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D G Remick

Publications and source records attributed to D G Remick.

At least 145 records · Page 8Linked to original sources

Modulation of tumor necrosis factor-alpha gene expression. Desensitization of prostaglandin E2-induced suppression.

PGE2, an immune mediator, is an inhibitor of LPS-stimulated TNF production and gene transcription. In the present study we determined whether pretreatment with PGE2 could desensitize the suppressive function of PGE2 for the production of macrophage (MO)-derived TNF. CFA-elicited MO were incubated with PGE2 or medium only, washed, and then challenged with graded doses of LPS (0.001 to 1000 ng/ml) in the presence or absence of new PGE2. The concomitant addition of PGE2 with LPS shifted the LPS concentration-effect curve 16-fold to the right with a 52% decrease in the maximum LPS response, while MO pretreated with PGE2, washed, and incubated with LPS plus new PGE2 were desensitized to TNF regulation. These latter conditions resulted in a complete loss of the ability of PGE2 to inhibit MO TNF production as demonstrated by no significant change in the EC50 of LPS. In addition, the PGE2 concentration effect curve was shifted to the right after pretreatment of MO, suggesting a desensitized PGE2 receptor system. At the transcriptional level, pretreatment of MO with PGE2 attenuated the ability of new PGE2 to inhibit LPS-dependent TNF mRNA expression. Further studies demonstrated that, although the concomitant addition of the cyclooxygenase inhibitor indomethacin plus LPS could increase TNF production, MO pretreated with indomethacin, washed, and then challenged with LPS demonstrated an inhibition of TNF expression. MO pretreated with indomethacin also demonstrated an increased sensitivity for exogenous PGE2-induced suppression of TNF mRNA and bioactivity. These investigations further support the role of PGE2 as an immunomodulating compound that may effectively regulate the local concentration of specific monokines needed to maintain an inflammatory lesion.

Adjuvants, Immunologic↗

Endothelial cell gene expression of a neutrophil chemotactic factor by TNF-alpha, LPS, and IL-1 beta.

Human endothelial cells produced a neutrophil chemotactic factor (NCF) upon stimulation with tumor necrosis factor-alpha (TNF-alpha), interleukin-1 beta (IL-1 beta), or lipopolysaccharide (LPS). The expression of endothelial cell-derived NCF messenger RNA and biological activity was both time- and concentration-dependent. Maximal NCF mRNA expression occurred at 10 and at 2 nanograms per milliliter for TNF and IL-1 beta, respectively; mRNA expression was first observed 1 hour after stimulation and was maintained for at least 24 hours. In situ hybridization analysis showed that NCF mRNA peaked in treated cells by 24 hours, whereas unstimulated cells were negative. These studies demonstrated that endothelial cells may participate in neutrophil-mediated inflammation by synthesizing a chemotactic factor in response to specific monokines and LPS.

Blotting, Northern↗

Effects of arachidonic acid metabolites and other compounds on the CTLL assay for interleukin-2.

Interleukin-2 (IL-2) is a peptide lymphokine which plays a central role in many immune responses. Production of IL-2 is blocked in the presence of various chemical constituents including arachidonic acid (AA) metabolites, however, the effects of these compounds on preformed IL-2 is less clear. This study was designed to observe whether commonly employed drugs and AA metabolites will inhibit the ability to measure IL-2 in a standard bioassay. We measured cytotoxic T lymphocyte (CTLL) proliferation in response to IL-2 in the presence of increasing concentrations of drugs or AA metabolites. Our data provides clear evidence that no suppression of cell replication occurs with PGE2, PGF2 alpha, LTB4, LTC4, LTD4, and LTE4 at concentrations of 10(-5)-10(-9) M. At high concentrations, both dexamethasone (10(-5)M) and indomethacin (10(-5) and 10(-6) M) resulted in a suppressive effect on CTLL proliferation, while low concentrations of either compound (10(-7)-10(-9) M) had no effect. This study shows that AA metabolites will not block the ability of IL-2 to induce CTLL proliferation, and neither will dexamethasone or indomethacin at low concentrations.

