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Serum-induced chromosome damage and neoplastic transformation of mouse cells in vitro.

In previous studies, mouse cells grown in medium supplemented with horse serum (HS) developed more chromosomal aberrations and underwent malignant transformation earlier than cells from the same pool grown with fetal bovine serum (FBS) supplement. In the present study cells derived from C3Hf/HeN mouse embryos were grown in medium NCTC-135 supplemented with various combinations of large- and small-molecule fractions of HS and FBS in an effort to determine the effective components. The results indicate that the large-molecule fraction of HS (mare or stallion) produces alterations in chromosome number and structure. HS is also shown to cause chromatid breaks and exchanges at or near the centromere in contrast to fluorescent-light-induced breaks and exchange at or near the centromere in contrast to fluorescent-light-induced breaks which occur randomly along the chromatid. However, efforts to control completely chromosome stability and malignant transformation through the use of large- and small-molecule fractions of HS and FBS or combinations thereof were unsuccessful. In connection with this study, diagnosis of malignant transformation in vitro was made by a direct sampling method based on cytologic criteria previously described and documented. With one exception, the diagnoses of 11 different cell lines were consistent with results of in vivo assays.

Animals↗

Characteristics of benzo[a]pyrene and A-ring reduced 7,12-dimethyl benz[a]anthracene induced neoplastic transformation of human cells in vitro.

The polynuclear aromatic hydrocarbons (PAH) benzo[a]pyrene (BP) and the A-ring reduced analogue of 7,12-dimethylbenz[a]anthracene (DMBA), 1,2,3,4-tetrahydro-7,12-dimethylbenz[a]anthracene (TH-DMBA) are carcinogenic to human cells. The unsaturated PAH, DMBA exhibits no carcinogenic activity on human cells as measured by growth in soft agar. The TH-DMBA and BP treated cells exhibit a colony frequency in soft agar of 84 and 86, respectively. These anchorage independent cells, when seeded on the chick embryonic skin (CES) organ cultures, are invasive and form a fibrosarcoma. It is highly unlikely that TH-DMBA, which does not contain an aromatic A-ring, can undergo metabolism in human cells in culture to form a bay region 3,4-dihydrodiol-1,2-epoxide. These results suggest that an alternate mechanism for the induction of carcinogenesis is appropriate to explain the absence of bay region diol-epoxide metabolite as the ultimate form of the carcinogen in TH-DMBA induced carcinogenesis in human diploid cells.

9,10-Dimethyl-1,2-benzanthracene↗

High-level recombination specific to polyomavirus genomes targeted to the integration-transformation pathway.

An unusually high incidence of interviral recombination was found in the process of integration of the polyomavirus genome concomitant with neoplastic transformation of nonpermissive cells. Transformants were isolated after mixed infections of Fischer rat cells with two mutants lacking restriction endonuclease sites and were analyzed for the presence of unselected integrated recombinant restriction fragments. A large fraction of the transformants isolated (38% of the 64 transformed cell lines studied) contained recombinant viral genomes that had undergone recombination in a 1.3-, 1.7-, or 3.6-kilobase-pair interval. More than 90% of these recombinant transformants showed evidence of crossovers in multiple intervals. To our knowledge, the recombination frequencies observed in these experiments represent the highest frequencies of homologous recombination reported for a mitotic mammalian system that does not involve transfection. In contrast to the elevated level of recombination in the integrated viral genomes, no evidence of recombination was obtained among the replicated unintegrated pool of viral genomes isolated from the same population of infected cells from which the recombinant transformants were derived. Either of two hypotheses can provide an explanation for the segregated recombination: either recombination occurs at elevated levels in a small, recombination-prone fraction of the population destined to become transformed, or recombination occurs only among those viral genomes which are engaged in the process of integration and thus interact with a recombinogenic host machinery (for example, the host scaffold). We favor the latter hypothesis.

Animals↗

[Differentiation and the neoplastic transformation of normal cells].

It is suggested that blastomogenic factors can be considered as the means isolating normal cells from each other. Carcinogenic substances caused cell functions to disturb, to inhibit or to intensify the synthesis of specific substances, to change the cell surface disrupted contacts of interactions between cells, pressing cells to become on the way of evolution, and to create heterogenic populations of cells.

Animals↗

Gene amplification of atypical PKC-binding PARD3 in radiation-transformed neoplastic retinal pigment epithelial cell lines.

