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Fc gamma receptors receptors on fetal rat brain cells during neoplastic transformation in culture after exposure to ethylnitrosourea in vivo.

Fetal rat brain cells, undergoing neoplastic transformation in long-term culture after a single transplacental pulse of N-ethyl-N-nitrosourea on the 18th day of gestation, were investigated for Fc gamma receptors. Rosette assay with cells in suspension and the hemadsorption to cells on coverglasses were used for their detection. The receptors were found on cells after about 2 months in culture. A maximum of 20% of the cells were Fc gamma receptor-positive after 3 months. About 3 weeks later no Fc gamma receptors could be detected. Malignant rat neurogenic cell lines were also negative.

Animals↗

Neoplastic transformation of fetal lamb kidney cells by bovine leukemia virus.

Neoplastic transformation of fetal lamb kidney (FLK) cells by bovine leukemia virus (BLV) is reported. Morphological transformation was observed in FLK cells within a few weeks of BLV inoculation. BLV-transformed FLK cells had the following properties generally associated with viral transformation: (1) altered morphology; (2) increased growth rate; (3) colony formation in soft agar medium; (4) formation of large cell aggregates and growth in this aggregate form above an agar base; and (5) tumorigenicity in nude mice. The transformed cells contained BLV-specific p24 and gp51 antigens and were virus producers. BLV was detected in transformed cells by syncytial assay. The transformed cells yielded high-titered viral reverse transcriptase activity and viral particles. The transformed cells contained marker chromosomes (M1, M2, M3, M4 and M7) and a large submetacentric chromosome, but control cells did not. Thus, we demonstrated the neoplastic transformation of FLK cells by BLV.

Animals↗

A methylation profile of in vitro immortalized human cell lines.

Normal human diploid cells have a limited life span and undergo replicative senescence after various limited population doublings. Cells must pass the senescence barrier to become immortal. The exact mechanisms of immortalization are not clear, although inactivation of the RB pathway, and/or the p53 pathway and activation of telomerase has been shown to be necessary for immortalization of certain cell types with DNA viruses or hTERT. Methylation-associated inactivation of tumor suppressor genes plays an important role in tumor progression. To test if gene-specific methylation contributes to the immortalized and transformed phenotype, we analyzed the methylation status of 17 genes in normal cells immortalized with SV40, hTERT, Ad5, Ad12-SV40 or HPV-18. Some of these immortalized lines were progressively transformed and tumorigenic in nude mice. We observed gene-specific methylation in the in vitro immortalized and transformed cells. SV40 and HPV18 immortalization resulted in different methylation spectra. In SV40- and h-TERT-immortalized prostate epithelial cells, the most frequently methylated gene was RASSF1A, while in HPV18-immortalized cell lines, the RAR-beta2 gene was universally methylated. Immortalization with SV40 resulted in methylation of a greater number of genes than immortalization with HPV. Furthermore, in SV40-immortalized cell lines, methylation affected different genes in fibroblasts compared with epithelial cells, suggesting that different mechanisms may be used by SV40 to immortalize cell lines of different origins. In HPV18-immortalized and subsequently transformed cell lines, the most commonly methylated genes were hormone responsive genes, such as AR, ER-beta and RAR-beta2. In general, more genes were methylated in neoplastically-transformed cell lines than in only immortalized cell lines, indicating that accumulation of epigenetic abnormalities may contribute to oncogenesis.

Animals↗

[Genetic aspects of neoplasia].

The aggregation of cancer in families, possible causes of tissue specificity of hereditary susceptibility to cancer, as well as various kinds of inherited enzyme disorders regarded as the basis of this susceptibility are discussed. Different aspects of the relationship between cell neoplastic transformation and differentiation are analysed. Special attention is given to the capacity of differentiation inducers to reverse in some instances the malignant phenotype of the tumor cell progeny. In addition, some data are cited that indicate instability of DNA molecule in neoplastic cell transformation, differentiation and hormone action.

