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Biomedical subjects

G H Heppner

Publications and source records attributed to G H Heppner.

At least 37 records · Page 2Linked to original sources

Associated effects of bromocriptine on neoplastic progression of mouse mammary preneoplastic hyperplastic alveolar nodule line C4 and on hyperplastic alveolar nodule-infiltrating and splenic lymphocyte function.

Progression of the mouse mammary preneoplastic hyperplastic alveolar nodule (HAN) line C4 to carcinoma can be enhanced by stimulators and depressed by inhibitors of host lymphocyte function (W.Z. Wei et al., Cancer Res., 49: 2709-2715, 1989). The purpose of the present study was to ask whether prolactin (PRL), a regulator of both mammary epithelial and lymphoid cells, might be a factor in the association between lymphocytic function and HAN progression. Daily administration of bromocriptine, a suppressor of pituitary PRL secretion, increased the latency period and decreased the incidence of tumor development in HAN bearing mice. Bromocriptine treatment suppressed in vitro responsiveness of HAN-infiltrating lymphocytes and, to some extent, spleen cells, to T- and B-cell mitogens, without altering the relative proportion of lymphocytic subsets. Suppression could be partially reversed by PRL treatment. Natural killer cell activity of HAN-infiltrating lymphocytes was also reduced by bromocriptine. In vitro incubation with anti-PRL antisera inhibited both lymphocyte mitogen responsiveness and natural killer activity in a concentration-dependent manner. PRL reversed this inhibition also. Altogether, these results demonstrate a correlation among tumor development, PRL levels, and lymphocyte function and suggest that an immune-endocrine network involving PRL may play a role in C4 HAN progression.

Animals↗

Analysis of distribution of tumor- and preneoplasia-infiltrating lymphocytes using simultaneous Hoechst 33342 labeling and immunophenotyping.

Hoechst 33342 in vivo staining was combined with immunofluorescent staining of cell surface antigens to quantify the distribution, relative to blood supply, of lymphocytes in a preneoplastic mammary lesion, the murine C4 hyperplastic alveolar nodule (HAN), and the C4 adenocarcinoma which develops from C4 HAN. The vascular supply to lymphocytes expressing Thy 1.2, L3T4, Ly2, and ASGM1 cell surface antigens was evaluated in both tissues. The distribution of ASGM1+ cells, which include natural killer cells, differed between the two tissues, being significantly increased in the 20% brightest Hoechst-stained lymphocyte fraction in HAN but not in C4 tumor. Distribution of T lymphocytes did not differ between the two tissues. The combination of in vivo Hoechst 33342 with in vitro immunofluorescence provides a simple method to evaluate the distribution with regard to blood supply of lymphocyte subsets in solid tumors and preneoplastic lesions.

Adenocarcinoma↗

Tumor subpopulation interactions affecting melphalan sensitivity in palpable mouse mammary tumors.

Paired mixtures of melphalan-sensitive and relatively insensitive tumor cell subpopulation lines, originally derived from the same mammary tumor, were injected s.c. into syngeneic mice. When tumors were palpable, the mice were treated with melphalan at doses shown to be effective against the melphalan-sensitive subpopulations. Sensitivity was assessed by the loss of colony-forming ability of tumor cells harvested 1 to 14 days after treatment. When growing in tumors mixed with melphalan-sensitive line 4TO7 cells, line 66 (less sensitive) appeared much more sensitive than when it was grown alone. Line 66 tumors growing on the opposite sides of mice bearing line 4TO7 tumors were not more sensitive than when grown alone, indicating the lack of a systemic mechanism in the transfer of sensitivity from 4TO7 to 66. Furthermore, line 66 was not more sensitive when mixed with line 168TFAR (another melphalan-sensitive subpopulation) than when alone. The "transfer of sensitivity" from line 4TO7 to line 66 could be reproduced in collagen gel cultures but not in monolayer. Interestingly, line 4TO7, unlike line 168TFAR, is more sensitive to melphalan in collagen culture than in monolayer. This difference in sensitivity does not appear to be influenced by differences in cell density between the two culture systems. In collagen culture, the increased sensitivity of line 66 in the presence of line 4TO7 did not require cell contact and so appeared to act through diffusible factors(s). Collectively, these data suggest that the transfer of sensitivity is not dependent upon host factors or upon drug sensitivity per se but rather upon some mechanism requiring tumor cell-tumor cell interaction between specific subpopulation pairs. In additional studies, pH was ruled out as a factor in the transfer of sensitivity.

