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D A Foster

Publications and source records attributed to D A Foster.

At least 19 recordsLinked to original sources

Evidence that Ha-Ras mediates two distinguishable intracellular signals activated by v-Src.

v-Src activates promoters under the control of 12-O-tetradecanoylphorbol-13-acetate (TPA) response elements (TREs) and serum response elements (SREs) via two distinguishable intracellular signaling mechanisms. The induction of TRE- and SRE-mediated gene expression by v-Src could be distinguished by a differential sensitivity to depleting cells of protein kinase C (PKC) and to a dominant negative Raf-1 mutant. Thus, PKC depletion and the dominant negative Raf-1 mutant were able to distinguish two intracellular signaling mechanisms activated by v-Src. Both of these v-Src-induced intracellular signals were sensitive to a dominant negative mutant of Ha-Ras. These data suggest that Ha-Ras functions to coordinately regulate multiple intracellular signaling mechanisms activated by v-Src.

3T3 Cells

Influenza vaccine effectiveness in preventing hospitalization for pneumonia in the elderly.

During the winter of 1989-1990, influenza type A(H3N2) circulated widely, causing excess morbidity and mortality nationwide. From November through April, 1989-1990, hospitalized cases of pneumonia and influenza occurring among noninstitutionalized individuals 65 or more years of age were identified by 20 acute care hospitals in southern lower Michigan. These cases were group matched on age, sex, race, and zip code to randomly sampled, community-based controls from a comprehensive listing of Medicare beneficiaries residing in the study area. Self-reported data were collected from cases and controls on influenza vaccine status for the 1989-1990 season and on a number of other factors which could have influenced vaccination status or outcome. Questionnaires were completed by 1,907 individuals, 449 of whom were cases, resulting in an overall response rate of 76%. A community-based influenza surveillance system was implemented to determine the timing and intensity of viral activity and influenza-like illness. Vaccine effectiveness in preventing overall pneumonia and influenza hospitalizations was estimated by logistic regression. During the 3-month period of surveillance-confirmed peak influenza type A(H3N2) circulation, vaccine effectiveness was 45% (95% confidence interval 14-64, p = 0.009). However, during the 3-month period of low or absent virus activity, identical methodology and model specification resulted in an effectiveness estimate of 21% that was not statistically different from zero (p = 0.36). The effectiveness determined during the peak period of virus circulation is felt to be a conservative estimate, since agents other than influenza are responsible for pneumonia and influenza hospitalizations, even during times of peak influenza activity.

Aged

v-Fps-responsiveness in the Egr-1 promoter is mediated by serum response elements.

Egr-1, a mitogen-responsive transcription factor, is rapidly induced by v-Fps in the absence of protein synthesis. Thus, Egr-1 is a primary response to the protein-tyrosine kinase activity of v-Fps. To determine the v-Fps-responsive elements in the Egr-1 promoter, deletion mutants of the Egr-1 promoter were used in transient expression assays. A v-Fps expression vector was contransfected into NIH 3T3 cells with chloramphenicol acetyl transferase (CAT) gene expression vectors under the control of the Egr-1 promoter or the Egr-1 promoter containing various deletions. Responsiveness to v-Fps was restricted to a region that contained repeated CC(A/T)6GG sequences, known as CArG boxes. CArG boxes form the core of serum response element (SREs). v-Fps-induced Egr-1 promoter activation was lost by sequential removal of four tandemly repeated SREs. This region, containing four SREs, was found to be sufficient for maximal Egr-1 induction by v-Fps when placed upstream from a heterologous promoter. Individual SREs from this region were able to respond to v-Fps, however, the activation of the individual SREs was lower than that observed for the clustered SREs. These data suggest that v-Fps-responsiveness in the Egr-1 promoter is mediated by SREs.

3T3 Cells

MARCKS protein is transcriptionally down-regulated in v-Src-transformed BALB/c 3T3 cells.

Activation of protein kinase C (PKC) by tumor-promoting phorbol esters leads to the phosphorylation of an 80-kilodalton PKC substrate (known as MARCKS) in murine fibroblasts. In BALB/c 3T3 cells stably transformed by v-Src, phorbol esters were unable to induce phosphorylation of MARCKS. Western blot analysis and in vitro kinase assays showed that both PKC protein levels and kinase activity were unchanged in v-Src-transformed relative to the parental nontransformed BALB/c 3T3 cells. However, MARCKS protein levels were reduced in v-Src-transformed cells relative to nontransformed cells. MARCKS RNA levels were also correspondingly reduced in v-Src-transformed cells. Nuclear "run-on" assays showed decreased transcription of MARCKS in v-Src-transformed cells. Thus, the absence of MARCKS in v-Src-transformed cells could be explained by a down-regulation of MARCKS transcription. Inhibiting the protein tyrosine kinase activity of v-Src with herbimycin A restored MARCKS RNA levels, MARCKS transcription, and MARCKS protein, suggesting that down-regulation of MARCKS in v-Src-transformed BALB/c 3T3 cells is a direct effect of v-Src.