Animals↗

Transformation blocks differentiation-induced inhibition of serum response factor interactions with serum response elements.

The differentiation of nontransformed 3T3T mesenchymal stem cells is a multistep process that is associated with the progressive repression of mitogenic responsiveness to serum growth factors that ultimately results in expression of the terminally differentiated adipocyte phenotype. The repression of serum-induced mitogenesis by differentiation correlates with repression of the serum-inducible transcription of junB and c-fos. In contrast, the differentiation of neoplastically transformed cells does not repress mitogenic responsiveness or junB or c-fos inducibility. Because the junB and c-fos promoters both contain serum response elements (SREs), the current studies tested the possibility that differentiation might repress the ability of serum response factor (SRF) to bind to the SRE in normal cells but not in transformed cells. We now report that differentiation represses SRE serum inducibility using nontransformed cells transiently transfected with pjunB SRE thymidine kinase/chloroamphenicol acetyltransferase (SREtk/CAT) or pc-fos SREtk/CAT containing an intact SRF-binding domain. Adipocyte differentiation of nontransformed cells also markedly represses the ability of SRF to bind to the junB SRE, the c-fos SRE, and other SREs, as determined by mobility shift and gel supershift assays, without affecting the DNA binding characteristics of the nuclear protein SP-1. By comparison, the ability of SRF to bind SRE is not repressed by the differentiation of SV40 large T antigen-transformed 3T3T cells. The results further establish that adipocyte differentiation blocks the nuclear localization of SRF, thus preventing its interaction with SREs in nontransformed cells but not in transformed cells.

Adipocytes↗

ENU-induced in vitro neoplastic transformation of rat mammary epithelial cells.

Normal mammary epithelial cells, originating from female Sprague-Dawley rats, were grown in Dulbecco's Modified Eagles Medium containing 25% horse serum and hormone supplements. Once established as an epithelial cell culture, the cells were treated with N-ethyl-N-nitrosourea (ENU) in various doses (25-500 ug/ml) to study the process of in vitro mammary epithelial cell neoplastic transformation. The ENU-treatment of primary mammary epithelial cell culture resulted in a sequence of phenotypic changes, termed stages I-V. The rat mammary epithelial cells, after a period of approximately 30 days post-ENU exposure, showed a marked proliferation of morphologically altered cells which formed multi-layered colonies. Subsequently, these cells acquired the capacity to form colonies in soft agar and eventually produced a high yield of palpable tumors when inoculated into newborn female isologous hosts or female athymic nude mice. The immediate effect of ENU on these cells was monitored by measurement of cellular DNA content, unscheduled DNA synthesis, cell proliferation and chromosomal aberrations. The ENU effect on cell proliferation and DNA synthesis was dose dependent; doses greater than 100 ug/ml reduced the cell number and DNA synthesis. Cytofluorometric histograms of non-ENU-treated rat mammary epithelial cells showed a near diploid population of cells. The ENU exposed cells subsequently became hyperdiploid (24-72 hours after ENU) and then regained their near diploid pattern at 120 hours after ENU exposure. The ENU-treated cells also showed a second peak of cells with DNA content in the tetraploid and octaploid range at 24-72 hours after ENU exposure. Single chromatid breaks, isochromatid breaks, chromosomal exchanges, multiple chromosomal breaks and double minutes were among the chromosomal aberrations seen in ENU-treated cells. Most of the chromosomal aberrations peaked at 6 hours post-ENU exposure. The ENU-induced model of in vitro meplastic transformation of rat mammary epithelium as described in this communication appears to provide a good model for the systematic study of the early critical cellular events prerequisite to this carcinogenic process.

Animals↗

Neoplastic transformation of chimpanzee cells induced by adenovirus type 12--simian virus 40 hybrid virus.