Neoplastic transformation induced by ionizing radiation was studied using a human retinal pigment epithelial cell line immortalized by telomerase. Radiation-transformed cell clones were tumorigenic in athymic mice and were analyzed by G-banding and comparative genomic hybridization (CGH). Radiation-transformed cloned cell lines and cell lines derived from tumors produced in athymic nude mice following transplantation exhibited a recurrent karyotype:45,XX,der(10),-13. CGH showed an amplification of 10p11.2 and a deletion of the remaining 10p. Positional cloning of the amplified region by FISH analysis and subsequent sequence analysis of BAC clones showing amplified FISH signals identified the candidate gene PARD3. This gene also was found to be transcriptionally expressed at an increased level. The findings indicate that PARD3 may play an important role in radiation-induced carcinogenesis of RPE cells. This is the first evidence for PARD3 amplification in human cancer cells.

Animals↗

12-O-tetradecanoylphorbol-13-acetate--induced levels of AP-1 proteins: a 46-kDa protein immunoprecipitated by anti-fra-1 and induced in promotion-resistant but not promotion-sensitive JB6 cells.

Neoplastic transformation and transcriptional activation by activator protein-1 (AP-1) complex are stimulated by tumor-promoting agents in promotion-sensitive (P+) but not promotion-resistant (P-) mouse epidermal JB6 cells in culture. This implicates AP-1 as a specific regulator of signal transduction pathways in the promotion phase of neoplastic transformation. We therefore hypothesized that the defective P- responsiveness may be due to limiting levels of AP-1 protein components in those cells. In this investigation, steady-state levels of AP-1 protein components were measured by immunoprecipitating proteins from 12-O-tetradecanoylphorbol-13-acetate (TPA)-treated P+ and P- cells to discern what may limit the AP-1 response. Whereas the AP-1 proteins junB, junD, and fosB did not show differential basal or TPA-inducible levels in P+ and P- cells, a 46-kDa species precipitated by anti-fra-1 antibody was TPA-inducible in P- cells but not in P+ cells, and c-jun protein was present at higher levels in TPA-treated and untreated P+ cells than in P- cells. These data raise the possibility that the 46-kDa fra-1-related protein may be a negative modulator of AP-1 activity and suggest that elevated levels of this 46-kDa species and limiting levels of c-jun may significantly impair AP-1 function or transformation response in P- cells or both.

Amino Acid Sequence↗

Neoplastic transformation and lineage switching of rat liver epithelial cells by retrovirus-associated oncogenes.

Tumors produced by a chemically transformed rat liver epithelial (RLE) cell line and its single cell-derived clonal subpopulations demonstrate wide-ranging morphological presentations including carcinomas, sarcomas, "mixed epithelial-mesenchymal" tumors, and undifferentiated tumors [Am J Pathol 127:168-181, 1987]. To address the question of heterogeneity of tumors derived from transformed RLE cells, we have used recombinant retroviruses containing the following transforming oncogenes: v-raf (3611-MSV), v-raflv-myc (J2), v-myc (J5), and v-Ha-ras (pRNR16). All of the oncogenes, with the exception of v-myc (J5), were efficient transforming agents in the RLE cells. Tumors derived from the v-raf- and, to a lesser extent, those from v-Ha-ras-transformed RLE cells showed mixed epithelial-mesenchymal morphology, whereas the combination of v-raflv-myc (J2) consistently produced differentiated trabecular carcinomas. These data suggest that the lineage commitment of the RLE cells can be perturbed by a single transforming oncogene and that different tumor types derived from these cells may reflect the expression of a selective oncogene or a combination of oncogenes.

Animals↗

Histogenesis of colon cancer in experimental animals.

Following the introduction of colon-specific carcinogens, the mode of formation and evolution of colon cancer has been investigated in experimental animals. These carcinogens are cytotoxic to epithelial cells in colonic crypts and induce a series of non-specific acute and chronic changes including cryptal hyperplasia when administered repeatedly. During such processes, a number of neoplastically transformed cells may appear in many crypts. Only when they occur at the base of or form an outpocketing pouch in a crypt, do they appear to succeed in repopulating the given crypt to form a dysplastic crypt, from which an early neoplastic lesion develops usually in the upper part of the mucosa. The neoplastic lesion thus formed grows by various mechanisms, depending on its intrinsic properties of unceasing proliferative activity of neoplastic cells and interaction with the microenvironment: (a) by elongation and tortuosity of neoplastic glands, (b) by evagination of the glandular epithelial lining, with the formation of septa to dichotomise the glands to increase the number of neoplastic glands or with formation of incomplete septa or villi to expand the surface area of the neoplasm, and (c) by invagination and outpocketing pouch formation of neoplastic glands when accompanied with the changes in the basement membrane. In doing so, it may progress in various directions to form a polypoid or discoid lesion. Concomitant with growth, the neoplastic cells may undergo a series of cytological alterations and penetrate through their basement membrane in some areas to manifest early malignant behaviour. With downward progression, the neoplasm penetrates the muscularis mucosae and invades the submucosa, muscularis externa and serosa. Such an invasive process is often associated with the rearrangement of fibroblasts, marked changes in the production of collagen and proteoglycans of the extracellular matrix and lysis of the existing structures of the colonic wall. On morphological grounds, colonic carcinogenesis is a multiple process and is associated with successive breakdown of the host defence barriers. From the studies on experimental colonic tumourigenesis, adenomas and adenocarcinomas appear to share a common aetiological factor, or factors, and they are different end-stages in the evolution of neoplastically transformed cells. At any stage of evolution, however, benign neoplasms may develop dysplastic foci within neoplasms and evolve into a malignant form.