Animals↗

Dynamics of dibutyryl cyclic AMP- and prostaglandin E2-mediated suppression of lipopolysaccharide-induced tumor necrosis factor alpha gene expression.

The regulation of lipopolysaccharide (LPS)-induced tumor necrosis factor alpha (TNF) production by prostaglandin E2 (PGE2), forskolin, and dibutyryl cyclic AMP (cAMP) was examined at the cellular and molecular levels. The above three agents could suppress LPS (100 ng/ml)-stimulated TNF production by immunologically activated murine macrophages (M phi s) in a dose-dependent manner. The concomitant addition of PGE2, dibutyryl cAMP, or forskolin to LPS-challenged M phi s resulted in 50% inhibition of TNF production at 10(-7), 3 X 10(-6), and 3 X 10(-5) M, respectively. Interestingly, delaying the addition of PGE2 or dibutyryl cAMP by 1.5 h post-LPS stimulation was also effective in suppressing the production of TNF bioactivity, but only dibutyryl cAMP was effective when its addition was delayed by 3 h. Northern (RNA) blot analysis of mRNA isolated from LPS-challenged M phi s treated with PGE2 or dibutyryl cAMP corroborated the bioactivity data. The delayed addition of PGE2 or dibutyryl cAMP by 1.5 h post-LPS stimulation resulted in a suppression of TNF mRNA accumulation by 50 to 70%. These data support the concept that LPS is a potent stimulus for M phi-derived TNF production and that this mediator is a very proximal signal in LPS-mediated disease states. Thus, therapeutic approaches that target the suppression of TNF in LPS-dependent disease states may be limited by the rapid expression of this mediator.

Adjuvants, Immunologic↗

Interleukin-2-induced tumor necrosis factor-alpha (TNF-alpha) gene expression in human alveolar macrophages and blood monocytes.

Recent investigations have demonstrated interleukin-2 receptor (IL-2R) expression on both human alveolar macrophages (AM phi) and blood monocytes (PBM), but the function of these receptors has not been fully elucidated. In this study, we demonstrate that human AM phi, as well as PBM, can be induced to express biologically active TNF-alpha after challenge with interleukin-2 (IL-2). Furthermore, we examined the expression of TNF-alpha at the mRNA level via Northern blot and in situ hybridization analysis. Normal AM phi, obtained by bronchoalveolar lavage, and PBM were stimulated with either IL-2 (2,000 U/ml) or lipopolysaccharide (LPS) (10 micrograms/ml) for 18 h. Specificity was demonstrated by neutralizing TNF-alpha activity with a polyclonal rabbit anti-human TNF-alpha antibody. PBM TNF-alpha biologic activity from 11 subjects challenged with either IL-2 or LPS was 19 +/- 6 and 85 +/- 15 U/ml/10(6) cells, respectively, which represented 5-fold and 21-fold increases over control values. AM phi TNF-alpha biologic activity from nine subjects was 110 +/- 28 (IL-2-mediated) and 304 +/- 69 (LPS-mediated) U/ml/10(6) cells, which represented 2- and 6-fold increases over controls. AM phi exhibited statistically greater (p less than 0.05) TNF production in response to both IL-2 and LPS as compared to PBM. IL-2 challenge resulted in an induction of TNF-alpha mRNA accumulation, as demonstrated by Northern blot and in situ hybridization analyses. TNF-alpha mRNA was quantitated by laser densitometry for Northern blots or by counting the number of silver grains/mononuclear phagocytic cell in the in situ hybridization analysis.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Differential regulation of tumor necrosis factor-alpha in human alveolar macrophages and peripheral blood monocytes: a cellular and molecular analysis.