The adenovirus 12--simian virus 40 hybrid virus produced neoplastic transformation of chimpanzee skin fibroblasts in vitro. The transformed fibroblasts showed morphological alteration and became permanent lines. The transformed cells contained both adenovirus 12 and simian virus 40 large tumor antigens and were virus producers. However at passage 9, one line (WES) was found to be a nonproducer, producing neither infectious virus nor virus-specific antigen detectable by the complement fixation test. Virus particles were not detected nor could infectious hybrid virus be rescued from this line by cocultivation with Vero cells. The transformed cells formed large cell aggregates and grew in liquid growth medium above an agar base, formed colonies in soft agar, and grew to high saturation densities; the normal chimpanzee skin fibroblasts did not. One transformed WES line produced tumors when transplanted subcutaneously into newborn nude mice, thus providing an important tool for studying tumor immunity in the chimpanzee.

Adenoviruses, Human↗

Trenbolone induces micronucleus formation and neoplastic transformation in Syrian hamster embryo fibroblasts but not in mouse C3H10T1/2 cells.

The synthetic androgen 17 beta-trenbolone (beta-TBOH), used as a growth promotant in cattle, and its metabolite 17 alpha-trenbolone (alpha-TBOH) were tested for genetic toxicity in Syrian hamster embryo (SHE) cells and in mouse C3H10T1/2 embryo fibroblasts by measuring the induction of micronucleus formation and neoplastic cell transformation. Both beta-TBOH and alpha-TBOH, but not testosterone nor its hormonally active metabolite, 5 alpha-dihydrotestosterone, caused a dose-related induction of micronuclei in SHE cells. In C3H10T1/2 cells, neither beta-TBOH nor alpha-TBOH gave rise to micronucleus induction. Furthermore, both beta-TBOH and alpha-TBOH, but not testosterone, were found to transform SHE cells but not C3H10T1/2 cells morphologically. The beta-TBOH-transformed SHE cells proved to be neoplastic in thymus-aplastic nude mice. These data show that beta-TBOH is able to cause changes at the chromosomal level and neoplastic transformation independent of its hormonal activity in one mammalian cell system but not in another one. The implications of these data for the risk evaluation of beta-TBOH are discussed.

Animals↗

Malignant transformation and antineoplastic actions of nonsteroidal antiinflammatory drugs (NSAIDs) on cyclooxygenase-null embryo fibroblasts.

In this study, we use primary embryonic fibroblasts derived from cyclooxygenase-deficient transgenic embryos to further investigate the role of the two cyclooxygenases, cyclooxygenase 1 (COX-1) and cyclooxygenase 2 (COX-2), in the process of neoplastic transformation. Cells with either, neither, or both of the cyclooxygenases were transformed by Ha-ras and/or SV40. Our results show that when a cyclooxygenase enzyme is present, the transformed cells have marked increases in COX-2 and/or COX-1 expression. Nevertheless, each type of cell, deficient in either or both cyclooxygenases, can be readily transformed at almost equal efficiency. Different nonsteroidal antiinflammatory drugs (NSAIDs) were used to examine their possible antineoplastic effects on the transformed cells, which have various levels of expression of COX-1 or COX-2. Our results show that NSAIDs suppress the colony formation in soft agar in a dosage-dependent manner in the absence of the cyclooxygenase(s). Thymidine incorporation and apoptosis analyses further demonstrate that the NSAIDs are effective in the cyclooxygenase-null cells. Our findings with cyclooxygenase knockout cells confirm recent reports that some of the antiproliferative and antineoplastic effects of NSAIDs are independent of the inhibition of either COX-1 or COX-2. They also show that transformation is independent of the status of cyclooxygenase expression, suggesting that the involvement of the cyclooxygenases in tumorigenesis may occur at later steps.

Animals↗

Neoplastic transformation of human cells in vitro.

