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L M Pfeffer

Publications and source records attributed to L M Pfeffer.

At least 55 records · Page 3Linked to original sources

Transmembrane signaling by interferon alpha involves diacylglycerol production and activation of the epsilon isoform of protein kinase C in Daudi cells.

The early events that occur after treatment of the highly interferon alpha (IFN-alpha)-sensitive human lymphoblastoid Daudi cell line with human leukocyte IFN-alpha have been examined. IFN-alpha treatment of Daudi cells results in a rapid and transient increase in the cellular content of diacylglycerol, which occurs in the absence of inositol phospholipid turnover, or an increase in intracellular calcium concentration. Furthermore, IFN-alpha treatment results in a selective, time-dependent activation of the Ca(2+)-independent epsilon isoform of protein kinase C (PKC), while the alpha isoform is unaffected by IFN-alpha treatment. In contrast, IFN-alpha treatment of an IFN-resistant subclone of Daudi cells had no effect on the diacylglycerol content of cells and on the activation of PKC-epsilon. The selective PKC inhibitor staurosporine blocked the transcriptional activation of IFN-alpha-stimulated genes, the cytoplasmic accumulation of mRNAs for these genes, and the induction of antiviral activity by IFN-alpha against vesicular stomatitis virus in IFN-sensitive cells. These observations suggest that transmembrane signaling of IFN-alpha involves diacylglycerol production and activation of PKC-epsilon in Daudi cells.

Alkaloids↗

Phosphorylation of the proto-oncogene product eukaryotic initiation factor 4E is a common cellular response to tumor necrosis factor.

The initiation of mRNA translation is regulated by the reversible phosphorylation of several initiation factors. We report here that tumor necrosis factor-alpha (TNF) rapidly stimulates phosphorylation of one such factor, an mRNA cap binding protein, in several cell types which are important in vitro models of TNF action. This protein has been purified, sequenced, and identified as the proto-oncogene product eukaryotic initiation factor 4E. These data show that phosphorylation of a key component of the cellular translational machinery is a common early event in the various actions of TNF in diverse cell types.

Amino Acid Sequence↗

Transmembrane signalling by interferon-alpha.

Human leukocyte interferon (IFN-alpha) binds to discrete cell surface receptors on target cells, and thereby alters gene expression. Transmembrane signaling by IFN-alpha involves the production of DAG without an increased intracellular free calcium concentration, and the subsequent activation of calcium-independent isoforms of PKC (beta and epsilon). Selective PKC inhibitors (H-7 and staurosporine) can block the ability of IFN-alpha to activate the transcription of a distinct set of genes, called the IFN-stimulated genes (ISG), and to protect cells against viral infection. IFN-alpha also induces the rapid changes in protein phosphorylation, which may include latent transcription factors for ISGs.

Animals↗

Structure of the human interferon alpha receptor.

The structure of the IFN alpha receptor has been studied by methods such as affinity crosslinking and gel chromatography over the last 8 years. The recent development of monoclonal antibodies against the receptor, and the cloning of an IFN alpha receptor cDNA has provided new important tools to understand the IFN alpha receptor structure. Thus, it has become obvious that the IFN alpha receptor has a more complex structure than first anticipated, probably involving more than one subunit. This review analyzes the present knowledge about the structure of the IFN alpha receptor, as well as many unresolved issues concerning this topic.

Animals↗

Do second messengers play a role in interferon signal transduction?

The signalling pathway by which the binding of interferons (IFNs, alpha and beta) to their receptor elicits its biological activity, the activation of the transcription of a distinct set of genes called the IFN-stimulated genes (ISG), is far from clear. Debate continues about whether interferon-receptor interaction results directly in gene activation or if second messengers are involved. In this article, we will discuss the evidence that rapid and transient changes in lipid metabolism and the activation of specific isoforms of protein kinase C (PKC) are involved in the initial signalling of interferon activation.

Animals↗

v-Src increases diacylglycerol levels via a type D phospholipase-mediated hydrolysis of phosphatidylcholine.

