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Biomedical subjects

A Corallini

Publications and source records attributed to A Corallini.

At least 37 records · Page 2Linked to original sources

HIV type 1 extracellular Tat protein stimulates growth and protects cells of BK virus/tat transgenic mice from apoptosis.

Cells from BKV/tat transgenic mice were characterized for their tumorigenic phenotype in nude and syngeneic BDF mice. The results indicate that the BKV/tat recombinant transgene has a weak tumorigenic potential, mostly predisposing to oncogenesis, and that second events are required for the development of tumorigenicity. Tat is endogenously produced and released by tumor cells. It is taken up by recipient cells directly from the culture medium, without need of cell to cell contact. Extracellular Tat stimulates proliferation of cells from BKV/tat transgenic mice and protects them from apoptosis under conditions of serum starvation. Our results are in agreement with a model in which Tat induces its effects on target cells in two different ways. Growth promotion may require interaction of extracellular Tat with surface receptors eliciting a signal for cell proliferation, whereas intranuclear localization of Tat is necessary for transactivation of viral and cellular genes.

Animals↗

Herpesvirus-like DNA sequences in non-AIDS Kaposi's sarcoma.

The pathogenesis of Kaposi's sarcoma (KS) is suggested to be related to an infectious agent transmitted by sexual contact. Recently, DNA sequences homologous to gamma herpesviridae have been identified in AIDS-associated KS, but no information is available concerning non-AIDS-associated KS. Five classic, 12 endemic, and 17 AIDS-associated KS skin lesion specimens were analyzed and all were positive for these novel DNA sequences. Twenty-four specimens from normal skin were negative. These novel sequences were also found in lymph nodes from human immunodeficiency virus-positive patients with AIDS or lymphadenopathy syndrome but not in peripheral blood mononuclear cells from normal subjects. Therefore, the data support the view that a novel gamma herpesvirus might be specifically associated with KS etiopathogenesis.

Acquired Immunodeficiency Syndrome↗

Multiple loci on human chromosome 11 control tumorigenicity of BK virus transformed cells.

BK virus (BKV) is a human papovavirus that readily transforms rodent cells, but not human cells, to a neoplastic phenotype, suggesting that tumor-suppressor functions expressed in human cells control BKV oncogenicity. Transfer of a normal human chromosome 11 to BKV-transformed mouse cells suppresses the malignant phenotype. In this report we map the regions of chromosome 11 involved in tumor suppression. Transfer of chromosome 11 to the BKV-transformed hamster cell line HKBK produces monochromosomic hybrids retaining only portions of the transferred human chromosome. We have compared the tumorigenicity of the hybrids with the molecular mapping of chromosome 11 retained regions. This analysis indicated that 3 regions of human chromosome 11, 11p15.5, 11p13 and 11q13, cooperate in tumor suppression. However, 11q13 seems the most important, since all the HKBK/H11-induced tumors analysed had lost this region, whereas 11p15.5 and 11p13 were sometimes retained. The chromosomal regions identified in this study are deleted in several types of human tumors, suggesting that the BKV transformation system specifically detects tumor-suppressor genes on chromosome 11 that are involved in human oncogenesis. This model may be of use in isolating and cloning such genes. The results of this report raise the possibility that BKV may have a synergistic tumorigenic effect in human cells where tumor-suppressor genes controlling its oncogenic potential are inactivated.

Animals↗

Tumor and growth suppression of breast cancer cells by chromosome 17-associated functions.

