingerprints, and BAC hybridization data. The sorghum maps largely tile a genomic component containing 41% of BACs but 80% of single-copy genes that shows conserved microsynteny with rice and partially tile a nonsyntenic component containing 46% of BACs but only 13% of single-copy genes. The remaining BACs are centromeric (4%) or unassigned (8%). The two genomic components correspond to cytologically discernible "euchromatin" and "heterochromatin." Gene and repetitive DNA distributions support this classification. Greater microcolinearity in recombinogenic (euchromatic) than nonrecombinogenic (heterochromatic) regions is consistent with the hypothesis that genomic rearrangements are usually deleterious, thus more likely to persist in nonrecombinogenic regions by virtue of Muller's ratchet. Interchromosomal centromeric rearrangements may have fostered diploidization of a polyploid cereal progenitor. Model plant sequences better guide studies of related genomes in recombinogenic than nonrecombinogenic regions. Bridging of 35 physical gaps in the rice sequence by sorghum BAC contigs illustrates reciprocal benefits of comparative approaches that extend at least across the cereals and perhaps beyond.

Base Sequence↗

Chromosome structure and condensation in relation to DNA integrity.

Single strand DNA breaks were photo-induced in Chinese hamster chromosomes. An electron microscope analysis indicated dispersion or loss of chromatin, and the linear continuity of the metaphase chromosome was mainly represented by longitudinal chromatin fibres. The degree of chromosome damage was related directly to the photo-exposure, and inversely to the condensation level reached by the chromosome prior to exposure. Photo-irradiation of G2 or early prophase chromatin induced chromosome pulverization. However, if the chromatin had reached the maximum metaphase condensation then DNA breakdown only partially disorganized the chromosome general morphology, suggesting that DNA integrity is a factor in chromosome condensation and structural stability at mitosis.

Animals↗

Satellited Y chromosomes: structure, origin, and clinical significance.

Three cases of inherited satellited Y chromosomes (Yqs) were analysed using several cytogenetic techniques. The cytogenetic data of the 14 cases of Yqs chromosomes described to date were reviewed. All Yqs chromosomes carry an active nucleolus organizer region (NOR) in their long arm and must have developed from translocations involving the short arms of the acrocentric autosomes. The structure of the heterochromatic satellite region in the Yqs chromosomes shows conspicuous inter-familial differences; this permits the reconstruction of the translocations from which the various Yqs were derived. Some causal factors leading to the development of Yqs chromosomes are considered: the specific localization of the four satellite DNAs and highly methylated DNA sequences in the karyotype, and some new experimental data on the spatial arrangement of heterochromatic regions in interphase nuclei. These provide distinct evidence for a preferential involvement of the autosomes 15 and 22 in the translocations with the Y heterochromatin. All clinical reports documenting Yqs males born with malformations were reviewed. It appears that the presence of an extra NOR and NOR-associated heterochromatin in the Yqs chromosomes does not cause any phenotypic abnormalities (as long as the Y euchromatin is intact). The possibility that a Yqs chromosome predisposes to non-disjunction and/or to translocations of other chromosomes is discussed.

Adolescent↗

Detection of numerical and structural chromosome abnormalities in pediatric germ cell tumors by means of interphase cytogenetics.

In contrast to the cytogenetically well characterized testicular germ cell tumors (GCT) in adults, reports on cytogenetic studies in pediatric GCT are scarce. The presence of an i(12p) and numerical abnormalities involving chromosome 12 are the most frequent cytogenetic changes in GCT of adults. We have performed in situ hybridization (ISH) studies on paraffin sections and on isolated nuclei of 13 pediatric GCT with particular emphasis on those chromosome abnormalities that are common in adult GCT. These include numerical and structural abnormalities of chromosomes 1 and 12 as well as numerical deviations of chromosomes 8, 10, X, and Y. The histological subsets of the tumors investigated included two dysgerminomas (DGE), one seminoma (SE), two embryonal carcinomas (EC), four mixed and two pure yolk sac tumors (YST), and one undifferentiated (IT) and one differentiated teratoma (TD). Similar to the GCT in adults, additional copies of chromosome 12 were the most frequently observed numerical abnormalities. In contrast to the findings in adult GCT, changes in the size of the pericentromeric hybridization signals of chromosome 12, suggesting the presence of i(12p) chromosomes, were found in only two cases. No chromosome abnormalities were found in the pure TD or in the TD cells of mixed tumors containing a YST component. In the YST portion, however, Ip deletions and/or numerical chromosome changes were present. Surprisingly, deletions of the short arm of chromosome I, del(I)(p36.3), were frequent in pediatric GCT and were the sole abnormality detected in two cases. The Ip36 deletions were present in all stage-IV EC and YST investigated and were absent in the relatively benign TD and in one YST stage-I. Therefore, Ip36 deletions may have value as a prognostic marker in pediatric GCT.

Adolescent↗

Gene structure, chromosomal localization and analysis of 3-ketosteroid reductase activity of the human 3(alpha-->beta)-hydroxysteroid epimerase.

Following our previous characterization of the first human 3(alpha-->beta)hydroxysteroid epimerase (hHSE), we determined the genomic structure and chromosomal localization of the hHSE gene using fluorescent in situ hybridization (FISH) in this study. The gene spans 23 kb and contains five exons and four introns. FISH mapping assigned this gene to chromosome band 12q13. Primer extension analysis allowed the identification of a single transcription start site at 179 bp upstream from the ATG start codon. The 5'-flanking sequence lacks a typical TATA box in the proximal region of the transcription start site. However, analysis of the 2 kb promoter region revealed the presence of multiple potential transcription factor binding sites. Furthermore, we studied the 3-ketosteroid reductase activity demonstrated by hHSE in intact cells stably expressing the enzyme. It has been known that, in vitro, 3beta-hydroxysteroid dehydrogenase (3beta-HSD) shows both oxidative and reductive activity. Our results showed that hHSE catalyzes the reduction of 3-ketosteroids to form 3beta-hydroxysteroids while 3beta-HSD cannot catalyze this reaction in intact cells. However, hHSE showed 3-keto reductase activity in both microsomal fractions and intact cells. Since intact cells constitute a system which closely reflects in vivo intracellular conditions, we propose that hHSE might contribute to the cellular 3-ketosteroid reductase activity in the peripheral tissues.

3-Hydroxysteroid Dehydrogenases↗

Characterization of the mouse integrin subunit alpha10 gene and comparison with its human homologue. Genomic structure, chromosomal localization and identification of splice variants.

Alpha10beta1 is a collagen-binding integrin expressed by chondrocytes [Camper et al. (1998) J. Biol. Chem. 273: 20383-20389]. In the present study, the mouse alpha10 gene was isolated from a sCos1 SVJ library and the genomic structure and chromosomal localization was determined. The alpha10 gene consists of 30 translated exons spanning a region of approximately 18 kb genomic DNA. The sequences of all exon/intron borders follow the consensus "gt-ag" rule. A transcription start site, determined by primer extension analysis, was located 38 nucleotides upstream of the initiation ATG site. The 5' flanking region of the transcription start site lacked a TATA-box. The first exon contained, in addition to 38 untranslated nucleotides, the ATG translation start site and the major part of the signal peptide. The alpha10 gene was mapped to mouse chromosome 3 by fluorescence in situ hybridization and is the only integrin subunit localized to this chromosome. When we investigated the expression of alpha10 by PCR we found that both mouse and human articular chondrocytes express extracellular splice variants of the alpha10 subunit. In mouse, exon 26 was extended into the intron by 62 nt, generating a truncated alpha10-chain. In human, exon 25 consisted of 114 nt which were alternately spliced in or out.

Alternative Splicing↗

Temperature-induced alteration of the polytene X chromosome structure in male larvae of the strain In(1)BM2 (reinverted) of Drosophila melanogaster.