Human tumor necrosis factor-alpha (TNF), a mononuclear phagocyte (MO)-derived peptide, is increasingly being recognized for its pleomorphic immunologic effects. A number of studies have demonstrated that LPS can induce TNF synthesis, but data examining the production and regulation of TNF in human MO populations are lacking. In this study, we present data demonstrating that alveolar macrophages (AMO) and peripheral blood monocytes (PBM) obtained from 10 normal volunteers display a significant difference in both the production of TNF and their susceptibility to TNF regulation by prostaglandin E2 (PGE2) and dexamethasone (Dex). Adherent populations of PBM and AMO were incubated for 18 h in the presence of either LPS (10 micrograms/ml) alone, PGE2 for 1 h prior to LPS challenge, Dex for 1 h prior to LPS challenge, or control media alone. Cell-free supernatants were examined for TNF bioactivity and cellular TNF mRNA was assessed via in situ hybridization and Northern blot analysis. PGE2 and Dex treatment of PBM suppressed LPS-induced TNF production by 78% and 72%, respectively, while AMO-TNF production was suppressed by only 22% and 33%. The accumulation of TNF mRNA in PBM was reduced 63% by PGE2 and 45% by Dex, as assessed by laser densitometry. Similar studies demonstrated that TNF mRNA accumulation in AMO was reduced 12% and 13% by PGE2 and Dex, respectively. A 1,000-fold increase in PGE2 levels was necessary to induce 50% suppression of the maximal response to AMO as compared to PBM. These data support the notion that human MO derived from different compartments or stages of differentiation exhibit differential responsiveness to immunomodulators.

Adult↗

Cellular and molecular aspects of granulomatous inflammation.

Recent advances in cellular and molecular biology have provided important new avenues to assess mechanisms of granuloma formation/regulation. For example, current studies have identified various cytokines that can exert a powerful influence on both immune and non-immune cells and dictate inflammatory processes. Some of these cytokines are potentially active during the initiation and maintenance of chronic inflammation, including tumor necrosis factor, interleukin 1, and a novel class of chemotactic cytokines. This latter group of mediators belongs to a super-gene family of immune signals that play a key role in the selective recruitment of inflammatory cells to an area of inflammation. The coordinated synthesis of these cytokines is likely important to the development of the granulomatous response. The participation of molecular signals produced by non-inflammatory cells, fibroblasts, and epithelial cells, also warrants special consideration. These "bystander" cells appear to possess effector cell functions and likely serve an important role in inducing pulmonary granulomatous inflammation. Thus, a clear understanding of the cells and molecular signals involved in the initiation and maintenance of chronic pulmonary inflammation will be necessary to assess lesion development and design more selective/effective therapies.

Animals↗

Tumor necrosis factor participates in the pathogenesis of acute immune complex alveolitis in the rat.

We have examined the role of intrapulmonary TNF in a rat model of acute immune complex-triggered alveolitis. Intratracheal instillation of IgG anti-bovine serum albumin (anti-BSA) followed by intravenous infusion of BSA results in acute alveolitis. Over the 4-h course of evolving lung injury, a 10-fold increase in TNF activity occurred in bronchoalveolar lavage (BAL) fluid. Immunohistochemical analysis of lung sections and BAL cells revealed that alveolar macrophages are the chief source of TNF. Antibodies that specifically neutralize rat TNF activity were raised in rabbits immunized with recombinant mouse TNF alpha. When administered into the lungs with anti-BSA, anti-TNF resulted in a marked reduction (up to 61%) in lung injury. Intratracheal instillation of exogenous TNF alone, or in combination with anti-BSA, resulted in an increase in lung injury compared to controls. Morphometric analysis and measurements of myeloperoxidase activities in whole lung extracts from rats treated with anti-TNF revealed a marked reduction in neutrophils compared to positive controls. The anti-TNF antibody preparation did not inhibit in vitro complement activation or diminish neutrophil chemotactic activity present in activated rat serum. These data indicate that intrapulmonary TNF activity is required for the full development of acute immune complex-triggered alveolitis, that alveolar macrophages are the primary source of this cytokine, and that TNF participates in the pathogenesis of immune complex alveolitis through a mechanism involving neutrophil recruitment.