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Natural killer-cell activity under conditions reflective of tumor micro-environment.

Natural-killer(NK) activity was examined in the presence of low oxygen tension, low glucose concentration and acidic pH, to determine whether physical conditions present in the tumor micro-environment could play a role in down-regulating cytolytic activity of tumor-infiltrating lymphocytes with NK phenotype. Anoxia (0% O2), but not hypoxia (1% O2), significantly reduced NK activity, as did acidic pH (6.4 or 6.7). Low glucose concentration (6 mg/dl) did not impair NK activity. Combinations of either moderate (1% O2, 26 mg/dl glucose, pH 6.7) or extreme (0% O2, 6 mg/dl glucose, pH 6.4) alteration of physical conditions significantly reduced NK activity. This study indicates that the physico-chemical conditions present within solid tumors are capable of down-regulating NK activity.

Animals↗

Cell-to-cell interaction in regulating diversity of neoplasms.

Cancers contain a diverse array of clonal subpopulations that reflect an underlying instability in the cancer cell genome. Over time new clones arise and new proportional balances are reached among the existing clones. Both phenomena are regulated, in part, by cellular networks that include normal-to-cancer and cancer-to-cancer cell interactions. The mechanisms of these interactions vary with the circumstances and with the interacting cells. They include contact-mediated events, growth and other factors, and host-determined reactions. The over-all result is a cancer cell society in which the behavior of the component parts is modified by the exigencies of tissue life.

Animals↗

Cellular interactions in metastasis.

The metastatic cascade is a sequence of events that must be completed for metastases to be established. The realization that tumors are heterogeneous, consisting of many different subpopulations differing in many characteristics, and the belief that there are selective events in the metastatic process have led several laboratories to isolate and characterize variants with both high and low metastatic potential. Typically, the highly metastatic variants have been able to form distant metastases when implanted into the subcutis. Such lines have been popular for studies of metastatic mechanisms and anti-metastatic therapy, but they may be atypical examples, and thus not the best experimental models. Recent studies indicate that normal tissue influences metastasis such that many tumors metastasize only if placed in the orthotopic site. Furthermore, some cells that do not metastasize individually are able to do so in conjunction with other variant subpopulations. Thus, mixtures of tumor cells in the tissue of origin can express a more malignant character. We review possible mechanisms for such influential interactions, as well as the role of cellular interactions in generating heterogeneity and stabilizing tumor characteristics.

Animals↗

Macrophage-mediated induction of DNA strand breaks in target tumor cells.