Losses of functions from chromosome 17 are the most frequent genetic abnormalities in human breast cancer. To assess the biological role of chromosome 17 in the development of breast cancer, we transferred a normal human chromosome 17 to two breast cancer cell lines. No viable clone maintaining an intact chromosome was obtained in either MDA-MB-231 or MCF-7. Only one MDA-231/H17 clone contained the long arm of the transferred chromosome 17. Interestingly, this clone lost the ability to induce tumors in nude mice, indicating that at least one gene mapping to the long arm of chromosome 17 could suppress the tumorigenic phenotype. The p53 protein most likely was responsible for the selective loss of the short arm of the chromosome. Both cell lines have no wild-type p53 activity. MDA-MB-231 carries a single mutant TP53 allele, while MCF-7 carries two wild-type alleles, but p53 protein is excluded from the nucleus. Transfection in both cell lines of vectors expressing wild-type p53 produced only clones with rearrangements of the transfected TP53 complementary DNA. Thus, nonregulated expression of the p53 protein driven by the strong cytomegalovirus promoter may have triggered a rapid process of cell death. Stable expression of a mutant p53 in MCF-7 cells proved that nuclear localization of the protein was possible; however, no progression toward an estrogen-independent tumorigenic phenotype was induced. This work indicates that functional inactivation of the wild-type p53 protein and of the product of a gene located on 17q are essential to the development of breast neoplasms.

Amino Acid Sequence↗

Suppression of tumorigenicity of breast cancer cells by microcell-mediated chromosome transfer: studies on chromosomes 6 and 11.

Development of breast cancer has been associated with deletions at multiple chromosomal regions, including 6q, 11p, and 11q. In this study we analyzed the effects of the introduction of chromosomes 6 and 11 on the cell phenotype of the breast cancer cell lines MDA-MB-231 and MCF-7. Chromosome 6 induced alterations of in vitro growth properties and suppressed tumorigenicity of MDA-MB-231 cells. Spontaneous reduction of the transferred chromosome allowed mapping of the tumor suppressor gene(s) to region 6q21-q23 and/or 6q26-q27. Clones MCF-7/H6 underwent a senescence process that lasted five months. Chromosome 11 had no effect on MDA-MB-231 cells, although it suppressed tumorigenicity of MCF-7 cells. A MCF-7/H11 clone lacking the short arm of the transferred chromosome retained tumorigenicity, however, tumor cell growth was significantly reduced. These results suggest that each chromosomal arm may contain genes important for the suppression of MCF-7 tumorigenic properties.

Breast Neoplasms↗

[Tumor suppressor genes. New perspectives for clinical investigations in cancer].

Tumor origin is viewed as comprising a series of specific genetic events in target cells and their clonal descendants. The development of molecular biology during the last decade has led to the recognition that these events fall into two distinct categories: the activation of protooncogenes and the inactivation of tumor suppressor genes. The latter are genes the inactivation of which is required for the malignant transformation of a cell. Loss of tumor suppressor genes plays an important role in the development of human tumors. Studies with somatic cell hybrids have shown that tumor suppression occurs in neoplastic cells and can be corrected by cell fusion with normal human chromosome. These experiments proved that tumorigenicity is a recessive phenotype controlled by specific chromosomes. Certain tumor suppressor genes, e.g. p53 and RB1, may be involved in a variety of malignancies whereas others, e.g. the DCC gene, may be restricted to a single type of cancer. The detection of germline mutations in tumor suppressor genes should allow the identification of subjects at high risk of developing cancer.

Cell Transformation, Neoplastic↗

Systemic expression of HIV-1 tat gene in transgenic mice induces endothelial proliferation and tumors of different histotypes.

The human immunodeficiency virus tat protein, a transactivator of viral and cellular genes, is suspected to be involved in the pathogenesis of acquired immunodeficiency syndrome-associated tumors. We report that transgenic mice carrying a recombinant DNA containing BK virus early region and the human immunodeficiency virus tat gene develop skin leiomyosarcomas, squamous cell papillomas and carcinomas, adenocarcinomas of skin adnexa, glands, and B-cell lymphomas. Although the incidence of hepatocellular carcinoma is low, most animals show a liver cell dysplasia of variable degree. These mice are also affected by skin lesions resembling the early stages of Kaposi's sarcoma. The transgene was detected intact in all the organs of transgenic mice, generally as multiple tandemly integrated copies. BK virus early region and tat were expressed in essentially all tissues and organs of BK virus/tat transgenic mice. This transgenic mouse model is representative of the systemic involvement of tat in human immunodeficiency virus natural infection and may be applied to investigate the role of tat in malignancies associated to acquired immunodeficiency syndrome, to study Kaposi's sarcoma pathogenesis and cell of origin, to characterize preneoplastic conditions established by tat in the skin and liver, and to assess in vivo the efficacy of antiangiogenic and anti-tat-specific drugs.