3T3 Cells

The induction of Egr-1 expression by v-Fps is via a protein kinase C-independent intracellular signal that is sequentially dependent upon HaRas and Raf-1.

Activating the protein-tyrosine kinase activity of v-Fps leads to the rapid transcriptional activation of the Egr-1 gene, which encodes a mitogen-responsive transcription factor. Activation of Egr-1 by v-Fps was insensitive to protein kinase C depletion, suggesting that a protein kinase C-independent signal activated by v-Fps leads to the induction of Egr-1. Expression of v-Fps in transient expression assays induced Egr-1 promoter activation. v-HaRas and v-Raf also activated the Egr-1 promoter. To characterize HaRas and Raf-1 involvement in v-Fps-induced Egr-1 expression, we used recently characterized dominant negative mutants of HaRas and Raf-1. v-Fps-induced Egr-1 promoter activation was inhibited by the dominant negative mutants of both HaRas and Raf-1. v-HaRas-induced Egr-1 promoter activation was blocked by the negative Raf-1 mutant; however, v-Raf-1-induced Egr-1 promoter activation was unaffected by the inhibitory HaRas mutant. These data suggest that v-Fps activates a protein kinase C-independent intracellular signaling pathway that is dependent on both HaRas and Raf-1, where Raf-1 functions downstream of HaRas.

Animals

Cloning and characterization of a thermolabile v-src gene for use in reversible transformation of mammalian cells.

The use of temperature-sensitive (ts) src mutants for studies of cell transformation and differentiation has been limited by the availability of cloned ts-src genes that are inactivated at temperatures compatible with growth of mammalian cells. In this report, we describe the cloning and characterization of the tsLA90src gene, which displays tight thermal sensitivity at 39.5 degrees C. Nucleotide sequence comparison of tsLA90 and wild-type src genes from the Schmidt-Ruppin subgroup A and D strains of Rous sarcoma virus (RSV) revealed four amino acid differences in tsLA90src. Substitution of one of these residues (Lys-280) from tsLA90src with its wild-type homolog (Glu-280) caused a reversion to a wild-type src phenotype. The cloned tsLA90 gene, designated tsUP1, was introduced into avian and mammalian retroviral vectors. Chicken embryo fibroblasts and immortalized mouse 3T3 cells infected with these viral vectors displayed a temperature-dependent transformed phenotype as assessed by cell morphology, secretion of plasminogen activator, transcriptional activation of the primary response genes, Egr-1 and TIS 10, and stimulation of tyrosine phosphorylation. In addition, chicken myoblasts (infected with RSVtsUP1) showed a temperature-dependent differentiation into myotubes. Thus, this cloned src gene should be ideally suited for inducing reversible transformation and differentiation of mammalian cells in culture.

3T3 Cells

Evidence that activation of the Egr-1 promoter by v-Raf involves serum response elements.

The constitutively active serine/threonine kinase encoded by the v-raf oncogene, v-Raf, activates the Egr-1 promoter in transient expression assays. To characterize the v-Raf-responsive transcriptional control elements, deletion mutants of the Egr-1 promoter were used in transient expression assays. A v-Raf expression vector was co-transfected into NIH3T3 cells with reporter chloramphenicol acetyl transferase (CAT) expression vectors under the control of the Egr-1 promoter or the Egr-1 promoter containing various deletions. Responsiveness to v-Raf was restricted to a region that contained repeated CC(A/T)6GG sequences, known as CArG boxes. CArG boxes form the core of serum response elements (SREs). v-Raf-induced Egr-1 promoter activation was lost by removal of the four tandemly repeated SREs. This region, between -425 and -250, which was necessary for v-Raf responsiveness, was also found to be sufficient for maximal Egr-1 induction by v-Raf when placed upstream from a minimal heterologous promoter. Three out of four SREs from this region were able to respond to v-Raf, however the activation of the individual SREs was lower than the clustered SREs. This cluster of SREs has previously been shown to be responsive to several mitogenic stimuli and the oncogene v-src. Thus, the SREs contained in this cluster may be an important target for cell division signals.

