PubMed Health⌕ Search

Biomedical subjects

M I Luster

Publications and source records attributed to M I Luster.

At least 127 records · Page 7Linked to original sources

Regulation of murine hematopoiesis by arachidonic acid metabolites.

Arachidonic acid metabolites have been shown to exert a variety of regulatory effects on cellular activation and proliferation. Recently, a role for these products as regulators of hematopoiesis was suggested and evidence provided that products of the lipoxygenase pathway, specifically leukotrienes, are essential for human myeloid colony formation in vitro. In this report the broader role of these metabolites in hematopoiesis was examined using murine bone marrow stem cell assays for both myeloid and lymphoid cell lines. The effects of lipoxygenase and/or cyclooxygenase pathway inhibitors on stem cell colony formation were evaluated and compared to qualitative and quantitative changes in arachidonic acid metabolism that occurred in similarly treated bone marrow cell cultures. Interruption of the lipoxygenase pathway by esculetin or nordihydroguaiaretic acid resulted in decreased colony formation in both lymphoid and myeloid stem cells. This inhibition of colony growth was partly reversed by the addition of leukotrienes and was particularly evident in B-cell progenitor cultures to which was added LTB4. Inhibition of the cyclooxygenase pathway by indomethacin or ibuprofen had a slight stimulatory effect on myeloid colony formation, while slightly inhibiting the formation of lymphoid colonies. These results support a direct role for lipoxygenase products in myeloid colony formation and lymphoid stem cell proliferation. A more complex role for cyclooxygenase metabolites in the hematopoietic process appears probable.

12-Hydroxy-5,8,10,14-eicosatetraenoic Acid↗

Toxicology studies of a chemical mixture of 25 groundwater contaminants. II. Immunosuppression in B6C3F1 mice.

Concern over the potential adverse health effects of chemically contaminated groundwater has existed for many years. In general, these studies have focused on retrospective epidemiological studies for cancer risk. In the present studies, immune function was monitored in female B6C3F1 mice exposed to a chemical mixture in drinking water for either 14 or 90 days. The mixture consisted of 25 common groundwater contaminants frequently found near toxic waste dumps, as determined by EPA surveys. None of the animals developed overt signs of toxicity such as body or liver weight changes. Mice exposed to the highest dose of this mixture for 14 or 90 days showed immune function changes which could be related to rapidly proliferating cells, including suppression of hematopoietic stem cells and of antigen-induced antibody-forming cells. Some of these responses, e.g., granulocyte-macrophage colony formation, were also suppressed at lower concentrations of the chemical mixture. There were no effects on T cell function or T and B cell numbers in any of the treatment groups. Altered resistance to challenge with an infectious agent also occurred in mice given the highest concentration, which correlated with the immune function changes. Paired-water studies indicated that the immune effects were related to chemical exposure and not to decreased water intake. These results suggest that long-term exposure to contaminated groundwater may represent a risk to the immune system in humans.

Animals↗

Perturbations of the immune system by xenobiotics.

Classically, immunotoxicology has been defined as the study of adverse effect on the immune system associated with exposure to environmental chemicals, pharmacologic agents, and biologicals. Although a multitude of immune system defects may occur, these can be generally categorized as immunomodulation (immune suppression or potentiation), hypersensitivity (i.e., allergy), and autoimmunity. We present here a brief synopsis of the ontogeny of immunotoxicology as a discipline including methodology currently used in our laboratory, as well as in others, for investigating the immunomodulatory potential of chemicals at the cellular and biochemical level. Additionally, we summarize some studies related to the immunosuppressive effects of one particular compound, 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD). Last we discuss potential future directions and challenges in the field of immunotoxicology.

Animals↗

Suppression of B cell function by methotrexate and trimetrexate. Evidence for inhibition of purine biosynthesis as a major mechanism of action.