Adenocarcinoma↗

Suppression of tumorigenicity and anchorage-independent growth of BK virus-transformed mouse cells by human chromosome 11.

Viral transformation models may be useful for detecting and mapping human tumor suppressor genes. BK virus (BKV), a human papovavirus, readily transforms rodent cells but is unable to transform human cells, suggesting that oncosuppressive functions expressed in human cells control BKV oncogenic activity. We have transferred human chromosome 11 to BKV-transformed mouse cells. All of the cell clones were suppressed in the tumorigenic phenotype and anchorage-independent growth, except one clone which was nontumorigenic but maintained the ability to grow in soft agar. Cytogenetic analysis and DNA hybridization with chromosome 11-specific probes showed that all the reverted hybrids had an intact human chromosome 11, except the clone growing in semisolid medium which had lost the short arm. The results suggest that a gene located on 11p controls anchorage independence, whereas a gene on 11q controls the tumorigenicity of BKV-transformed cells. BKV T-antigen was expressed in all the hybrid clones at the same level as in the parental cell line, indicating that the putative human tumor suppressor gene(s) do not inhibit expression of the viral oncogene and must operate by another mechanism in inducing reversion of the oncogenic phenotype. Since BKV-transformed mouse cells are highly susceptible to retrovirus infection, this model can be used for searching and cloning tumor suppressor gene(s) by retrovirus-mediated "insertional mutagenesis".

Animals↗

Characterization of BK virus variants rescued from human tumours and tumour cell lines.

Episomal BK virus (BKV) DNA was detected in primary human brain tumours, in Kaposi's sarcoma and in cell lines from brain tumours. Ewing sarcoma and osteogenic sarcoma. Infectious BKV was rescued from several tumours and tumour cell lines by transfection of total cellular DNA into human embryonic fibroblasts. Restriction endonuclease and nucleotide sequence analysis showed that all the rescued viruses are similar to BKV-IR, a BK variant previously isolated from a human tumour of pancreatic islets, indicating that a specific BKV strain may be associated with certain types of human tumours. All the variants contain a putative transposable elements in the regulatory region of the viral genome. This region has mutagenic properties and enhancing activity in transformation, suggesting a possible role of these variants in tumour induction or progression.

Animals↗

Co-operation in cell transformation between BK virus and the human c-Harvey-ras oncogene.

Early-passage hamster embryo cells were transformed by recombinant DNA molecules containing BK virus (BKV) early-region gene and either the activated c-Ha-ras oncogene (pBK/c-rasA) or the normal c-Ha-ras proto-oncogene (pBK/c-rasN). The recombinant DNAs had a greater transforming ability and converted hamster cells to a more malignant phenotype than the single genes transfected separately. pBK/c-rasA was significantly more powerful than pBK/c-rasN in conferring to cells all the characteristics of transformation. Transfected DNA sequences were integrated mostly as single insertions into cellular DNA. Specific c-Ha-ras and BKV transcripts as well as c-Ha-ras p21 and BKV T antigen were detected in transformed cells. Although stimulation of c-Ha-ras expression by BKV enhancers cannot be excluded in recombinants, super-transfection and co-transfection experiments in hamster embryo cells and pre-neoplastic cell lines showed that BKV early-region and c-Ha-ras co-operate in transformation by contributing separate and independent functions.

Animals↗

Factors affecting amplification of BK virus episomal vectors in human cells. Brief report.