3T3 Cells

Sustained induction of egr-1 by v-src correlates with a lack of fos-mediated repression of the egr-1 promoter.

Serum stimulation of quiescent fibroblasts leads to a transient induction of the transcription factor egr-1. However, the induction of egr-1 by v-src was found to be sustained rather than transient. The proto-oncogene fos has been reported to be co-regulated with egr-1 and to repress serum-induced egr-1 expression. We found that c-fos prevents v-src-induced gene expression regulated by the egr-1 promoter. Thus, the sustained induction of egr-1 by v-src could be explained by a lack of c-fos induction by v-src. Consistent with this hypothesis, egr-1 and c-fos were co-induced by serum, but not by v-src, in Balb/c 3T3 cells; v-src did not induce c-fos expression in these cells. We propose that sustained expression of egr-1 induced by v-src in Balb/c 3T3 cells is due to a lack of c-fos down-regulation of egr-1.

3T3 Cells

An inhibitory mutant of c-Raf-1 blocks v-Src-induced activation of the Egr-1 promoter.

The protein-tyrosine kinase activity of v-Src leads to the transcriptional activation of the mitogen-responsive transcription factor Egr-1. c-Raf-1 is a serine/threonine protein kinase that has been implicated in the transduction of signals induced by mitogens. The involvement of c-Raf-1 in v-Src-induced Egr-1 expression was investigated using an inhibitory mutant of c-Raf-1. We report here that expression of a kinase-defective mutant of c-Raf-1 inhibits v-Src-induced activation of the Egr-1 promoter. This inhibition is reversed by overexpression of wild type c-Raf-1. Consistent with an involvement of c-Raf-1 in a signaling pathway leading to Egr-1 expression, we find that v-Raf induces Egr-1 promoter activation. These data suggest that c-Raf-1 is a component in an intracellular signaling pathway initiated by v-Src leading to the induction of the mitogen-responsive transcription factor Egr-1.

3T3 Cells

Evidence that a G-protein transduces signals initiated by the protein-tyrosine kinase v-Fps.

The protein-tyrosine kinase (PTK) v-Fps induces protein kinase C (PKC)-dependent expression of the transformation-related 9E3 gene in chicken embryo fibroblasts (Spangler, R., Joseph, C., Qureshi, S.A., Berg, K., and Foster, D.A. (1989) Proc. Natl. Acad. Sci. U.S.A. 86, 7017-7021). We present evidence here that a GTP-binding protein (G-protein) is a component of this PKC-dependent signaling pathway. 1) A GTP analogue that stimulates G-protein-mediated signals induced 9E3 gene expression. 2) A GDP analogue that inhibits signaling through G-proteins inhibited expression of 9E3 and phosphorylation of a 67-kDa PKC substrate induced by v-Fps. The GDP analogue had no effect on phosphorylation of the PKC substrate or the expression of 9E3 induced by direct activation of PKC with phorbol ester. 3) Increased v-Fps PTK activity led to increased GTP binding to a 50-kDa protein. The molecular weight of this GTP-binding protein is consistent with the molecular weight of alpha-subunits of G-proteins of the heterotrimeric class. The data suggest that a G-protein functions upstream from PKC in a signaling pathway that connects v-Fps PTK activity to increased 9E3 gene expression.

Animals

v-Src activates mitogen-responsive transcription factor Egr-1 via serum response elements.

Activating the protein-tyrosine kinase activity of v-Src in murine fibroblasts leads to increased expression of Egr-1, a mitogen-responsive transcription factor. v-Src-induced expression of Egr-1 is independent of protein synthesis and is controlled at the level of transcription. Target sequences responsive to v-Src-induced signals were investigated using deletion mutant and analysis of the Egr-1 promoter. Upstream Egr-1 promoter sequences linked to a reporter gene were cotransfected with a v-Src expression vector into NIH 3T3 cells. v-Src-enhanced gene expression from the Egr-1 promoter was dependent upon the presence of CC(A/T)6GG elements. The CC(A/T)6GG motif forms the core element of serum response elements (SREs) and is the binding site for serum response factor. The Egr-1 promoter sequences responsive to v-Src contained four SREs. Sequential deletion of these SREs reduced v-Src responsiveness to basal transcription levels. A single SRE from this region was able to confer v-Src responsiveness to a heterologous promoter, and a mutation to the CC(A/T)6GG box of this SRE abolished v-Src-enhanced gene expression. Thus, an early response of v-Src-induced intracellular signaling is the transcriptional activation of a growth factor-responsive transcription factor via an SRE.