Adenocarcinoma↗

Neoplastic transformation of primary tracheal epithelial cell cultures.

Primary cultures of rat tracheal epithelial cells were treated with the chemical carcinogen N-methyl-N'-nitro-N-nitrosoguanidine (MNNG) to quantitatively study the early events during neoplastic transformation. Epithelial cells were dissociated from tracheas of specific-pathogen-free Fischer-344 rats and were plated on collagen-coated tissue culture dishes. To determine cytotoxicity, cells were exposed on day 1 to various concentrations of MNNG for 3 h and colony forming efficiency (CFE) was determined on day 7. MNNG at a concentration of 0.1 microgram/ml did not decrease CFE as compared to the control cultures, whereas 1 microgram/ml reduced the CEF by 75%. For transformation studies, primary cell cultures received single exposures to MNNG (0.1-0.6 microgram/ml) or multiple exposures to 0.1 microgram/ml of MNNG for 3 h between days 1 and 17. In carcinogen-exposed cultures, morphologically altered foci appeared on day 18, recognizable by high cell density. Transformation frequencies between 1 and 8% were observed depending on MNNG concentration. Cultures containing altered foci continued to grow during the third and fourth week when control cultures had ceased to proliferate and exfoliated from the dish. Over 40% of the cultures which received multiple exposures to MNNG acquired cell line status and could be subcultured greater than or equal to 20 times. None of the 30 control cultures became cell lines. Seventy per cent of MNNG-exposed cell lines showed the anchorage independent growth phenotype at passage 20 as judged by growth in agarose. Four of 10 cultures exposed either 6 or 8 times to MNNG formed invasive squamous cell carcinomas at passage 20 upon inoculation into nude mice. Based on these and previous studies, we feel that unrestricted cell replication is an early key event in carcinogen-exposed epithelial cell populations, preceding neoplastic transformation.

Animals↗

A method for distinguishing human and mouse cells in solid tumors using in situ hybridization.

A common technique used in the study of human malignancies involves the inoculation of nude mice with human neoplastic cells. It is usually assumed that the tumor arising is composed predominantly of human cells with mouse tissue present only to provide minimal stromal support. Several reports, however, have shown evidence of host cell neoplastic transformation. Therefore, in order to effectively study and characterize such xenografts, it is important to establish the relative involvement of human and mouse cells. In the present study, a method for easily distinguishing human and mouse cells is described. The method involves in situ hybridization of formalin-fixed tissues using DIG-labeled oligomer probes which correspond to species-specific portions of Alu sequences. This method can be applied to archival material either as a means of confirming that the tissue taken from nude mice xenografts is predominantly human or as a vehicle for studying the mechanisms of host cell neoplastic transformation and their relevance to human malignant spread. The proposed technique may also serve as a basis for other in situ applications, particularly those involving formalin-fixed tissues and oligomer probes.

Animals↗

Toward a model for the molecular genetics of carcinogenesis in rats.

Cultured rat embryo cells are resistant to neoplastic transformation by chemical carcinogens unless they are extensively subcultured or infected with a murine leukemia virus (MuLV) first. We found that, in normal cultured cells, MuLV activates expression of rat genes that are the progenitors of sarcoma virus genes, but not those of endogenous "leukemia" virus. Elevated levels of sarcoma virus-related RNA in normal cells infected with MuLV were indistinguishable from the levels in cells transformed spontaneously or by a carcinogen or a sarcoma virus. Because of previous reports that some carcinomas in rats also contain elevated levels of sarcoma virus-related RNA, we believe these events can be explained by a molecular genetic model which may be generally valid for initiation of carcinogenesis. The basic elements of the model are: transcriptional activation of all the multiple copies of normal rat progenitors of sarcoma virus genes is required before cellular transformation can be initiated, and initiation occurs when a spontaneous or induced mutation in any one active copy of these same genes generates a dominant transforming function.

Animals↗