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Biomedical subjects

J Vilcek

Publications and source records attributed to J Vilcek.

At least 91 records · Page 5Linked to original sources

Induction of membrane-associated interleukin 1 by tumor necrosis factor in human fibroblasts.

Highly purified recombinant human tumor necrosis factor (TNF) was found to induce interleukin 1 (IL 1) production in diploid human FS-4 fibroblasts. Demonstration of IL 1 activity was based on the ability of TNF-treated FS-4 cells, subsequently fixed with formaldehyde, to stimulate thymocyte proliferation in the presence of phytohemagglutinin. Incubation of FS-4 cells with the optimal dose of TNF (10 ng/ml) resulted in a marked increase in [3H] thymidine uptake by thymocytes co-cultured with formaldehyde-fixed FS-4 cells. Induction of this apparently membrane-associated IL 1 (MA-IL 1) activity was demonstrable at 6 hr and reached a plateau after 48 hr of incubation with TNF. FS-4 cells did not secrete soluble IL 1 in response to TNF. Dexamethasone suppressed the synthesis of TNF-induced MA-IL 1. A monoclonal antibody specific for TNF neutralized MA-IL 1 induction, indicating that the induction is due to TNF, and not to a contaminant in the TNF preparation. The ability of TNF to induce IL 1 synthesis in FS-4 fibroblasts at the transcriptional level was confirmed by S1 nuclease protection assay. Cytoplasmic RNA from uninduced FS-4 cells contained no demonstrable RNA hybridizing with a human IL 1-alpha cDNA probe and low levels of RNA hybridizing with an IL 1-beta cDNA. Induction with TNF resulted in the appearance of IL 1-alpha mRNA and a very significant increase in IL 1-beta mRNA, indicating that TNF induces the synthesis of both IL 1-alpha and IL 1-beta in FS-4 cells.

Animals↗

Tumor necrosis factor increases the number of epidermal growth factor receptors on human fibroblasts.

Tumor necrosis factor (TNF) was shown previously to stimulate the growth of human FS-4 fibroblasts. Here we show that human recombinant TNF can increase the binding of epidermal growth factor (EGF) to these cells. Incubation with TNF resulted in a 40-80% increase in the number of EGF-binding sites with no apparent change in receptor binding affinity. The increase in EGF binding was apparent 8-12 h after the addition of TNF. TNF also increased the amount of EGF receptor protein immunoprecipitated from cells labeled with [35S]methionine. Stimulation of EGF receptor protein synthesis was demonstrable 2-4 h following TNF treatment. TNF increased EGF binding with a dose-response relationship similar to that reported earlier for the mitogenic action. Increased expression of EGF receptors, due to enhanced synthesis of the EGF receptor protein, may be functionally related to the mitogenic action of TNF in human fibroblasts.

Dose-Response Relationship, Drug↗

Tumor necrosis factor is an important mediator of tumor cell killing by human monocytes.

The mechanism of human peripheral blood monocyte-mediated cytotoxicity for tumor cells was investigated, using the A673 human rhabdomyosarcoma and HT-29 human colon adenocarcinoma lines as target cells. A673 cells were shown to be susceptible to the cytotoxic action of purified recombinant human tumor necrosis factor (TNF). A673 cells were also highly sensitive to the cytotoxic action of peripheral blood monocytes. Clones of A673 cells sensitive and resistant to TNF were isolated and characterized for their sensitivity to monocyte killing. A good correlation was found between the sensitivity of these clones to the cytotoxicity of TNF and their susceptibility to killing by monocytes. A TNF-specific neutralizing monoclonal antibody (MAb) reduced monocyte killing of parental A673 cells and of a TNF-sensitive clone of A673 cells. Inhibition of monocyte killing by this MAb was particularly pronounced at a low effector to target cell ratio. HT-29 cells were relatively resistant to the cytotoxic action of recombinant TNF and to monocyte killing. Treatment of HT-29 cells with recombinant human IFN-gamma increased their susceptibility to both TNF cytotoxicity and monocyte killing. In addition, MAb to TNF inhibited monocyte killing in HT-29 cells sensitized by incubation with IFN-gamma. Our data show that TNF is an important mediator of the cytotoxicity of human monocytes for tumor cells and that IFN-gamma can increase monocyte cytotoxicity by sensitizing target cells to the lytic action of TNF.

Adenocarcinoma↗

Mitogenic effect of double-stranded RNA in human fibroblasts: role of autogenous interferon.