Analysis of factors determining replication of BK virus (BKV) episomal vectors in human cells showed that vector copy number was related to the level of BKV T antigen expression. T antigen was synthesized efficiently, as assessed by indirect immunofluorescence, in vector-transfected primary embryonic fibroblasts undergoing neoplastic transformation. Surprisingly, transfected continuous cell lines (143 B, HeLa and KB), kept under biochemical selection or tested in transient assays, produced negligible amounts or no T antigen, revealed only by a sensitive ELISA test, suggesting that in these cells vector amplification was under the control of cellular factors. Presence or absence of BKV late region sequences, BKV strain, orientation of the inserted genes and presence or absence of selection were not relevant for vector replication. Type of biochemical selection, however, was important, since BKV vectors containing the thymidine kinase gene replicated better than those containing the neo gene. Despite great variability, vector copy number increased in transfected clones of adenovirus 5-transformed 293 cells, in the absence of immunofluorescence detectable T antigen. These cells express adenovirus immediate early proteins E1A and E1B which may directly or indirectly activate BKV origin of replication.

Antigens, Polyomavirus Transforming↗

Cooperation in oncogenesis between BK virus early region gene and the activated human c-Harvey ras oncogene.

Rapidly growing, undifferentiated brain tumours were induced in newborn Syrian hamsters by intracerebral inoculation of a recombinant DNA (pBK/c-rasA) carrying the BK virus (BKV) early region gene and the activated human c-Harvey-ras (c-Ha-ras) oncogene. Neither of the two genes inoculated alone nor recombinant DNA of the BKV early region gene and the normal human c-Ha-ras proto-oncogene were tumourigenic. Tumour-derived cell lines propagated in culture were immortalized and had growth characteristics consistent with a fully transformed phenotype. Tumours and tumour cell lines contained pBK/c-rasA sequences integrated into cellular DNA and expressed BKV- and c-Ha-ras-specific transcripts as well as BKV T antigen and c-Ha-ras p21. These findings are discussed in relation to a possible cooperation or synergism between BKV and cellular oncogenes in human neoplasia.

Animals↗

Induction of malignant subcutaneous sarcomas in hamsters by a recombinant DNA containing BK virus early region and the activated human c-Harvey-ras oncogene.

Malignant undifferentiated sarcomas were induced in 11 of 15 (73.3%) newborn Syrian hamsters by s.c. inoculation of a recombinant DNA (pBK/c-rasA) containing BK virus (BKV) early region gene and the activated human c-Harvey-ras(c-Ha-ras) oncogene derived from T24 bladder carcinoma. The two genes inoculated independently as well as a recombinant DNA of BKV early region gene and normal human c-Ha-ras proto-oncogene were not tumorigenic. Tumor-derived cell lines propagated in culture were immortalized and had growth characteristics consistent with a fully transformed phenotype. Tumors and tumor cell lines showed tandem insertions of pBK/c-rasA in high copy number and expressed BKV- and c-Ha-ras-specific transcripts as well as BKV T-antigen and c-Ha-ras protein with a molecular weight of 21,000. We conclude that BKV DNA requires interaction with other oncogenic functions for tumorigenicity. These findings may be relevant to the role of BKV in human neoplasia, where cooperation or synergism between BKV and cellular oncogenes could occur as an aspect of the multifactorial process of carcinogenesis.

Animals↗

Association of BK virus with human brain tumors and tumors of pancreatic islets.

BK virus (BKV) DNA was detected by Southern blot hybridization in 19 out of 74 (25.6%) human brain tumors and in 4 out of 9 (44.4%) human tumors of pancreatic islets. BKV DNA was free, in an episomal state and generally in a low copy number (0.2 to 2 genome equivalents per cell). Only occasional tumors contained 10 to 20 genome copies per cell. Viral DNA sequences integrated into cellular DNA were not detected. A number of tumors expressed BKV-specific RNA and T antigen. By transfection of total tumor DNA into human embryonic fibroblasts, viruses with the biological and antigenic properties of BKV were rescued from 6 brain tumors and from 2 tumors of pancreatic islets. Restriction endonuclease mapping of the genomes of the rescued viruses showed that they differ from wild-type BKV. They are all similar to each other and to BKV-IR, a virus previously rescued from a human tumor of pancreatic islets, suggesting the possible association of a BKV variant with specific types of human neoplasms. The significance of the relationship of these BKV variants to human tumors and their possible etiologic role in human oncogenesis are discussed.

Adenoma, Islet Cell↗