Activating the protein-tyrosine kinase of v-Src in BALB/c 3T3 cells results in rapid increases in the intracellular second messenger, diacylglycerol (DAG). v-Src-induced increases in radiolabeled DAG were most readily detected when phospholipids were prelabeled with myristic acid, which is incorporated predominantly into phosphatidylcholine. Consistent with this observation, v-Src increased the level of intracellular choline. No increase in DAG was observed when cells were prelabeled with arachidonic acid, which is incorporated predominantly into phosphatidylinositol. Inhibiting phosphatidic acid (PA) phosphatase, which hydrolyzes PA to DAG, blocked v-Src-induced DAG production and enhanced PA production, implicating a type D phospholipase. Consistent with the involvement of a type D phospholipase, v-Src increased transphosphatidylation activity, which is characteristic of type D phospholipases. Thus, v-Src-induced increases in DAG most likely result from the activation of a type D phospholipase/PA phosphatase-mediated signaling pathway.

Animals↗

Antiproliferative and antitumor effects of alpha-interferon in renal cell carcinomas: correlation with the expression of a kidney-associated differentiation glycoprotein.

Human leukocyte alpha-interferon (IFN-alpha) has significant antitumor activity in advanced renal cell carcinoma (RC), with approximately 15% (range, 5 to 29%) of patients subjected to IFN-alpha therapy exhibiting a major objective response. We assayed 16 RC cell lines for intrinsic sensitivity to the growth-inhibitory effects of recombinant IFN-alpha. Similar to results observed in patients, cultured RCs could be divided into those that are inhibited by IFN-alpha and those that are not. In addition, the IFN-alpha-sensitive or -resistant phenotype of cultured RCs was correlated with surface expression of six unrelated kidney-associated differentiation antigens. The expression of one antigen, a Mr 160,000 glycoprotein (gp160), was found to correlate with resistance to IFN-alpha. Proliferation of seven RC cell lines expressing gp160 (gp160+) was not significantly inhibited by IFN-alpha at concentrations as high as 3000 units/ml. In contrast, proliferation of eight of nine RC cell lines lacking expression of gp160 (gp160-) was markedly inhibited by IFN-alpha. The effect of IFN-alpha on gp160+ and gp160- RC xenografts in nu/nu mice was examined. In separate experiments, two gp160+ RC cell lines and five gp160- RC cell lines were injected s.c. into nu/nu mice; one half of the mice were subsequently treated with 10(6) units of IFN-alpha i.p. 3 times a wk, and one half received no IFN-alpha. Tumors appeared at the sites of inoculation in all mice given injections of gp160+ RC cell lines within 10 to 25 days regardless of INF-alpha therapy. Mice given injections of gp160- RC cell lines, but not receiving IFN-alpha, also formed tumors. In contrast, gp160- RC cell lines injected into mice that were treated with IFN-alpha exhibited a marked sensitivity, as demonstrated by either no tumor formation or delayed tumor formation. We conclude that the absence of gp160 expression by RCs may be predictive of sensitivity to the antitumor effects of IFN-alpha and, thus, provide a basis for identifying IFN-responsive patients.

Animals↗

The down-regulation of alpha-interferon receptors in human lymphoblastoid cells: relation to cellular responsiveness to the antiproliferative action of alpha-interferon.

Human lymphoblastoid cell lines (Daudi, Daudi subclones, Raji and MOLT-4) were compared for sensitivity to the antiproliferative action of alpha-interferon (IFN-alpha) and down-regulation of IFN-alpha receptors. IFN-sensitive and IFN-resistant cell lines have similar numbers (2-4000/cell) of high affinity (20-75 pM) IFN-alpha receptors. Treatment of IFN-sensitive cells with low concentrations (3-10 pM) of IFN-alpha results in low receptor occupancy and nearly complete (greater than 95%) down-regulation of cell surface IFN-alpha receptors within 5 h. Treatment of resistant cells with higher IFN concentrations (30 pM) only results in partial (approximately 60%) receptor down-regulation that is directly related to receptor occupancy. Receptor-receptor interactions, induced by IFN-alpha binding, may account for the enhanced down-regulation of IFN-alpha receptors in IFN-sensitive cells. Such interactions apparently do not occur in IFN-resistant lymphoblastoid cell lines.

Cell Division↗

Interferon-alpha selectively activates the beta isoform of protein kinase C through phosphatidylcholine hydrolysis.