Animals↗

Mechanisms that regulate the production and effects of tumor necrosis factor-alpha.

Macrophage-derived tumor necrosis factor (TNF) is increasingly being recognized as an important monokine possessing multifunctional activities. Current evidence has demonstrated that TNF can induce a number of pleomorphic effects in both physiological and immunological systems. Historically, the biological effects and nomenclature of TNF centered around the induction of hemorrhagic necrosis of specific solid murine tumors. This effected function has been greatly expanded upon, and TNF is now recognized as an important peptide mediator involved in various facets of cell activation. This is exemplified by the central role that TNF plays in endotoxemia, shock and multiple organ failure syndromes. Although TNF has been incriminated as the molecular signal mediating number of pathophysiological derangements, the regulatory mechanisms that control TNF expression at the cellular and molecular levels, as well as the modulation of the in vivo activity of preformed TNF, has not been full addressed. In this review, a detailed description of the mechanisms that regulate the production and effects of TNF is presented.

Animals↗

In vivo dynamics of murine tumor necrosis factor-alpha gene expression. Kinetics of dexamethasone-induced suppression.

Tumor necrosis factor-alpha (TNF) has been implicated as an important, proximal mediator of many of the pathophysiologic effects observed during septic shock. In vitro studies have demonstrated that the glucocorticoid dexamethasone (Dex) will suppress the production of TNF; yet, clinical studies have shown that glucocorticoids are not protective in septic shock. In this paper we described the in vivo effects of lipopolysaccharide (LPS) on the kinetics of local and systemic TNF production, the time dependent expression of TNF mRNA, and the suppression of both TNF mRNA and bioactive protein using a defined treatment protocol of Dex. Peritoneal macrophages were elicited by CBA/J mice in the injection of complete Freunds adjuvant and the mice challenged with an intraperitoneal injection of LPS 2 weeks later. Kinetic studies showed that the peak of TNF production occurred 1 hour post LPS injection and reached a maximum of 775 units/ml within the ascites and 26 units/ml within the plasma. Northern blot analysis of mRNA extracted from peritoneal cells showed a peak of mRNA 30 minutes post LPS challenge. Dose-response studies disclosed that 10 micrograms of LPS/mouse produced maximal TNF within the ascites fluid, and half-maximal stimulation occurred at 70 ng LPS/mouse. Mice treated with Dex in vivo before LPS challenge showed a dramatic reduction in TNF production within both the ascites and plasma, and Northern blot analysis showed a corresponding reduction in the TNF specific mRNA. Further studies revealed that mice treated with 4 mg/kg of Dex intraperitoneally 4 hours before, or at the time of LPS challenge, had dramatic reductions in TNF levels within both the ascites and plasma. However, delaying the treatment only 20 minutes after LPS injection failed to significantly reduce TNF in either compartment. These data may provide a rationale why glucocorticoids are not clinically efficacious in the treatment of septic shock, since there is rapid upregulation of LPS-induced TNF gene expression. By the time patients develop clinical signs and symptoms of septic shock there are already preformed, circulating levels of TNF.

Animals↗

Cellular and molecular regulation of tumor necrosis factor-alpha production by pentoxifylline.

Tumor necrosis factor-alpha (TNF), a mononuclear phagocyte (MO)-derived peptide, is increasingly being recognized for its pleomorphic immunologic effects. A number of investigations have demonstrated that lipopolysaccharide (LPS) can induce TNF synthesis, yet mechanisms that regulate TNF expression at the cellular and molecular levels have not been fully elucidated. In this study, we present data demonstrating pentoxifylline, a methylxanthine, is efficacious in suppressing LPS-induced MO-derived TNF at the level of both TNF mRNA accumulation and TNF supernatant bioactivity. Pentoxifylline, at a dose of 1 x 10(-5)M, suppressed the production of both biologically active TNF and TNF mRNA expression by more than 50%. Furthermore, additional methylxanthines and dibutyryl cAMP have similar effects on TNF expression. These data support the mechanism for this suppressive effect is via the generation of intracellular cAMP.