We have shown previously that macrophages are mutagenic to bacteria (A. M. Fulton et al., Cancer Res., 44: 4308-4311, 1984) and can induce the appearance of drug-resistant variants of murine mammary tumor cells (K. Yamashina et al., Cancer Res., 46: 2396-2401, 1986). The present study asks whether inflammatory macrophages can induce lesions in the DNA of cocultured tumor cells and seeks to determine the mediators of this damage. We quantitated the induction of DNA strand breaks using the technique of fluorometric analysis of DNA unwinding. We report that inflammatory macrophages coincubated with a mammary tumor cell line for 60 min at a 1:1 ratio result in significant numbers of strand breaks in the tumor cell DNA. The degree of damage is equivalent to 300 to 1200 rads of gamma-irradiation. Resident (unstimulated) peritoneal macrophages also induce tumor cell DNA strand breaks. However, inhibitor studies reveal quantitative and qualitative differences in strand breaks induced by inflammatory (elicited) versus resident peritoneal macrophages. Resident macrophages require a longer induction period (60 min) before significant breaks are detected, but induce more breaks than do elicited macrophages, which require only a 5-min coincubation period to induce significant damage. The enzyme catalase, which removes H2O2, protects tumor cells from both macrophage effector populations as does the prostaglandin synthase inhibitor, indomethacin. The superoxide anion scavenger, superoxide dismutase, and the lipoxygenase inhibitor, nordihydroguaiaretic acid, are protective against resident macrophage effects only. The metal chelator, o-phenanthroline, provides limited protection for elicited macrophages but induces total DNA breakage in the presence of resident macrophages. Taken together, our data indicate that the degree of strand breakage is greater for the macrophage population with high arachidonate metabolism and low oxidative metabolism (resident macrophages) and less for the macrophage population with high oxidative and low arachidonate metabolism (MVE-2 elicited macrophages). Inhibitor studies implicate both metabolites of reactive oxygen and arachidonate as mediators of this tumor cell DNA damage, with the relevant mediator dependent upon the particular macrophage population under study.

Animals↗

Therapeutic perturbation of the tumor ecosystem in reconstructed heterogeneous mouse mammary tumors.

We have measured the response to methotrexate in vivo of paired mixtures of sister subpopulation lines from a mouse mammary tumor, as a model of drug response of a heterogeneous tumor. The subpopulation lines differed in intrinsic sensitivity to methotrexate. Response was measured both as growth delay and as a shift in tumor cell population distribution toward the more resistant cell line. We found differences between two pairs of cell lines in growth delay: line 66 plus 4T07 mixtures tended to be as responsive as was line 4T07 (the more sensitive line) alone, whereas line 168 plus 4T07 mixtures tended to be less responsive than line 4T07 alone. With both paired mixtures, the tumors arising after treatment tended to contain more line 66 or line 168 than did untreated tumors, but this shift was extremely variable among individual tumors. Within most treatment groups, there was no correlation between the growth rate of individual mixed tumors and the final tumor cell distribution. Likewise, between experiments, there was no correlation between the amount of growth delay in mixed tumors and the final tumor cell distribution. Thus, the cellular composition of treated tumors did not directly reflect the response to therapy.

Animals↗

Reactive oxygen-mediated damage to murine mammary tumor cells.

We have shown, in a preliminary report, that macrophages can induce strand breaks in the DNA of co-cultured tumor cells (Chong et al., 1988). The present study is designed to determine if oxygen-centered species generated by the cell-free enzyme-substrate combination of hypoxanthine and xanthine oxidase can induce similar lesions and to identify the specific mediator(s). We report that co-incubation of murine mammary tumor cell lines with hypoxanthine and xanthine oxidase leads to the induction of DNA-strand breaks as determined by fluorescence analysis of DNA unwinding (FADU) assay or alkaline elution techniques. This damage is preventable by catalase which removes hydrogen peroxide but no protection is provided by agents to remove or prevent the formation of superoxide anion (superoxide dismutase), or hydroxyl radical (mannitol or the iron chelator o-phenanthroline). Likewise, cyclooxygenase or lipoxygenase inhibitors of arachidonate metabolism (indomethacin, nordihydroguaiaretic acid, caffeic acid) or bromophenacyl bromide do not alter the degree of DNA scission. Treatment with higher doses of oxygen species leads to significant toxicity as determined by evaluation of cell growth potential or colony-forming ability. Again, toxicity is prevented only by the presence of catalase. Tumor cells are able to rejoin strand breaks at lower, less toxic doses. When comparing different tumor cell subpopulations at various stages of progression, i.e., metastatic vs. nonmetastatic, for sensitivity to hydrogen peroxide-induced strand breakage, we found that at lower concentrations (less than 5 microM) metastatic populations are sensitive whereas nonmetastatic populations exhibit no significant breakage. At higher concentrations of hydrogen peroxide, all lines were sensitive, suggesting that a lower threshold of sensitivity may exist for more progressed tumor cell lines.