Methotrexate (MTX) is a widely used drug in the treatment of a variety of human neoplasms. Trimetrexate (TMQ) is a lipid-soluble quinazoline derivate of MTX that, unlike MTX, is not dependent upon membrane folate transport for cellular entry. A number of studies have demonstrated that MTX and, more recently, TMQ possess potent immunosuppressive properties. To examine the cellular events associated with the immunomodulatory effects of anti-folates on humoral immunity, a murine B cell maturation model was used. In vitro, MTX and TMQ reduced the number of antibody-forming cells to SRBC, as well as IgM production. B cells stimulated with anti-Ig demonstrated a dose-related suppression in [3H]UdR incorporation after addition of either drug, suggestive of a decrease in de novo DNA synthesis. B cell activation events preceding S phase were also suppressed by both anti-folates, as evidenced by inhibition of RNA synthesis. However, neither drug affected surface expression of Ia Ag nor inositol phosphate accumulation. Addition of TdR caused a slight non-significant increase in the antibody-forming cell response in the presence of 10(-7) M MTX. However, addition of hypoxanthine or adenine, but not guanine, resulted in complete restoration. Timed addition revealed that the ability of MTX to suppress antibody responses was diminished if added after 48 h of culture, similar to the reversal of this suppression mediated by hypoxanthine. Cell cycle analysis of LPS-stimulated B lymphocytes demonstrated that both drugs modulated events preceding, as well as during, the S phase. The present studies suggest that although drug-induced impairments in dTMP biosynthesis may be responsible for deficient lymphoid proliferation, anti-folate-induced impairment in purine biosynthesis is a major mechanism in anti-folate-induced suppression of humoral immunity.

Animals↗

Selective effects of 2,3,7,8-tetrachlorodibenzo-p-dioxin and corticosteroid on in vitro lymphocyte maturation.

The environmental contaminant 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD) and the corticosteroid dexamethasone have potent effects on lymphocyte function, although the effects of the former have not been well characterized. In the present studies murine B cell maturation was used as a model system to examine and compare the effects of TCDD and dexamethasone on cell function. Immunosuppression by TCDD and dexamethasone is mediated by binding to specific intracellular R referred to as the Ah and glucocorticoid R, respectively. Although both compounds were comparable in their ability to inhibit antibody responses to the T-independent antigen TNP-LPS, the events responsible for suppression were found to be distinct. Dexamethasone, although affecting multiple stages of B cell maturation, had its primary effect very early, manifested by inhibition of the phosphoinositide signal transduction pathway. This was evidenced by a decrease in accumulation of inositol phosphate and surface Ia antigen expression as well as an inability to enter the cell cycle after stimulation with anti-Ig. In contrast, neither early signaling events nor proliferation were affected in B cells treated with TCDD. However, TCDD inhibited Ig secretion after stimulation of B cells with T cell-replacing factor, suggesting that TCDD modulates the differentiation of B cells into plasma cells. These differential results were confirmed by monitoring the expression of surface antigens that occur on B cells, including Ia, 7D4, and PC.2, during this maturational process. Whereas dexamethasone inhibited the expression of surface antigens that occur early in maturation (Ia and 7D4), TCDD blocked only the expression of the plasma cell marker PC.2. Although TCDD altered later stages of the B cell cycle, the presence of TCDD was required at the time of initial activation to be effective, suggesting that TCDD may interfere with early cell programming.

Animals↗

Lack of a relationship between immune function and chemically induced hepatocarcinogenesis in B6C3F1 mice.