1-Methyl-3-isobutylxanthine↗

Suppression of natural killer cytolytic activity in mice undergoing pulmonary granulomatous inflammation.

CBA/J mice undergoing pulmonary granulomatous inflammation exhibited depressed NK cytolytic activity. Granulomas induced by i.v. embolization of Schistosoma mansoni eggs (hypersensitivity type) or Sephadex beads (foreign body type) both caused reduced NK activity, although hypersensitivity granulomas induced a significantly higher level of NK suppression. Kinetic analysis of hypersensitivity lesions at 4, 8, 16, and 32 days post-embolization indicated that NK activity was significantly suppressed by day 8, maximally suppressed by day 16 (at the peak of the inflammatory response) then returned to near control values by day 32 (as the granulomas resolved). Suppression of NK activity ranged from three- to 15-fold in different experiments. NK cells obtained from both spleen and peripheral blood demonstrated reduced NK activity with kinetic patterns similar to the granuloma NK cells. Suppression was not due to reduced splenic NK cells as the frequency of YAC-1 binding cells, as well as asialo GM1+ or laminin+ cells remained constant over the entire study period. Suppression of NK activity did not appear to be due to serum components or suppressor cells present in the spleen preparations. However, the suppression of NK activity could be reversed by overnight incubation of spleen cells at 25 or 37 degrees C or daily treatment of the mice with indomethacin. Suppression also appeared relatively specific for NK cells as the generation and expression of cytotoxic T lymphocyte activity was not affected.

Animals↗

Flow-cytometric evaluation of lymphocyte subpopulations in synchronously developing Schistosoma mansoni egg and Sephadex bead pulmonary granulomas.

Synchronous models of T-cell-mediated and foreign body granulomas were induced in mice by intravenous embolization of Schistosoma mansoni eggs and Sephadex beads, respectively. The authors then performed flow-cytometric analysis of lymphocytes from dispersed granulomas, spleens, and peripheral blood at 4, 8, 16, and 32 days corresponding to the induction, growth, and maintenance, and resolution of these lesions. Lymphocytes were identified on the basis of light scatter characteristics, and the nature of the cells was confirmed by cell sorting and electron-microscopic examination. Lymphocyte subpopulations were characterized with antibodies to lymphocyte surface markers, specifically Ig, Thy 1.2, Lyt 1, Lyt 2, and L3T4. Natural killer cells were identified with anti-asialo GM1. Egg-induced granulomas had more lymphocytes of all phenotypes at all time points. Surprisingly, there was a significant number of cells staining positive for asialo GM1. On Day 16 after embolization there was a greater percentage of helper T cells, as defined by positive staining with L3T4, in the egg model, compared with the bead model. There was no obvious shift of lymphocytes from either the blood or spleen into the granuloma. These data confirm the importance of T cells in the direct participation of granulomatous inflammation, and the large numbers of asialo GM1-positive cells suggest a role for natural killer cells.

Animals↗

Production and regulation of tumor necrosis factor alpha. A cellular and molecular analysis.

Tumor necrosis factor alpha is increasingly being recognized as an important macrophage-derived cytokine that possesses pleomorphic effects in both physiologic and immunologic systems. Current evidence has demonstrated that tumor necrosis factor may stimulate a plethora of cellular responses in vitro and induce multiple physiologic derangements when given in vivo. While the biologic activity of tumor necrosis factor elaborated by macrophages and macrophage cell lines in response to bacterial and protozoal cell products have been well documented, the endogenous factors that regulate the production of this monokine are not as clearly delineated. This chapter focuses on the cellular and molecular mechanisms that endogenously regulate the production of tumor necrosis factor.

6-Ketoprostaglandin F1 alpha↗

Immunohistochemical demonstration of cytoplasmic and membrane-associated tumor necrosis factor in murine macrophages.