The synthetic double-stranded RNA polyinosinate-polycytidylate [poly(I).poly(C)] was mitogenic in cultures of human foreskin fibroblasts, as demonstrated by a stimulation of 3H-thymidine incorporation and an increase in cell density. Poly(I).poly(C) is a potent inducer of interferon (IFN)-beta in human fibroblasts. Single-stranded poly(l) or poly(C) were not mitogenic in human fibroblasts and did not stimulate IFN production. Antiserum to interferon (IFN)-beta, added to poly(I).poly(C)-stimulated cultures in order to neutralize endogenously generated IFN, markedly amplified the mitogenic action. Under similar experimental conditions, antiserum to IFN-beta did not enhance the mitogenic action of epidermal growth factor (EGF). Dexamethasone enhanced the mitogenic action of poly(I).poly(C) in a manner similar to antiserum against IFN-beta. This effect of dexamethasone correlated with its marked inhibitory action on poly(I).poly(C)-stimulated IFN production. Together with the results of other related studies, these findings support the notion of an evolutionary link between the generation of a mitogenic signal and IFN induction. In addition, these results support the concept that autocrine secretion of IFN-beta can exert negative feedback control of cell proliferation.

Cell Division↗

Dexamethasone inhibits feedback regulation of the mitogenic activity of tumor necrosis factor, interleukin-1, and epidermal growth factor in human fibroblasts.

Tumor necrosis factor (TNF), interleukin-1 (IL-1), and epidermal growth factor (EGF) were mitogenic for human diploid FS-4 fibroblasts. Dexamethasone amplified the growth-stimulating action of all three agents. Amplification of the growth-stimulating action was maximal when dexamethasone was added along with TNF or EGF; no amplification was seen if the addition of dexamethasone was delayed for more than 3 hr. Prolonged simultaneous treatment with TNF and EGF resulted in less growth stimulation than treatment with EGF alone. Dexamethasone abolished this apparent antagonistic interaction between TNF and EGF. Dexamethasone also inhibited the antiviral action of TNF against encephalomyocarditis (EMC) virus in FS-4 cells. TNF and IL-1 increased the steady state level of interferon (IFN)-beta 2 mRNA but failed to induce detectable levels of IFN-beta 1 mRNA in FS-4 cells. Dexamethasone inhibited the increase of IFN-beta 2 mRNA levels by IL-1 or TNF. Inhibition of IFN-beta synthesis is likely to be responsible for the inhibition of the TNF-induced antiviral state by dexamethasone. Since IFNs suppress cell growth, inhibition of endogenous IFN-beta synthesis may also be responsible for the amplification by dexamethasone of the growth-stimulating action of TNF and IL-1. Amplification of the mitogenic action of EGF by dexamethasone appears to be mediated by different mechanism.

Cell Line↗

Tumor necrosis factor: receptor binding and mitogenic action in fibroblasts.

Until about two years ago, the only known function of tumor necrosis factor (TNF) was inhibition of tumor growth. Since then it has become apparent that many types of normal and transformed cells express specific high-affinity TNF receptors (Kd 200 pM) and that the presence of receptors does not correlate with susceptibility to the cytotoxic/cytostatic action of TNF. Recent evidence shows that TNF exerts a variety of other important biological activities on cells in culture and in the intact organism. Among the newly recognized activities is a potent mitogenic effect in fibroblasts. Many of the activities of TNF overlap the actions of interleukin-1 (IL-1).

Animals↗

Comparative studies of the biological activities of human tumor necrosis factor and its derivatives.

Biological activities of human tumor necrosis factor (TNF) and its derivatives were compared. In cytotoxicity assay with L929 cells, one derivative, designated as TNF(Asn), showed significantly lower activity than any other TNF examined. In binding assay, this derivative was also shown to have lower affinity for TNF receptors on L929 cells, suggesting that the cytotoxic activity of TNFs on L929 cells correlates with their affinity for receptors. We also found that the cytotoxic activity of TNF on A673 cells and its inhibitory effect on lipoprotein lipase were parallel with the cytotoxic activity on L929 cells, but the growth-enhancing activity on FS-4 cells and the cytotoxic activity on endothelial cells were not. It was also shown that TNF(Asn) had lower affinity than any other TNF for receptors on these target cells tested. These results suggested that there might be at least two types of cellular responses to TNF; one might correlate with the receptor-binding affinity of TNFs and the other not.

Animals↗

Tumor necrosis factor-induced downregulation of its receptors in HeLa cells.