Animals↗

Therapeutic implications of tumor heterogeneity.

At the outset of this review, we stated that we wished to raise some questions that challenge the commonly held view that tumor heterogeneity is of major significance to treatment failure. The nature of this challenge is the following: although tumor heterogeneity in sensitivity to therapeutic agents has been demonstrated repeatedly, using isolated subpopulations of cells, primarily in cell culture systems, there is very little work that has been directed toward asking the tough questions about how that heterogeneity actually impacts on the response to treatment in vivo. In our own work, when we have attempted to simulate heterogeneity, in vivo or in vitro with mixed populations of tumor cells, we have seen that the simple prediction that treatment response would reflect the sensitivities of the individual subpopulations was not valid. Tumor subpopulation interactions, influencing both growth and drug sensitivity, resulted in treatment responses that were either better or worse than would be expected. Shifts in the distribution of subpopulations under the influence of therapy did not necessarily correlate with treatment response. Marked differences in the relative proportions of subpopulations within tumors did not necessarily translate into marked differences in the behavior of whole tumors. Imposition of in vivo-like three-dimensional tissue architecture caused major changes in the overall drug sensitivity of individual subpopulations, beyond those seen as a result of heterogeneity. Of course we realize that our work is very limited, one tumor system and a few treatment protocols, but that is the challenge. Much more in-depth experimental and clinical research is necessary in order to evaluate how, and how much, tumor heterogeneity really does affect treatment. Without such work, efforts to devise more effective treatment strategies, based on common assumptions and theoretical models, rather than experimental analysis, can only be superficial and, ultimately, useless.

Animals↗

Dominance of a tumor subpopulation line in mixed heterogeneous mouse mammary tumors.

When mixtures of cell lines 168 and 4T07, both derived from the same mouse mammary tumor, were injected into syngeneic mice, the resulting tumors, analyzed over a large size range by colony-forming assays in selective media, consisted primarily of line 4T07, even when the ratio injected was 100:1 or greater in favor of line 168. This result indicated a suppression of growth of line 168, since the volume-doubling time of line 168 tumors in the absence of line 4T07 was one-half that of line 4T07 tumors. That growth suppression was not due to inhibition of line 168 by immunity induced to line 4T07 was shown in two ways: (a) line 168 tumors grew almost as well in mice preimmunized with line 4T07 as in controls, whereas line 4T07 tumor growth was strongly inhibited in preimmunized mice; and (b) the final composition (favoring line 4T07) in mixed tumors was similar in tumors grown in mice immunosuppressed by irradiation to that in nonirradiated controls. The strong suppression of line 168 did not occur when the two cell lines were injected simultaneously at different s.c. sites, nor did it occur when line 168 cells were injected in mixtures with lethally irradiated line 4T07 cells. Line 4T07 cells also suppressed the growth of line 168 cells in monolayer cultures. It was not likely that suppression was due to competition for growth factors, since the effect required cell contact. Suppression probably was not mediated through junctional communication, since these cells do not engage in metabolic cooperation. We suggest that a growth-inhibitory factor produced by line 4T07 mediates the suppression of 168 cells.

Animals↗

Motility and tumoricidal activity of interleukin-2-stimulated lymphocytes.