The early events that occur after interferon binds to discrete cell surface receptors remain largely unknown. Human leukocyte interferon (interferon-alpha) rapidly increases the binding of [3H]phorbol dibutyrate to intact HeLa cells (ED50 = 100 units/ml), a measure of protein kinase C activation, and induces the selective translocation of the beta isoform of protein kinase C from the cytosol to the particulate fraction of HeLa cells. The subcellular distribution of the alpha and epsilon isoforms is unaffected by interferon-alpha treatment. Activation of protein kinase C by phorbol esters mimics the inhibitory action of interferon-alpha on HeLa cell proliferation and down-regulation of protein kinase C blocks the induction of antiviral activity by interferon-alpha in HeLa cells. Increased phosphatidylcholine hydrolysis and phosphorylcholine production is accompanied by diacylglycerol production in response to interferon. However, inositol phospholipid turnover and free intracellular calcium concentration are unaffected. These results suggest that the transient increase in diacylglycerol, resulting from phosphatidylcholine hydrolysis, may selectively activate the beta isoform of protein kinase C. Moreover, the activation of protein kinase C is a necessary element in interferon action on cells.

Caenorhabditis elegans Proteins↗

Evidence for involvement of protein kinase C in the cellular response to interferon alpha.

Phospholipid/Ca2(+)-dependent protein kinase (protein kinase C; PKC) appears to be involved in the signal-transduction pathway mediated by human leukocyte interferon (IFN) in HeLa cells. IFN treatment results in a rapid increase in [3H]phorbol 12,13-dibutyrate binding to intact cells, indicating an activation of PKC. In addition, inhibitors of PKC (H7 and staurosporine) block the induction of antiviral activity by IFN against vesicular stomatitis virus. PKC inhibitors also block the accumulation of IFN-stimulated mRNAs in the cytoplasm of HeLa cells and suppress the transcriptional induction of IFN-stimulated genes. Activation of IFN-stimulated genes is mediated through a DNA response element that is necessary and sufficient for the transcriptional response to IFN. IFN treatment induces the appearance of several DNA-binding factors that specifically recognize the response element, and the appearance of these factors is suppressed by PKC inhibitors. This observation provides evidence that PKC activity is involved during IFN-stimulated signal transduction. Although activation of PKC appears to be required for the response to IFN, agonists of PKC activity alone do not turn on expression of IFN-stimulated genes.

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine↗

Interferon-alpha modulates the plasma membrane-cytoskeletal complex of human lymphoblastoid cells sensitive to the antiproliferative action of interferon-alpha.

Interferon (IFN)-induced structural changes in the plasma membrane-cytoskeletal complex were investigated in human lymphoblastoid cell lines that differed in sensitivity to the antiproliferative action of IFN-alpha. These cell lines have structurally indistinguishable high-affinity IFN-alpha receptors. By using electron spin resonance techniques, we determined the effect of IFN-alpha on fluidity of the plasma membrane lipid bilayer. By using the ability of cells to redistribute fluorescent anti-immunoglobulin (Ig) into caps at the cell surface, we investigated the effect of IFN-alpha on the mobility of the cell surface. IFN-alpha decreases the fluidity of the plasma membrane lipid bilayer of lymphoblastoid cells sensitive to the antiproliferative action of IFN-alpha. Similarly, IFN-alpha inhibits the anti-Ig-induced redistribution of surface immunoglobulins (capping) of IFN-sensitive cells. These effects of IFN-alpha occur within the first few hours after IFN-alpha addition to cells. However, IFN-alpha had no effect on membrane fluidity or anti-Ig-induced capping of lymphoblastoid cells resistant to the antiproliferative action of IFN-alpha.

Cell Division↗

Defective expression of high affinity IL-2 receptors on activated T cells from aged humans.

The proliferative response of T cells from aged humans to a number of mitogens is significantly reduced. We report here that there is a decrease in high affinity IL-2 receptor (IL-2R) expression on activated T cells from aged humans. Scatchard analysis of the binding of [125I]IL-2 demonstrates fewer high affinity IL-2 binding sites. Autoradiographic techniques demonstrate that this results from there being fewer activated T cells from old as compared to young donors that express high affinity IL-2R. However, T cells from old donors that do not express high affinity IL-2 binding sites express both the IL-2 binding 55 and 75 kd chains. Thus, although the two IL-2 binding peptides are expressed on activated T cells from old donors, expression of the high affinity IL-2R is reduced. This may explain the decreased ability of T cells from old donors to respond to IL-2. The impaired ability of activated T cells from old donors to express high affinity IL-2R while expressing the 55 and 75 kd chains may provide insights into the mechanisms of IL-2 interactions with its receptor.