The relationship between immune function and chemically induced hepatocarcinogenesis was studied employing an in vivo murine model. Neonatal B6C3F1 mice were given a single carcinogenic dose of diethylnitrosamine (DEN) and the time-response kinetics for the early (foci of alteration) and late (adenomas/carcinomas) phases of hepatocellular carcinogenesis were compared to changes in hematopoiesis and immune functions associated with immune surveillance and natural resistance. Increases in hematopoiesis occurred just prior to or concurrent with the appearance of hepatocellular carcinomas, while increased macrophage and natural killer cell cytotoxicity and suppression of cell-mediated immunity occurred following tumor appearance and progressed with increasing tumor burden. Neither immunological nor hematopoietic changes were associated with early phases of hepatocarcinogenesis, as monitored by the appearance of altered hepatocellular foci. Although changes in hematopoiesis may represent an early indicator for hepatocarcinogenesis in the mouse tumor model, the data suggest that altered immune surveillance and natural resistance are not factors in the development of chemically induced hepatocellular tumors, and the changes in immune function are probably secondary to tumor development.

Animals↗

Biochemical events associated with inhibition of B-cell proliferation by phorbol diesters.

Phorbol myristate acelate (PMA), a potent tumor promoter, has a variety of effects on cells of the immune system resulting in altered patterns of cell proliferation and differentiation. Although PMA is mitogenic or co-mitogenic for human lymphocytes and murine T-cells, it inhibits proliferation of murine B-cells stimulated by LPS or anti-Ig. PMA, however, does not inhibit the ability of LPS or anti-Ig to activate B-cells, as evidenced by increased Ia antigen expression and RNA synthesis. In the present studies it was shown that inhibition of DNA synthesis by PMA coincided with qualitative and quantitative changes in phosphorylated proteins. In particular, PMA treatment resulted in a unique profile of phosphoproteins independent of LPS or anti-Ig treatment. Inhibition of DNA synthesis occurred over a wide range of PMA concentrations. At concentrations up to 10(-9) M, inhibition of proliferation correlated with decreased phosphatidylinositol turnover and decreased intracellular Ca2+ levels, suggesting that PMA affects the phosphoinositide signal transduction pathway. However, at PMA concentrations less than 10(-10) M, inhibition of anti-Ig- and LPS-mediated proliferation occurred without inhibition of the phosphoinositide transduction signal. At these concentrations, PMA-induced inhibition of DNA synthesis was highly sensitive to recombinant IL-2. These data suggest that the antiproliferative effects of PMA on B-cells stimulated by LPS or anti-Ig may be mediated by two mechanisms. At high concentrations, PMA causes a feedback regulation of the phosphoinositide-dependent messenger system, while at lower concentrations, PMA alters the response to specific growth factors. Since PMA induces unique phosphoproteins and both of these events can be regulated by protein phosphorylation, it is possible that these unique phosphoproteins are responsible for the antiproliferative effects of PMA.

Animals↗

The effects of allyl isovalerate on the hematopoietic and immunologic systems in rodents.

Female B6C3F1 mice plus male and female Fischer 344/N rats were gavaged with allyl isovalerate (AIV) in corn oil at 0, 31, 62, or 125 (mice) and 0, 31, 62, 125, or 250 (rats) mg/kg body weight for five daily exposures per week for a 2-week period. Hematologic, immunologic, and histopathologic studies were performed 48 to 72 hr following the final treatment. AIV exposure had no effect on hematology or bone marrow cellularity in mice or rats. AIV exposure at 250 mg/kg was toxic to rats causing reduced weight gain and hepatotoxicity. In vivo and in vitro studies revealed that pluripotent hematopoietic stem cells (CFU-S) and granulocyte-macrophage progenitors (CFU-GM) in the bone marrow were decreased in the treated mice. Hematopoietic suppression was correlated with the reduction in the hexose monophosphate shunt metabolism of bone marrow cells but the Embden-Meyerhof pathway and tricarboxylic acid pathway enzymes did not appear to be affected. Examination of host resistance following Plasmodium and Listeria challenge did not demonstrate significant differences between treated and control mice, nor were there other effects on the immune system. This suggests that the myelotoxic effects were minimal and of a degree that would not alter host resistance.

Animals↗

Evaluation of tissue disposition, myelopoietic, and immunologic responses in mice after long-term exposure to nickel sulfate in the drinking water.