The motility of murine splenic lymphocytes stimulated nonspecifically by recombinant interleukin 2 (RIL-2) was studied in a three-dimensional collagen-gel system. Nonadherent BALB/c splenic lymphocytes were cultured in medium containing Cetus RIL-2 (700 to 1000 units/ml) or excipient control. They were then allowed to locomote randomly for 16 to 18 h into slabs of type I rat tail collagen gel. The gels were digested with collagenase, and total lymphocyte populations and motile subpopulations were collected and compared with respect to their lymphokine-activated killer activity (measured as 4-h cytotoxicity against the natural killer-resistant mammary adenocarcinoma line 410.4), their natural killer activity (measured as 4-h cytotoxicity versus lymphoma YAC-1), and their subset distribution (defined by immunofluorescence). Some of the slabs were not digested but fixed for measurement of leading-front distance. RIL-2-stimulated lymphocyte populations displayed greater motility than unstimulated populations; the mean leading front distance was 2.4 times greater, and the percentage of cells exhibiting motility was approximately doubled. The most motile RIL-2-stimulated cells, however, were not the most tumoricidal. Motile subpopulations displayed approximately 25 to 60% lower lymphokine-activated killer activity than did the total populations from which they were derived. Natural killer activity followed a similar pattern. Motile subpopulations contained a lower proportion of asialo-GM1+ and T-null cells than did total populations and a higher proportion of L3T4+ cells. Chemokinetic stimulation with alpha-interferon increased overall motility, but the lymphokine-activated killer activity of the motile subpopulation was still lower than that of the total population. Lymphocyte motility is important in the infiltration of tumors and other inflammatory lesions. The results indicate that the most tumoricidal lymphocytes in RIL-2-stimulated populations may not be the best tumor infiltrators, and that the tumoricidal activity of circulating lymphocytes may be a misleading indicator of the effectiveness of immunotherapy.

Animals↗

Motility of murine lymphocytes during transit through cell cycle. Analysis by a new in vitro assay.

The relationship between the basal (spontaneous) motility of murine lymphocytes and their position in the cell cycle was examined in a new collagen gel motility assay system. Concanavalin A-stimulated or control lymphocytes were allowed to locomote into slabs of type I collagen gel. The assay configuration permitted extraction of both total populations and locomotory subpopulations as viable, single-cell suspensions suitable for phenotypic and cell analysis. Concanavalin A stimulation resulted in a significant increase in the mean distance traveled by the leading cell front in 4 hr, from 23 microns (controls) to 67 microns. The estimated percentage of motile cells increased from 0.9 to 2.8%. Similar increases were observed after 18 hr of locomotion. The SIg+, Thy-1+, L3T4+, and Ly-2+ subsets exhibited equivalent increases in motility. Total populations and locomotory subpopulations were allowed to incorporate 5-bromo-2'-deoxyuridine, and their cell cycle profiles were compared by dual parameter anti-5-bromo-2'-deoxyuridine, propidium iodide fluorescence analysis. Total population and locomotory subpopulations did not differ significantly with respect to the ratio G0/G1:S, indicating that lymphocytes in these two phases exhibited approximately equal motility. Cells in late S and G2 + M were significantly less motile; locomotory subpopulations contained 60 to 75% fewer G2 + M cells than the total populations from which they were derived. Taken together, the results indicate that the concanavalin A-induced increase in motility commences before S phase and that motility diminishes shortly before or during G2 + M.

Animals↗

Tumor infiltrating lymphocytes of spontaneous versus transplanted mouse mammary tumors.

Tumor infiltrating lymphocytes (TIL) were isolated by centrifugal elutriation from C4 mouse mammary tumors and characterized with regard to phenotype and natural killer (NK) activity. Tumors that had arisen spontaneously in preneoplastic hyperplastic alveolar nodules and tumors that had been passaged one to two times in either naive or presensitized mice were studied. Mice were sensitized by limited s.c. tumor growth and subsequent surgical removal of the tumor. The total numbers of T or B cells in the infiltrates were similar in spontaneous tumors and in passaged tumors from either naive or sensitized mice. The ratio of L3T4-positive to lyt-2-positive cells was reduced, however, from 1.10 +/- 0.2 in spontaneous tumors to 0.53 +/- 0.28 or 0.48 +/- 0.04 in passaged tumors from untreated or sensitized mice. The site of tumor implantation, whether intramammary fat pad or s.c., did not affect the profiles of the infiltrates. The TIL from both spontaneous and passaged tumors demonstrated enhanced NK activity relative to peripheral lymphoid cells. The TIL of passaged tumors sensitized mice, however, had lower NK activity than those from naive mice.

Animals↗