Efforts to investigate the progression of events that lead normal human cells in culture to become neoplastic in response to carcinogenic agents have been aided by the development of the suitable in vitro model systems. For initial human cell transformation studies, a flat, nontumorigenic clonal line, originally derived from a human osteosarcoma (HOS), was used. When treated with chemical carcinogens such as N-methyl-N-nitro-N-nitrosoguanidine (MNNG) and 3-methyl-cholanthrene (3MC), the HOS cells underwent morphological alterations and acquired tumorigenic properties. These cell lines were very useful inasmuch as a non-ras cellular transforming gene, met, and an activated H-ras oncogene have been isolated from MNNG-transformed and 3MC-transformed HOS lines, respectively, by DNA transfection procedure. Alteration of p53 gene in chemically transformed HOS cell lines has recently been shown. Although carcinogens cause human cancer, normal human cells in culture have proven difficult to achieve. Neoplastic transformation of human cells in culture has recently been achieved by a stepwise fashion-immortalization and conversion of the immortalized cells to tumorigenic cells. One of the critical initial events in the progression of normal human cells to tumor cells is the escape from cellular senescence. With few exceptions, normal human cells require immortalization to provide a practical system for transformation studies. Thus, the role of carcinogenic agents in the development of human cancers is now being defined using a variety of human cells. The neoplastic transformation in human cell cultures is reviewed. In doing so, this author attempts to put into perspective the history of human cell transformation by carcinogenic agents, and to discuss the current state of the art in transformation of human cells in culture; thus providing insight into the molecular and cellular mechanisms involved in the conversion of normal cells to a neoplastic state of growth.

Cell Line, Transformed↗

Human papilloma virus 16 E7 oncogene does not cooperate with RET/PTC 3 oncogene in the neoplastic transformation of thyroid cells in transgenic mice.

We have previously reported that the thyroid-targeted expression of the RET/PTC3 oncogene (Tg-RET/PTC3) in transgenic mice induces follicular hyperplasia with papillary architecture, resulting in a modest increase of the thyroid gland volume, followed by the appearance of papillary carcinomas in approximately 1-year-old animals. In order to analyze the genetic alterations that may cooperate with RET/PTC3 in the development or progression of thyroid tumors, we interbred Tg-RET/PTC3 mice with Tg-E7 transgenic mice, which express the E7 oncogene of the human papilloma virus 16 in thyroid cells. Tg-E7 mice develop large colloid goiters with small papillae and well-differentiated thyroid carcinomas in older animals. Here we show that thyroid lesions in Tg-RET/PTC3-Tg-E7 double transgenics were morphologically different from those occurring in Tg-RET/PTC3 mice, while they were virtually indistinguishable from those occurring in Tg-E7 mice. In addition, the coexpression of RET/PTC3 and E7 oncogenes neither enhanced the malignant phenotype nor reduced the latency period of thyroid lesions with respect to parental transgenic lines. We conclude that the coexpression of RET/PTC3 and E7 lacks any cooperative effect in the neoplastic transformation of thyroid cells and that the E7-induced thyroid phenotype is dominant with respect to the RET/PTC3 one.

Age Factors↗

CD20+ T-cell lymphoma. Neoplastic transformation of a normal T-cell subset.