Tumor necrosis factor (TNF) induced loss of TNF receptors in HeLa cells was studied using acid elution technique, which could distinguish surface occupancy and real loss of receptors. Exposure of HeLa cells to TNF resulted in a rapid reduction in the number of TNF receptors without affecting the apparent binding affinity. The binding of transferrin after treatment with unlabeled TNF was unaffected. The TNF-mediated decrease in receptor number on the cells was reversible. Following removal of TNF from growth medium, binding activity was restored within 3 h. Cycloheximide prevented the restoration of TNF receptors, suggesting that de novo synthesis of receptors was required to restore the binding activity.

Cycloheximide↗

A cytokine network in human diploid fibroblasts: interactions of beta-interferons, tumor necrosis factor, platelet-derived growth factor, and interleukin-1.

Earlier studies demonstrated the induction of beta 2-interferon (IFN-beta 2) in human diploid fibroblasts (FS-4 strain) exposed to tumor necrosis factor (TNF). These studies suggested that IFN-beta 2 mediates an antiviral effect in TNF-treated cells and exerts a feedback inhibition of the mitogenic effect of TNF. Here we demonstrate that the expression of the antiviral action of TNF can be enhanced by prior exposure of FS-4 cells to trace amounts of IFN-beta 1. IFN-beta 1, at a higher concentration, can directly increase the expression of IFN-beta 2. Exposure of cells to TNF enhanced IFN-beta 2 (but not IFN-beta 1) mRNA expression in response to poly(I).poly(C), an IFN inducer which is also known to stimulate FS-4 cell growth. Platelet-derived growth factor and interleukin-1 also led to the increased expression of IFN-beta 2. However, platelet-derived growth factor and interleukin-1 could override the antiviral effect of TNF and also that of exogenously added IFN-beta 1. Our data suggest that a complex network of interactions that involves the endogenous production of IFN-beta 2 is triggered by several growth-modulatory cytokines. Cellular homeostasis is likely to represent a balance between the induction of IFN-beta 2 by these cytokines and their ability to override the inhibitory actions of IFN-beta 2.

Fibroblasts↗

Differential effects of type I IFN and IFN-gamma on the binding of tumor necrosis factor to receptors in two human cell lines.

The effect of IFN-alpha and IFN-beta on the expression of cell surface receptors for tumor necrosis factor (TNF) was examined in two human cell lines. In HeLa cells, IFN-alpha and IFN-beta increased 125I-TNF binding, whereas in HT-29 cells these two IFN either slightly decreased or had no effect on 125I-TNF binding. In contrast, IFN-gamma increased 125I-TNF binding in both cell lines. Both IFN-alpha and IFN-beta exerted an antagonistic effect on IFN-gamma-induced stimulation of TNF receptor expression in HT-29 cells, but did not inhibit TNF receptor induction by IFN-gamma in HeLa cells. IFN-gamma and, to a lesser extent, IFN-beta were synergistic with TNF in producing cytotoxic/cytostatic activity in HT-29 cells. Despite the inhibitory effect of IFN-beta on the IFN-gamma-induced stimulation of TNF receptor expression, IFN-beta did not inhibit the synergistic enhancement of TNF cytotoxicity by IFN-gamma in HT-29 cells. The dissociation between the effects of IFN-beta on TNF receptor expression and on the cytotoxic activity of TNF in HT-29 cells suggests that TNF receptor modulation is not a major mechanism of synergism between IFN and TNF.

Cell Cycle↗

Determination of human T cell activity in response to allogeneic cells and mitogens. An immunochemical assay for gamma-interferon is more sensitive and specific than a proliferation assay.

T lymphocytes proliferate and secrete lymphokines in response to allogeneic cells, mitogens and other stimuli. Cell proliferation as measured by [3H]thymidine ([3H]Tdr) incorporation into DNA has been routinely used to determine T cell responses in research and clinical laboratories. We have compared the sensitivity of an immunoradiometric assay (IRMA) for human gamma-interferon (IFN-gamma) (Chang et al., 1984), with that of the conventional [3H]Tdr incorporation assay in the measurement of T cell responses to antigens and mitogens in culture. Peripheral blood mononuclear cells (PBMs) were incubated in the presence and absence of phytohemagglutinin (PHA) or mononuclear cells from another individual for various periods of time. The culture fluids were collected for determining IFN-gamma and the cells were assayed for [3H]Tdr incorporation. Results of measurements were expressed in terms of stimulation indices. Both IFN-gamma secretion and thymidine incorporation were measurable in mixed lymphocyte cultures after incubation for 3 days, and in PHA stimulated culture after 24 h of incubation. The stimulation indices reflecting increased gamma-interferon were found to be more pronounced and more consistent than those of [3H]Tdr incorporation.