Animals

Cholera toxin induces expression of the immediate-early response gene JE via a cyclic AMP-independent signaling pathway.

Cholera toxin (CT) activates expression of two immediate-early response genes (JE and TIS10) in quiescent BALB/c 3T3 cells. Increases in cyclic AMP (cAMP) levels in response to CT are likely responsible for the induction of TIS10 gene expression, since treatment with 8-Br-cAMP and increasing the intracellular levels of cAMP by treatment with forskolin induce TIS10 gene expression. In contrast, neither forskolin nor 8-Br-cAMP induces JE gene expression. 3-Isobutyl-1-methylxanthine, which stabilizes intracellular cAMP, potentiates CT-induced TIS10 gene expression but has no effect on CT-induced JE gene expression. Thus, induction of JE by CT is independent of the cAMP produced in response to CT. Induction of JE by CT does not require protein kinase C (PKC), since depleting cells of PKC activity has no effect on the induction of JE by CT. CT-induced expression of JE can be distinguished from CT-induced TIS10 gene expression by using protein kinase inhibitors and inhibitors of arachidonic acid metabolism, further suggesting distinct signaling pathways for CT-induced JE and TIS10 gene expression. Thus, induction of JE gene expression by CT results from the activation of an intracellular signaling pathway that is independent of cAMP production. This pathway is independent of PKC activity and uniquely sensitive to inhibitors of protein kinases and arachidonic acid metabolism.

1-Methyl-3-isobutylxanthine

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

v-Src activates both protein kinase C-dependent and independent signaling pathways in murine fibroblasts.

Activating the protein-tyrosine kinase activity of v-Src rapidly induced expression of the two 'primary response' genes, TIS10 and Egr-1, in Balb/c 3T3 cells. Depleting cells of protein kinase C (PKC) by prolonged exposure to 12-O-tetradecanoylphorbol 13-acetate (TPA), blocked v-Src-induced TIS10 expression, but had no effect on v-Src-induced Egr-1 gene expression. In addition, the induction of TIS10 and Egr-1 by v-Src could be distinguished using protein kinase inhibitors. Thus, v-Src induced gene expression in murine fibroblasts via two distinguishable signaling pathways: one dependent upon PKC and another that is independent of PKC. Consistent with the use of PKC-mediated signaling pathway by v-Src in murine fibroblasts, we found that activating the kinase activity of v-Src led to increased phosphorylation of a major PKC substrate. Thus, data presented here suggest that v-Src-induced transformation involves the activation of multiple signalling pathways, one of which requires PKC.

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine

Antibody response to inactivated influenza vaccines of various antigenic concentrations.

Four inactivated influenza vaccines (containing the recommended antigens for the 1985-1986 influenza season) of various antigenic concentration levels were randomly administered to 140 study participants. The effect of the increasing antigen concentration resulted in significantly higher influenza hemagglutination inhibition (HI) antibody levels 3 weeks after vaccination for the A/H1N1 antigen but not for the A/H3N2 or B antigens. Also, at 3 weeks after vaccination, there were significantly lower antibody titer levels associated with increasing age for the A/H1N1 and B antigens (adjusting for the prevaccination antibody titer and antigen content).

Adult

Use of the confidence interval function.

Graphics displaying all confidence intervals around a point estimate have been referred to as P-value functions and consonance intervals. We recommend use of the term confidence interval function (CI function) rather than P-value function. The CI function is useful because it simultaneously depicts point estimation, variability, and the relation of these two factors to the null value. The usefulness of the CI function in demonstrating the concepts of effect modification and confounding, in meta-analysis, and in the comparison of various confidence interval procedures is evaluated. Software packages that produce CI functions are described.

Confidence Intervals

Evidence that v-src and v-fps gene products use a protein kinase C-mediated pathway to induce expression of a transformation-related gene.

Induction of the transformation-related gene 9E3 by the v-src and v-fps gene products (v-Src and v-Fps) is blocked in chicken embryo fibroblasts depleted of protein kinase C (PKC). PKC agonists induce 9E3 gene expression. Protein kinase inhibitors block v-Src- and v-Fps-induced 9E3 gene expression with the same dose-response curves seen for PKC agonist-induced 9E3 gene expression. These data suggest that v-Src and v-Fps use a PKC-mediated signal-transduction pathway to induce expression of the transformation-related 9E3 gene. Consistent with this hypothesis, we find that both v-Src and v-Fps rapidly induce phosphorylation of a 67-kDa PKC substrate.

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine