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Structural chromosome aberrations in a case of angioleiomyoma.

Chromosome analysis of cells from an angioleiomyoma revealed the karyotype 46,XX,del(6)(p21p23),del(21)(q21)/46,XX. The possible importance of these structural derangements is discussed within the framework of current knowledge on chromosome aberrations in benign neoplasms.

Adult↗

Gene structure, chromosomal location, and basis for alternative mRNA splicing of the human VCAM1 gene.

Vascular cell adhesion molecule 1 (VCAM-1) is a cell surface glycoprotein adhesive for certain blood leukocytes and tumor cells, which is expressed by activated endothelium in a variety of pathologic conditions including atherosclerosis. Genomic clones encoding the VCAM1 gene were isolated and the organization of the gene was determined. The gene, which is present in a single copy in the human genome, contains 9 exons spanning approximately 25 kilobases of DNA. Exons 2-8 contain C2 or H-type immunoglobulin domains. At least two different VCAM-1 precursors can be generated from the human gene as a result of alternative mRNA splicing events, which include or exclude exon 5. A consensus TATAA element is located upstream of the transcriptional start site. The VCAM1 promoter contains consensus binding sites for NF-kappa B, the GATA family of transcription factors, as well as an AP1 site. The VCAM1 gene was assigned to the 1p31-32 region of chromosome 1 based on the analysis of human-mouse hybrid cell lines and in situ hybridization. Structural analysis of the human VCAM1 gene provides the basis for alternative mRNA splicing and an initial approach to elucidating the regulation of VCAM-1 expression.

Amino Acid Sequence↗

Structural chromosomal abnormalities in gynecologic malignancies.

Surgical specimens taken from four patients with gynecologic malignancies were cultured, and metaphase chromosomes were prepared after staining with chromamycin-A, distamycin, and DAPI. Four specially selected karyotypes and their structural aberrations are discussed in this study and compared with those (also from carcinomas) previously described in the literature.

Adenocarcinoma↗

Structure, chromosome mapping and regulation of the mouse zinc-finger gene Krox-24; evidence for a common regulatory pathway for immediate-early serum-response genes.

The structure of Krox-24, a mouse zinc-finger-encoding gene that is transiently activated during G0/G1 transition, has been established. Krox-24 is located on mouse chromosome 18, bands C-D. The gene product, as anticipated for a putative DNA-binding protein, is localized within the cell nucleus. The Krox-24 5'-flanking region contains a series of serum response elements (SREs) similar to the SRE observed upstream of the c-fos proto-oncogene. These elements can substitute for the c-fos SRE, their effect is cumulative and they bind the same cellular factor, the serum response factor (SRF), as the c-fos SRE. This suggests that the SRE and its cognate protein are likely to be involved in the regulation of Krox-24 and presumably of other immediate-early serum response genes. SRE and SRF therefore constitute key components in the regulatory pathway leading from mitogenic stimulation to cellular proliferation.

Amino Acid Sequence↗

Maturation at high frequency of germinal-vesicle-stage mouse oocytes after cryopreservation: alterations in cytoplasmic, nuclear, nucleolar and chromosomal structure and organization associated with vitrification.

After thawing and culture in vitro, greater than 90% of germinal-vesicle (GV)-stage mouse oocytes cryopreserved by vitrification, were capable of resuming meiosis and undergoing normal chromosomal and cytoplasmic maturation to metaphase II. This high frequency of development occurred against a background of profound alterations in the structure and organization of the cytoplasm, nucleus, nucleolus and chromatin during the dehydration stage of vitrification. Most, but not all, cytoplasmic and nuclear perturbations returned to a normal state during post-thaw culture. However, the results clearly demonstrate that vitrification is associated with chromosomal and cellular disorders that could adversely affect development after fertilization. Irreversible changes of potential developmental significance observed after vitrification at the GV stage include (i) premature chromosomal condensation, (ii) mixing of nucleoplasmic and cytoplasmic components prior to GV breakdown, and (iii) externalization of chromatin fragments into the cytoplasm after reformation of the oocyte nucleus, which shows the potential for the generation of fertilizable oocytes containing deleted segments of DNA.

Animals↗