CD20 is a 35-kDa protein that is expressed early in B-cell ontogeny and is lost during terminal B-cell differentiation into plasma cells. It is thought to be B-cell-specific. However, the CD20 antigen, detected by the monoclonal antibody L26, has been reported in some cases of T-cell lymphoma. This report describes a case of a malignant lymphoma coexpressing T-cell-lineage antigens and CD20 and characterization of a CD20+ T-cell population in the peripheral blood of healthy donors. The tumor cells were pleomorphic medium-sized cells that expressed a range of T-cell-specific antigens, including CD2, CD3, CD4, CD5, CD6, CD7, and beta F1. In addition, the tumor cells expressed CD20 on frozen (B1) and paraffin sections (L-26). Stains for other pan-B cell antigens, including CD19 and CD22, and immunoglobulin light and heavy chains were negative. To determine whether this unusual coexpression of T-cell-lineage antigens and CD20 represented aberrant antigen expression or neoplastic transformation of an unusual normal T-cell subset, the authors examined specimens of peripheral blood lymphocytes from healthy donors for evidence of a CD20+ T-cell population by using three-color immunofluorescence analysis by flow cytometry. Two distinct populations of CD20+ cells were observed in peripheral blood. One expressed bright CD20 (6.6% to 23.7%, mean 14.47% of peripheral blood lymphocytes) and other B-cell associated antigens, whereas the other expressed dim CD20 (.94% to 11.90%, mean 3.50% of peripheral blood lymphocytes) and coexpressed CD3. Approximately two thirds (52.8% to 82.3%, mean 64.1%) of the dim CD20 cells were CD8+ and one third (19.2% to 74.1%, mean 37.5) CD4+. These cells also expressed CD5 and the alpha-beta chain of the T-cell receptor and lacked CD19 and CD22. These results indicate that CD20 is expressed on some normal peripheral blood T cells. CD20 expression by T-cell lymphomas may represent neoplastic transformation of a normal subset of CD20+ T cells rather than aberrant antigen expression by neoplastic cells. The nature of the CD20 antigen on T cells and the function of the normal population remain to be determined.

Aged↗

The hemopoietic progenitor 32DCl3(G) cells synthesize C3 molecules and acquire C3b acceptor sites upon differentiation or neoplastic transformation.

32DCl3(G) cells are a diploid, nontumorigenic, IL-3-dependent hemopoietic progenitor cell line, which undergoes terminal differentiation into neutrophilic granulocytes when cultured in presence of G-CSF. The infection with BALB-Moloney murine sarcoma virus, containing a v-HA-ras oncogene, renders this cell line IL-3 independent and continuously growing in the presence of G-CSF, nontumorigenic and with an apparent block at the level of promyelocyte/myelocyte (32D-Ha-ras). After infection with Abelson murine leukemia virus containing a v-abl oncogene, the cell line originates (32D-abl) that is also IL-3 independent but is tumorigenic and unable to differentiate in the presence of G-CSF. This cellular model allowed us to study the relationship between distinct steps of cell differentiation, neoplastic transformation, and C3 synthesis, activation, and characteristics of binding. We demonstrated that C3 synthesis, release, and cleavage are properties already present in the progenitor 32DCl3(G) cells. The more differentiated 32D-Ha-ras cells acquired C3 acceptor sites, apparently completely saturated by the constitutively released molecules. The transformation with Abelson murine leukemia virus, although it did not affect all these properties, let the cells bind considerable amounts of C3-related fragments activated in normal murine serum through the alternative pathway. This last event was a result of the acquisition of PMSF-sensitive serine proteases associated with the plasma membrane.

Animals↗

Neoplastic transformation of mast cells by Abelson-MuLV: abrogation of IL-3 dependence by a nonautocrine mechanism.

Normal mast cells can be propagated in culture when medium is supplemented with interleukin-3 (IL-3). We demonstrate that Abelson-MuLV (Ab-MuLV) infection of mast cells eliminates dependence on IL-3 for growth. By contrast, Harvey, BALB, and Moloney MSV, which also productively infect mast cells, are unable to relieve IL-3 dependence. Ab-MuLV-induced IL-3-independent lines express the v-abl-specific transforming protein and have phenotypic characteristics of mast cells. These cells also possess high cloning efficiencies in soft agarose and are tumorigenic in nude mice. In addition, Ab-MuLV induces transplantable mastocytomas in pristane-primed adult mice resistant to lymphoid transformation, defining a new hematopoietic target for malignant transformation by this virus. None of the Ab-MuLV-derived transformants express or secrete detectable levels of IL-3 nor is their growth inhibited by anti-IL-3 serum. These results argue that Ab-MuLV abrogation of the IL-3 requirement is not due to an autocrine mechanism.

Abelson murine leukemia virus↗

Inhibition of glycolipid shedding rescues recognition of a CD1+ T cell lymphoma by natural killer T (NKT) cells.

Neoplastic transformation of cells is accompanied by an aberration of cell surface glycolipid composition. These tumor-associated, altered glycosphingolipids are often shed into the tumor cell microenvironment and mediate immunosuppressive activity. The nature and form of glycolipids shed by a variety of tumor cell lines and the mechanism(s) of shedding have been well characterized. The murine T cell lymphoma line, L5178Y-R, is known to shed a tumor-associated glycolipid, gangliotriaosylceramide, into the culture medium. We analyzed the effect of glycolipids from L5178Y-R on antigen presentation by murine CD1d1 molecules. CD1d1 molecules present glycolipid antigens to a specialized class of T cells called natural killer T (NKT) cells that mainly express a T cell receptor alpha chain (Valpha14Jalpha281) associated with Vbeta chains of limited diversity. In the current report, we found that L5178Y-R cells express CD1 on their cell surface yet are unable to stimulate CD1d1-specific NKT cells. We hypothesized that the glycolipid(s) shed by L5178Y-R inhibited antigen presentation by CD1d1. Pretreatment of CD1d1(+) cells with conditioned medium from L5178Y-R inhibited CD1-specific stimulation of canonical (Valpha14(+)) but not noncanonical (Valpha5(+)) NKT cells. Exogenous addition of lipids extracted from L5178Y-R cells as well as purified gangliotriaosylceramide mimicked this effect. Inhibition of glycolipid shedding in L5178Y-R cells with d-1-phenyl-2-hexadecanoylamino-3-morpholino-1-propanol resulted in the rescue of CD1d1 recognition by canonical (but not noncanonical) NKT cells. These results suggest that one means by which certain tumor cells can evade the host's innate antitumor immune response is by shedding glycolipids that inhibit CD1-mediated antigen presentation to NKT cells.

Animals↗

Localization and function of the connexin 43 gap-junction protein in normal and various oncogene-expressing rat liver epithelial cells.

Clones of rat liver epithelial cells genotypically altered by mutation or by a variety of oncogenes were analyzed by microinjection-dye transfer, immunofluorescence confocal microscopy, and western blotting to determine at what level and to what degree these transformations disrupted gap-junctional intercellular communication (GJIC) mediated by connexin 43 (Cx43). Compared with normal rat liver epithelial cells, cells neoplastically transformed by src, neu, ras, and myc/ras all displayed reduced degrees of GJIC, reduced levels of membrane-associated Cx43 plaques, and hypophosphorylation of Cx43. Confocal analysis further demonstrated that the Cx43 protein was localized, at least in part, to the nucleus rather than to the plasma membrane in the src- and neu-transformed cells, but not in the ras- and myc/ras-transformed cells. Nuclei isolated from WB-neu cells showed substantially higher levels of Cx43 on western blotting than did nuclei from WB-neo control cells, supporting the idea that the nuclear-localized immunopositive material detected by confocal microscopy was Cx43 protein. In a GJIC-deficient mutant rat liver epithelial cell line containing normal numbers of plasma membrane-localized Cx43 plaques that appeared to be reduced in size, the Cx43 protein was also found to be hypophosphorylated. Cells overexpressing myc, on the other hand, displayed a normal degree of GJIC, increased levels of plasma membrane-localized Cx43 plaques, and hyperphosphorylation of the Cx43 protein. Cells expressing raf, previously shown to be GJIC competent, showed Cx43 immunostaining patterns similar to those in normal cells, whereas a cell line established from a tumor induced by injection of these raf-expressing cells into a mouse showed a marked reduction in GJIC and plasma membrane-associated Cx43 immunostaining. These data suggest that altered localization of the gap-junction protein Cx43, mediated in part by changes in the phosphorylation of this protein, contributes to the disruption of GJIC in neoplastically transformed rat liver epithelial cells.

Animals↗