In Drosophila melanogaster, the polytene X chromosome of male third instar larva appears twice as wide as an unpaired female X chromosome or an autosome. This characteristic morphology of the male X chromosome is correlated with the increased rate of transcription of the sex-linked genes, which ensures gene dosage compensation. In male third instar larvae of the strain In(1)BM2 (reinverted), polytene nuclei manifest unusually puffy X chromosomes at 18 +/- 1 degrees C. Such 'puffy X' chromosomes are pompons, that is, despite the increased width of the chromosome, transcription remains at the wild-type level. This characteristic is a caveat to the invariable correlation between polytene chromosome puffs and transcription, and suggests that the mutant X chromosomes arise due to perturbation of a pathway that controls the structure but not the transcription of the polytene X chromosome. In this report we present evidence that the pompons of In(1)BM2 (reinverted) arise due to spiralization of the male X chromosome, which results in condensing of the chromosome. This unusual structural alteration can be induced only in male larvae of this strain, at the third instar larval stage, through temperature shifts from 24 +/- 1 degrees C to 18 +/- 1 degrees C and during recovery from cold shock. Furthermore, extract from male adult, pupae and third instar larvae can induce chromosome condensation in wild-type larvae in vitro. This new evidence not only explains the absence of correlation between chromosome width and transcription of the pompons of In(1)BM2 (reinverted), but also suggests that the chromosomal rearrangement perturbs a pathway that regulates the condensation of chromosomes.

Animals↗

Infrequent structural chromosome aberrations in women with primary amenorrhea.

Since the problem of primary amenorrhoea (PA) is very real the authors reviewed a series of 58 women from their own laboratory, citing all known causes of PA and emphasizing that the most interesting cases are those with normal karyotype. Reinvestigation of patients with normal karyotype using the banding methods (G and R) revealed new types of structural aberrations of X chromosome. The importance of structural disturbances and rearrangements of particular segments of X chromosome in the etiology of PA has been discussed.

Adult↗

Chromosomal structure in Indian populations of Drosophila immigrans Sturtevant.

Mitotic chromosomes in different Indian geographic populations of D. immigrans were examined by modern air-dried technique. A map of salivary gland chromosomes has been constructed. Several identifiable natural landmarks in each arm of the chromosomes were recognised. Analysis of several different geographic populations has revealed one common inversion in II L. In addition, on deletion has also been detected in the X-chromosomes which is reported for the first time in this species.

Animals↗

On the size of the DNA in the mammalian chromosome. Structural subunits.

Alkaline degradation of mammalian DNA indicates that the molecule exists in the chromosome as an array of structural subunits. The size of the subunit of single-stranded DNA is circa 5 x 10(8) daltons, and it is of sufficient length to contain a number of synthetic units, replicons. The upper size limit of the multicomponent structure is in excess of 10(10) daltons. Mammalian cells of three different origins have been shown to contain the same basic structural DNA components and these components exist throughout the cell cycle. The nature of the links between the subunits is not known.

Animals↗

Unique mosaicism of structural chromosomal rearrangement: is chromosome 18 preferentially involved?

The mentally normal mother of a 4-year-old boy with del(18)(q21.3) syndrome was tested cytogenetically to study the possibility of an inherited structural rearrangement of chromosome 18. She was found to carry an unusual mosaicism involving chromosomes 18 and 21. Two unbalanced cell lines were seen as derivatives of a reciprocal translocation t(18;21), resulting in mosaicism of two cell lines, one with partial monosomy 18q and one with partial trisomy 18q. A literature review revealed that mosaicism of two or more cell lines with different unbalanced structural aberrations is extremely rare; moreover, chromosome 18 appeared to be involved in the majority of cases. We discuss possible mechanisms for the origin of this distinctive chromosomal constitution.

Abnormalities, Multiple↗

Mechanism of DNA replication in Drosophila chromosomes: structure of replication forks and evidence for bidirectionality.

The replicating chromosomal DNA in Drosophila melanogaster cleavage nuclei has been visualized in the electron microscope as a serial array of closely spaced replicated regions created by pairs of diverging replication forks. The fine structure of the forks is very similar to that observed for the replication forks of bidirectionally replicating bacteriophage DNAs. However, the mean length of the single-stranded gaps in Drosophila forks is less than 200 nucleotide residues, much shorter than the gaps in phage forks. This difference in gap length corresponds to the observed difference in the size of Okazaki fragments from Drosophila and phage.

Animals↗

Topoisomerase II inhibition in mitosis produces numerical and structural chromosomal aberrations in human fibroblasts.

We investigated the effects of treatment of mitotic human fibroblasts with the topoisomerase II inhibitor etoposide (VP-16) on chromosome segregation at anaphase and the genetic consequence to daughter cells of topoisomerase inhibition during mitosis. The most striking effect of VP-16 treatment during mitosis was the production of anaphase cells with several entangled chromosomes (catenated anaphase cells). To analyze the effects of sister chromatid catenation at anaphase on the daughter cells, several interphase methodologies were applied to binucleated human fibroblasts that were blocked during cytokinesis. Post-treatment of mitotic cells with the cytokinesis inhibitor cytochalasin-B maintains the reciprocal products of a mitotic division in the same cytoplasm, allowing the distribution of whole chromosomes or chromosome fragments in daughter nuclei or micronuclei to be followed. The presence of micronuclei containing kinetochores, as detected by antikinetochore staining, suggested that VP-16 treatment during mitosis induces chromosome loss in binucleated fibroblasts. Induction of aneuploid cells for chromosomes 7 and 11 was observed by double in situ hybridization using chromosome-specific alphoid probes in binucleated fibroblasts. In addition, double in situ hybridization with adjacent alphoid and classical satellite DNA probes to chromosome 1 demonstrated that both numerical and structural aberrations contribute to the genetic effects of topoisomerase II inhibition in mitosis.

Cell Line↗

Human and mouse GPAA1 (Glycosylphosphatidylinositol anchor attachment 1) genes: genomic structures, chromosome loci and the presence of a minor class intron.

Many eukaryotic cell surface proteins are anchored to the membrane with glycosylphosphatidylinositol (GPI) that is covalently linked to the carboxyl-terminus. A Saccharomyces cerevisiae gaa1 mutant is defective in posttranslational attachment of GPI to proteins. A recent report demonstrated that the GPAA1 gene encodes a component of a transamidase that mediates GPI-anchor attachment. Here, we report structures and chromosome loci of human and mouse GPAA1 genes. Both genes consist of twelve exons that span about 4 kb. Human and mouse GPAA1s are located at 8q24.3 and 15E, respectively. There is a human pseudo GPAA1 gene (GPAA1P1) that is located at 2q12-->q14. Introns 8 of human and mouse GPAA1s were minor class introns bearing AT at the 5' splice sites and AC and AT at the 3' splice sites, respectively. The 3' splice sites of corresponding introns of African green monkey, Chinese hamster, dog and rat were AC, AT, AT and AA, respectively. The mouse GPAA1 gene (Gpaa1) bearing AG at the 3' splice site prepared by site-directed mutagenesis was functional, indicating that any nucleotide is allowed at the 3' end of a minor class intron.

Animals↗

Structural chromosomal abnormalities of 3q in myelodysplastic syndrome/acute myeloid leukaemia with Sweet's syndrome.

Structural rearrangements in the long arm of chromosome 3, del(3)(q12q25) and t(3;5)(q21-25;q31-33), were observed in bone marrow cells from 2 patients with myeloid neoplastic disorders (myelodysplastic syndrome and acute myeloid leukaemia) and acute febrile neutrophil dermatosis (Sweet's syndrome). 3 of the 4 patients with leukaemia-associated Sweet's syndrome and acquired chromosome abnormalities known from the literature also had 3q changes, in 2 involving band 3q21.

Bone Marrow↗