Female B6C3F1 mice were exposed to graded doses of nickel sulfate to determine a threshold response for myelotoxicity and immunotoxicity, and to identify which of the populations of lymphoreticular cells were most sensitive to the toxic effects of nickel. Animals were given free access to the chemical in the drinking water at 0, 1, 5, or 10 g/l for 180 d. Water consumption, blood and tissue nickel concentrations, body and organ weights, histopathology, immune responses, bone marrow cellularity and proliferation, and cellular enzyme activities were evaluated. There was no mortality. Mice in the 5-g/l and 10-g/l dose groups drank less water than controls; the responses measured in the 10-g/l group may have been due to a combination of dehydration and chemical toxicity. Decreases in body and organ weights were confined to mice in the 10-g/l dose group, except for the dose-related reductions in thymus weights. Blood nickel was measured at 4, 8, 16, and 23 wk of exposure. The mean blood nickel values showed increases between 4 and 8 wk that were proportional to time and dose; thereafter there was no substantial increase in blood nickel in any of the dose groups, except for an increase in the mean blood concentration in the 10-g/l group at 23 wk. The kidney was the major organ of nickel accumulation. The primary toxic effects of nickel sulfate were expressed in the myeloid system. There were dose-related decreases in bone marrow cellularity, and in granulocyte-macrophage and pluripotent stem-cell proliferative responses. In unfractionated bone marrow cells glucose-6-phosphate dehydrogenase enzyme activity from the hexose monophosphate shunt was more sensitive to nickel sulfate than were representative glycolytic or Krebs cycle enzymes, with 25-35% maximum inhibition at 5 g/l and 10 g/l. Aliquots of bone marrow cells were separated into enriched bands of lymphocytes, granulocyte-macrophages, and erythrocytes; enzyme inhibition that occurred in unfractionated bone marrow cell aliquots was only expressed after cell separation in the enriched granulocyte-macrophage cell population, suggesting that these committed stem cells were a primary target of nickel sulfate toxicity. There was one example of systemic immunotoxicity, reduction in the lymphoproliferative response to lipopolysaccharide, and it was regarded as secondary to the primary effect of nickel sulfate on the myeloid system, since this was the only significant change among a panel of seven immune parameters that were evaluated.

Animals↗

Selective immunosuppression in mice of natural killer cell activity by ochratoxin A.

Ochratoxin A, a naturally occurring mycotoxin, has recently been shown to cause renal and hepatic carcinomas in mice. In the present studies, the effects of ochratoxin A on immune mechanisms associated with tumor resistance were examined in mice using dose levels similar to those that cause neoplasia. Ochratoxin A was shown to specifically inhibit natural killer (NK) cell activity and increase the growth of transplantable tumor cells without altering T-cell- or macrophage-mediated antitumor activity. In contrast, ochratoxin B, a much less toxic ochratoxin, did not influence immune function. Polyinosinic:polycytidylic induced interferon was markedly reduced in mice following exposure to ochratoxin A although total serum protein levels were slightly increased. Injection of polyinosinic:polycytidylic enhanced NK activity in the presence of ochratoxin A, although the level of enhancement was slightly lower than that produced by the agent in the absence of ochratoxin A. Thus, ochratoxin appears to suppress NK cell activity by inhibiting production of basal interferon. Additionally, these findings suggest a possible role for altered NK cell function in the development of mycotoxin-induced carcinogenesis.

Animals↗

Modulation of 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD)-mediated myelotoxicity by thyroid hormones.

Although binding by 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD) to the Ah receptor is a prerequisite for toxicity, the events responsible for subsequent TCDD effects are essentially unknown. Several lines of evidence have indicated that thyroid hormones share common molecular properties with TCDD and can modulate its toxicity. In the present studies we employed suppression of murine bone marrow hematopoiesis by TCDD as an in vitro model to study the relationship between thyroid hormones and TCDD toxicity. Supraphysiological levels of thyroid hormone mimicked TCDD myelotoxicity, in that both were inhibited by a common antagonist, 1-NH2-3,7,8-trichlorodibenzo-p-dioxin. Furthermore, myelotoxicity by both TCDD and thyroid hormone segregated with the Ah locus in congenic mice. These data provide evidence of a relationship between TCDD and thyroid hormones in that hormonal activity may help regulate TCDD toxicity.