Using a highly specific rabbit antisera directed against murine tumor necrosis factor (TNF), immunohistochemical localization of this monokine was performed in cultured mouse peritoneal macrophages. Resident macrophages did not express TNF even after stimulus with lipopolysaccharide (LPS). In contrast, 12% of macrophages elicited with Freund's adjuvant stained positively and up to 60% were positive after LPS stimulation. Analysis of the kinetics of expression revealed that maximal staining occurred from 1-3 hours after stimulus with disappearance of staining by 12 hours. Both a membrane and cytoplasmic pattern of staining could be demonstrated. The presence of plasma membrane TNF was confirmed by scanning electron microscopy. Northern blot analysis and bioassay revealed that the kinetics of TNF mRNA synthesis corresponded to the appearance of the protein while its disappearance corresponded to the appearance of TNF in the supernate. Thus, TNF synthesis and secretion could be histochemically demonstrated. These findings support the notion that TNF production is a characteristic of activated macrophages and that such cells display membrane-associated TNF at least transiently after stimulation.

Animals↗

In situ hybridization analysis of macrophage-derived tumor necrosis factor and interleukin-1 mRNA.

Tumor necrosis factor (TNF) and interleukin-1 (IL-1) play an intimate role in the initiation and maintenance of inflammatory reactions due to their pluripotent activities. In this paper, we describe the use of an in situ hybridization analysis as an effective means to probe for TNF and IL-1 mRNA levels in primary macrophage cultures and macrophage cell lines. A significant increase in lipopolysaccharide (LPS)-induced TNF mRNA accumulation was demonstrated by in situ hybridization using either a 35S-labeled synthetic oligonucleotide (30-mer) complementary to TNF mRNA or a 35S-randomly primed labeled TNF DNA probe. An augmentation in TNF mRNA accumulation, as assessed by increasing grains/cell, was demonstrated over a wide concentration range of LPS. This accumulation was shown using both immunologically elicited primary macrophage cultures and the macrophage cell line RAW 264.7. Interestingly, the RAW 264.7 constitutively produced TNF in the absence of specific stimulus and this tonic production was observed at the molecular level via in situ hybridization analysis. Specificity of the in situ hybridization technique was shown by a complete loss in binding of 35S-probe after either RNase digestion or competition with "cold-labeled" probe. beta-actin served as a 35S-labeled control probe where the number of actin-specific grains/cell was not altered by stimulating macrophages with LPS. IL-1 alpha mRNA was also increased by LPS stimulation of macrophages as assessed by in situ hybridization. The LPS-dependent increase in macrophage mRNA for TNF and IL-1 alpha, as assessed by in situ hybridization, was confirmed by classical Northern blot analysis as well as the production of biologically-active protein.

Animals↗

Stimulation of prostaglandin E2 and thromboxane B2 production by human monocytes in response to interleukin-2.

Interleukin 2 (IL-2) is a potent lymphokine involved in the regulation of immune responses and is classically regarded as a stimulus for the activation and growth of T-cells. Recent reports have demonstrated the IL-2 dependent activation of human peripheral blood lymphocytes into lymphokine activated killer cells capable of lysing tumor cells both in vitro and in vivo. In this study we report data which clearly show IL-2 may also act to down-regulate the immune response by inducing the synthesis of arachidonic acid metabolites with known immunosuppressive actions. Stimulation of peripheral human blood monocytes with IL-2 caused an increased production of prostaglandin E2 (PGE2) and thromboxane (TXB2) in a dose-dependent manner. Kinetic analysis showed no increase above controls after 6 hours and maximal levels by 10 hours; elevated levels were maintained after 45 hours of incubation. After 20 hours of stimulation with 2000 U/ml IL-2, the level of PGE2 and TXB2 were greater than three-fold above controls, 0.7 and 19 ng/10(6) cells, respectively. The stimulation was relatively specific in that neither prostacyclin nor leukotrienes were produced in response to IL-2. These data demonstrate that IL-2 acts on human monocytes to induce the secretion of PGE2 and TXB2.

6-Ketoprostaglandin F1 alpha↗