Adult↗

Transformation of human kidney proximal tubule cells by ras-containing retroviruses. Implications for tumor progression.

Normal human kidney proximal tubule cells into which a ras oncogene was inserted undergo a series of transformation-related alterations that are characteristic of renal carcinomas. These include changes in morphology, growth potential, anchorage dependence, antigen expression, growth factor production, and chromosomal stability. Further, there are spontaneous progressive alterations in vitro in the karyotype and antigenic profile of the transformed cells. Cytogenetic analyses suggest that alterations of chromosome 21 may play an early and pivotal role in the development of transformed proximal tubule cells.

Antigens, Neoplasm↗

Tumor necrosis factor induces phosphorylation of a 28-kDa mRNA cap-binding protein in human cervical carcinoma cells.

Tumor necrosis factor alpha (TNF-alpha) stimulated the phosphorylation of a 28-kDa protein (p28) in the ME-180 line of human cervical carcinoma cells. The effect of TNF-alpha on the phosphorylation state of p28 was rapid (4-fold increase within 15 min) and persistent, remaining above the basal level for at least 2 hr. The specific binding of 125I-labeled TNF-alpha to cell-surface binding sites, the stimulation of p28 phosphorylation by TNF-alpha, and the inhibition of cell proliferation by TNF-alpha occurred with nearly identical dose-response relationships. Two-dimensional SDS/PAGE resolved p28 into two isoforms having pI values of 6.2 and 6.1. A phosphorylated cap-binding protein was substantially enriched from lysates of control or TNF-alpha-treated ME-180 cells by affinity chromatography with 7-methylguanosine 5'-triphosphate-Sepharose. The phosphoprotein recovered from this procedure was the substrate for TNF-alpha-promoted phosphorylation, p28. Thus, TNF-alpha stimulates the phosphorylation of this mRNA cap-binding protein, which may be involved in the transduction of TNF-alpha-receptor binding into cellular responses.

Carrier Proteins↗

Cells resistant to interferon are defective in activation of a promoter-binding factor.

Human cultured cell lines deficient in their ability to respond to type I interferon (IFN) fail to interrupt cellular proliferation or to induce an antiviral state following exposure to IFN alpha. Comparison of non-responsive Daudi and HeLa cell lines with IFN-responsive partner cell lines and examination of non-responsive Raji cells showed that the defective cell lines expressed type I IFN receptors of typical number and affinity and bound IFN equivalently compared to the normal cells. However, transcriptional induction of interferon-stimulated genes (ISGs) was greatly reduced and delayed in these cell lines, leading to reduced accumulation of ISG mRNA. Furthermore, the rapid activation of IFN-stimulated promoter binding factors whose appearance correlates with ISG transcriptional induction, did not occur in non-responsive cells. Thus, the primary defect of these cells leading to an impaired physiological response to IFN appears to be an inability to activate promoter-binding factors necessary to trigger ISG transcription, an obligate early step in antiviral and antiproliferative physiology.

Cell Line↗

Characterization of interferon-alpha binding sites on human cell lines.

The binding sites for human interferon-alpha (IFN-alpha) have been characterized on human lymphoblastoid, melanoma, rhabdomyosarcoma, and cervical carcinoma cells. Crosslinking of iodinated-recombinant DNA-derived IFN-alpha-Con1, an analog of the known IFN-alpha subtypes, to the cell surface with disuccinimidyl suberate yielded four IFN-receptor complexes of 118, 138, 159, and 260 kD on all cell lines that specifically bind IFN-alpha. Since IFN-alpha exists in solution as monomers, dimers, and trimers, and the three lower molecular weight IFN-alpha-receptor complexes differ by the molecular weight of IFN-alpha (20 kD), this suggests that the human IFN-alpha receptor of 100 kD binds more than one molecule of IFN-alpha. The higher molecular weight complex of 260 kD may result from dimerization of the receptor. None of these complexes was observed in a rhabdomyosarcoma subclone that does not specifically bind IFN-alpha. Pretreatment of cells with trypsin abolished the formation of these complexes. Pretreatment of cells with neuraminidase did not reduce IFN-alpha binding, but increased the electrophoretic mobility of all four IFN-alpha-receptor complexes. Other glycosidases (i.e., mannosidase, beta-galactosidase, and endoglycosidase F) had no effects on IFN-alpha binding or mobility of complexes. Thus, although the IFN-alpha receptor is a glycoprotein, the glycosylated portion is apparently not part of the IFN-alpha-binding domain. The formation of IFN-alpha-receptor complexes is independent of the duration of incubation with IFN (from 5 min to 1 h at 15 degrees C).(ABSTRACT TRUNCATED AT 250 WORDS)