Animals↗

Metabolic characterization of mouse bone marrow cells responsive to estrogenic inhibition: hexose monophosphate shunt enzyme activity in enriched populations of mature cells and progenitor cells.

Compounds with estrogenic activity cause initial toxic responses in the bone marrow characterized by hypocellularity and stem cell myelotoxicity. To elucidate the biochemical nature of these toxic responses, bone marrow cells were collected from mice treated with pharmacological doses of estrogenic chemicals, separated into enriched cell populations, and the enzymatic responses of the individual cell types characterized. Female B6C3F1 mice were injected s.c. with five daily doses of 0.07-5.6 mu moles diethylstilbestrol (DES) or 17-beta estradiol. At 4 days posttreatment body and organ weights were recorded and bone marrow was collected for enumeration and assay of stem cell proliferative responses and enzyme analyses. Treatment with higher dose levels of either estrogenic chemical caused equivalent thymic atrophy, but DES resulted in greater liver and spleen hypertrophy than estradiol. Hexose monophosphate shunt dehydrogenase enzymes in unfractionated bone marrow cells were more sensitive to inhibition by lower estrogen doses than representative enzymes from glycolysis of the Kreb's Cycle, and on an equimolar basis were inhibited to a greater extent by DES than by estradiol. Enzyme analyses after density gradient cell separation indicated that 70-80% of the hexose monophosphate shunt enzyme activity in bone marrow from untreated mice occurred in the enriched band of cells containing predominantly granulocyte-macrophages. The majority of the enzyme inhibition induced by DES treatment could also be ascribed to this cellular population. Furthermore, it was shown that DES had a greater inhibitory effect on the proliferative capacity of the committed stem cells than on the multipotential stem cell population, and the main response was again expressed in the enriched band of cells containing predominantly granulocyte-macrophage precursors. Preliminary endocrine ablation experiments indicated estrogen inhibition of hexose monophosphate shunt enzyme activity was independent of the adrenal and the ovary, but was mediated through the thymus at lower estrogen concentrations.

Adrenalectomy↗

Comparative effects on the immune system of methotrexate and trimetrexate.

Methotrexate (MTX) is an antimetabolite commonly used in the treatment of neoplastic disease, while trimetrexate (TMQ) is an investigational antifolate which is currently advocated as a potential alternative to MTX. The cytotoxic properties of antifolates to rapidly proliferating cells suggests that the immune system would be a significant and undesirable target for these drugs. We examined the comparative effects of these two chemotherapeutic agents on the murine immune system using in vivo and in vitro methods. Both drugs were potent suppressors of T-dependent antibody formation in vitro as well as in vivo. While TMQ appeared to be more immunosuppressive than MTX following in vitro addition of the drugs, the converse appeared to be true when dosing was performed in vivo. The drug induced suppression of T-dependent antibody formation was dose dependent for both antifolates. Lymphoproliferative studies demonstrated marked suppressive effects on LPS and PHA induced 3H-uridine and 3H-deoxyuridine incorporation following addition of both drugs in vitro suggesting effects on both RNA and thymidylate biosynthesis. Timed addition studies demonstrated a particularly susceptible time period (hours 24-48 after addition of the mitogen LPS) in stimulated lymphocytes with respect to inhibition of 3H-uridine incorporation. Following in vivo administration of either antifolate, natural killer cell activity was significantly decreased with no substantial differences between the two drugs.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Immunological studies on mice exposed subacutely to methyl isocyanate.