Biological Assay↗

Tumor necrosis factor provokes superoxide anion generation from neutrophils.

We report that tumor necrosis factor (TNF) provokes superoxide anion generation from human neutrophils. Superoxide anion generation was provoked at TNF concentration of 1 X 10(-11) M and maximal generation was attained at TNF concentration of 1 X 10(-9) M. We also show that movements of intracellular calcium may mediate the TNF-stimulated superoxide anion generation because 8-(diethylamino) octyl 3,4,5-trimethoxybenzoate hydrochloride--but not extracellular EGTA--inhibited the generation of superoxide anion. These results suggest that TNF may mediate some mechanisms of host defense by provoking superoxide anion generation from neutrophils.

Calcium↗

Bacterial lipopolysaccharide-induced interferon-gamma production: roles of interleukin 1 and interleukin 2.

Bacterial lipopolysaccharide (LPS) induced human peripheral blood mononuclear cells (PBMC) to produce interferon-gamma (IFN-gamma). Monocytes play a mandatory accessory role in this process, because purified T lymphocytes failed to produce IFN-gamma in response to LPS and the addition of 2% monocytes to T cell cultures resulted in an optimal LPS-induced IFN-gamma production. IFN-gamma production was abolished in the presence of monoclonal antibodies specific for HLA-DR antigen. Addition of exogenous interleukin 2 (IL 2) markedly enhanced IFN-gamma secretion by PBMC induced with LPS. The addition of anti-Tac antibody specific for IL 2 receptors abrogated IFN-gamma production, suggesting that an interaction of IL 2 with IL 2 receptors was involved. By using a specific antibody binding assay, LPS was shown to amplify IL 2 receptor expression on PBMC, whereas exogenous IL 2 showed only a negligible enhancing effect on the expression of its own receptors. Interleukin 1 (IL 1), a product of LPS-stimulated monocytes, potentiated IL 2-induced IFN-gamma production in the absence of LPS. Neither IL 1 nor IL 2 alone induced IFN-gamma production in purified T lymphocyte cultures. When added together, however, substantial levels of IFN-gamma were induced. An enhanced IL 2 receptor expression on T cells was also demonstrated as a result of the combined action of IL 1 and IL 2. These results suggest that induction of IFN-gamma by LPS is due mainly to the generation of IL 1 and an enhanced expression of IL 2 receptors.

Animals↗

Induction of beta 2-interferon by tumor necrosis factor: a homeostatic mechanism in the control of cell proliferation.

Earlier studies showed that tumor necrosis factor (TNF) exerts a mitogenic effect in human diploid fibroblasts. Here we demonstrate that purified E. coli-derived recombinant human TNF inhibits encephalomyocarditis virus replication in "aged" human fibroblasts. Addition of neutralizing antibodies to human beta interferon (IFN-beta) blocked the antiviral action of TNF, indicating that this action is mediated by the generation of IFN-beta. We also show that antiserum to IFN-beta enhanced the mitogenic effect of TNF in confluent, serum-starved human fibroblasts, suggesting that induction of IFN-beta by TNF represents a physiological negative feedback mechanism regulating cell proliferation. Blot hybridization analysis of cytoplasmic polyadenylated RNA showed that TNF induced IFN-beta 2 mRNA, whereas no induction of IFN-beta 1 mRNA could be demonstrated. The results suggest that IFN-beta 2 has biological functions distinct from the other interferons.

Antibodies↗

Tumor necrosis factor receptors in HeLa cells and their regulation by interferon-gamma.

Incubation of HeLa cell cultures with human interferon-gamma (IFN-gamma) increased the binding of radioiodinated human tumor necrosis factor (TNF) to specific cell surface receptors (TNF-R). IFN-gamma also produced a proportionate increase in receptor-mediated endocytosis of TNF. TNF-R expression was significantly increased after 6 h of exposure to IFN-gamma (100 units/ml), and it remained elevated in the continuous presence of IFN-gamma for at least 20 h. Incubation of cells with IFN-gamma in the presence of cycloheximide, followed by treatment with actinomycin D and reversal of the inhibition of protein synthesis, also resulted in increased TNF-R expression as compared to cultures subjected to the same treatments in the absence of IFN-gamma. These results suggest that IFN-gamma can directly stimulate accumulation of the mRNA for TNF-R and that TNF-R is among the cellular proteins whose synthesis is increased by IFN-gamma.

Cycloheximide↗