Affinity Labels↗

Interferon-alpha down-regulates insulin receptors in lymphoblastoid (Daudi) cells. Relationship to inhibition of cell proliferation.

The Daudi line of human lymphoblastoid cells requires insulin and transferrin for growth in serum-free medium and is highly sensitive to the inhibitory effect of human leukocyte interferon (IFN-alpha) on cell proliferation. A variant subline of Daudi cells, which is resistant to the antiproliferative action of IFN-alpha, also has been grown in serum-free medium containing insulin and transferrin. The proliferation of IFN-sensitive and -resistant Daudi cells is dependent on the occupancy of insulin receptors, with optimal cell proliferation observed at high receptor occupancy (nearly 100%). No evidence was found for receptors for insulin-like growth factor I on Daudi cells. IFN treatment of IFN-sensitive cells decreased the capacity of the cells to bind 125I-insulin. The altered binding capacity was due to diminished specific, lower affinity insulin binding, as detected at high 125I-insulin concentrations. Higher affinity insulin binding was not altered by IFN. Insulin binding was also reduced in detergent-solubilized extracts from IFN-treated sensitive Daudi cells and the magnitude of the effect was comparable to that observed in intact cells. This indicates that the total number of insulin binding sites (surface + internal) is decreased in IFN-treated sensitive cells. Insulin binding to IFN-sensitive cells decreased linearly with time between 6 and 48 h from the addition of IFN. The effect on lower affinity insulin binding developed more rapidly than the inhibitory effect of IFN on cell proliferation. The insulin-binding capacity of Daudi cells resistant to the antiproliferative effect of IFN was unaffected by IFN, despite the fact that these cells contain as many cell surface IFN receptors as sensitive cells. These observations raise the possibility that lower affinity insulin binding is important in the growth-promoting actions of insulin.

Burkitt Lymphoma↗

Cytoskeletal association of human alpha-interferon-receptor complexes in interferon-sensitive and -resistant lymphoblastoid cells.

Human Daudi lymphoblastoid cells, which are highly sensitive to the antiproliferative action of human leukocyte alpha-interferon (IFN-alpha), and IFN-resistant and IFN-sensitive Daudi subclones (Cl2 and Cl1, respectively), contain 2300 (Kd = 20 X 10(-12) M), 3000 (Kd = 45 X 10(-12) M), and 3700 (Kd = 52 X 10(-12) M) IFN-alpha binding sites per cell, respectively. Thus, these IFN-sensitive and IFN-resistant cells have similar numbers of high-affinity IFN-alpha receptors. IFN-receptor complexes that are insoluble in Triton X-100 accumulate in IFN-sensitive but not in IFN-resistant cells. The ligand-induced accumulation of Triton-insoluble complexes in IFN-sensitive cells was inhibited by cytochalasin B. This suggests that the solubility change of IFN-receptor complexes results from their interaction with the cytoskeletal matrix. The dissociation of IFN-alpha from IFN-sensitive and IFN-resistant cells can be resolved into fast and slow components. IFN-alpha dissociates more slowly from IFN-sensitive cells than from IFN-resistant cells. Very slow dissociation of IFN-alpha from Triton-insoluble complexes correlates with this difference. These observations suggest that IFN-receptor complexes become coupled to the cytoskeletal matrix in IFN-sensitive but not in IFN-resistant cells, and that such interaction is an important element in the mechanism of the antiproliferative action of IFN-alpha on Daudi cells.

Burkitt Lymphoma↗