The immunotoxicity of methyl isocyanate (MIC) was evaluated in female B6C3F1 mice exposed via inhalation to 0, 1, or 3 ppm for 6 hr per day on 4 consecutive days. The antibody response to sheep erythrocytes and natural killer cell activity were found to be unaffected by MIC exposure. Although lymphoproliferative responses to mitogens were moderately suppressed by MIC, the differences were not statistically significant. The response of splenic lymphocytes to allogeneic leukocytes in a mixed leukocyte response (MLR) was suppressed in a dose-related fashion and was significantly different from the control response at the 3 ppm level. This effect was thought to be secondary and a result of general toxicity, rather than a direct effect of MIC on the immune system. Furthermore, resistance to the infectious agents Listeria monocytogenes, mouse malaria parasite, and influenza virus, or to transplantable tumor cells was not compromised by MIC exposure. Thus, the immune system does not appear to be a primary target for MIC toxicity.

Animals↗

alpha-Naphthoflavone antagonism of 2,3,7,8-tetrachlorodibenzo-p-dioxin-induced murine lymphocyte ethoxyresorufin-O-deethylase activity and immunosuppression.

Suppression of murine humoral immunity by 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD) has been shown to occur in vivo and in vitro. Studies have indicated that suppression of humoral immunity is mediated by the Ah receptor. Data presented in this paper demonstrate that alpha-naphthoflavone (ANF) and beta-naphthoflavone (BNF), like TCDD, bind to rat and murine hepatic and murine splenocyte cytosolic Ah receptor. Furthermore, BNF induces cytochrome P1-450 monooxygenase activity as measured by ethoxyresorufin-O-deethylase (EROD) in murine spleen cells to the same extent as TCDD. In contrast, ANF predominantly acts to antagonize TCDD induction of splenocyte EROD activity. Examination of humoral immunity in vitro demonstrated that BNF, like TCDD, is suppressive. Whereas ANF is suppressive at cytotoxic concentrations, lower concentrations of ANF antagonize the suppressive effect of TCDD. Antagonism by ANF of TCDD-induced EROD activity and suppression of humoral immunity occur at similar concentrations. These data suggest that ANF blocks TCDD suppression of B lymphocyte differentiation by competing with TCDD for binding to the Ah receptor. Since the mechanism of TCDD toxicity is not fully understood, probes such as ANF may be of great use in examining the role of the Ah receptor in mediating toxicity.

Animals↗

Functions of mononuclear phagocytes in mice exposed to diethylstilbestrol: a model of aberrant macrophage development.

Administration of the synthetic estrogen diethylstilbestrol (DES) lowers the systemic resistance of mice to challenge with either tumor cells or the facultative intracellular parasite Listeria monocytogenes. To assess the potential role of impaired mononuclear phagocyte system (MPS) function in this depression of host resistance, we addressed the question of systemic perturbations of the MPS induced by administration of DES. A panel of objective quantitative markers which have been previously shown to identify and characterize macrophages in the several stages of development of activation was employed. DES perturbed the resident population of peritoneal macrophages by increasing their number approximately twofold and by enhancing their competence for phagocytosis, cytostasis of tumor cells, and secretion of plasminogen activator. When we examined the competence of the MPS in DES-treated mice to respond to challenge with activating stimuli, we found that DES systemically suppressed the development of macrophages, in response to either pyran copolymer or BCG, to develop tumoricidal function and to gain competence for secretion of reactive oxygen intermediates such as H2O2. Since these data suggested that DES inhibited the development of macrophages from a precursor stage (i.e., responsive macrophages) to activated macrophages in vivo, we tested this possibility directly by applying known activating signals in vitro to responsive macrophages. Responsive macrophages from DES-treated mice did not become activated in response to the application of two known potent activating signals (i.e., MAF + LPS). Taken together, the data indicate that DES systemically perturbs the MPS and does so by enhancing development of the early stages of maturation and suppressing subsequent development.

Animals↗