Search PubMed⌕ Search

Biomedical subjects

Hiroyasu Inoue

Publications and source records attributed to Hiroyasu Inoue.

At least 37 records · Page 2Linked to original sources

Selenomethionine regulates cyclooxygenase-2 (COX-2) expression through nuclear factor-kappa B (NF-kappaB) in colon cancer cells.

Previously, we showed that selenomethionine (Se-Met) inhibits growth of colon cancer cells via suppressing COX-2 expression at both mRNA and protein level. However, the molecular mechanism by which Se-Met suppresses COX-2 expression remains to be elucidated. To this end, we transiently transfected HCA-7 cells with different COX-2 promoter constructs followed by Se-Met treatment (90 microM) for 12 h. The results suggested the role of nuclear factor-kappa B (NF-kappaB) in transcriptional regulation of COX-2. We also observed complete inhibition of DNA binding activity of NF-kappaB in Se-Met (90 microM) treated HCA-7 cells as shown by electrophoretic mobility shift assay (EMSA). Supershift assays with anti-p65 antibody identified p65 subunit in the protein complex. We further demonstrate dose-dependent inhibition of nuclear translocation of NF-kappaB/p65 in Se-Met treated HCA-7 cells, which could explain the observed reduction in DNA binding of NF-kappaB/p65. These results suggest that Se-Met regulates COX-2 at transcriptional level by modulating the activity of NF-kappaB transcription factor.

Colorectal Neoplasms↗

Chrysin suppresses lipopolysaccharide-induced cyclooxygenase-2 expression through the inhibition of nuclear factor for IL-6 (NF-IL6) DNA-binding activity.

Chrysin is a natural, biologically active compound extracted from many plants, honey and propolis. It possesses potent anti-inflammation, anti-cancer and anti-oxidation properties. The mechanism by which chrysin suppresses COX-2 expression remains poorly understood. In the present report, we investigated the effect of chrysin on the expression of COX-2 in lipopolysaccharide (LPS)-activated Raw 264.7 cells. Chrysin significantly suppressed the LPS-induced COX-2 protein and mRNA expression in a dose-dependent manner. The ability of chrysin to suppress the expression of the COX-2 was investigated using luciferase reporters controlled by various cis-elements in COX-2 promoter region. Mutational analysis and electrophoretic mobility shift assay verified that nuclear factor for IL-6 was identified as responsible for the chrysin-mediated COX-2 downregulation. These results will provide new insights into the anti-inflammatory and anti-carcinogenic properties of chrysin.

Animals↗

Oncogenic potential of MEK1 in rat intestinal epithelial cells is mediated via cyclooxygenase-2.

BACKGROUND & AIMS: The mitogen-activated protein kinase/extracellular signal-regulated protein kinase kinase (MEK) pathway plays an important role in the regulation of cell growth and differentiation. Constitutively active components of the MEK signaling cascade can induce oncogenic transformation in many cell systems. Downstream MEK signaling also plays an important role in the regulation of cyclooxygenase-2 (COX-2), which is known to be involved in colorectal cancer. Therefore, we determined the role of COX-2 on the oncogenic potential of MEK1 in nontransformed rat intestinal epithelial cells. METHODS: Constitutively active MEK1 (CA-MEK) mutant transfected rat intestinal epithelial cells were established and tested for their ability to grow in soft agar and form tumors in vivo. The effect of CA-MEK on sodium butyrate (NaB)-induced apoptosis was evaluated by the Annexin V assay. The transcriptional activity and posttranscriptional stability of the COX-2 gene was determined by transient transfection with COX-2 reporter variants and by Northern analysis. To address the role of COX-2 in tumor growth in vivo, xenografted mice were treated with celecoxib (100 mg/kg) or vehicle. RESULTS: CA-MEK transfected RIE-1 and IEC-6 cells formed colonies in soft agar and tumors in nude mice. These cells showed resistance to NaB-induced apoptosis and cell cycle arrest. MEK activation led to increased expression of COX-2, Bcl-X(L), Mcl-1, and phosphorylated Bad and decreased expression of Bak. Along with elevated COX-2 levels, PGI(2) and PGE(2) levels were also increased. Pharmacologic inhibition of COX-2 inhibited MEK-induced tumor growth in vivo through enhanced apoptosis. CONCLUSIONS: COX-2 and its bioactive lipid products may play an important role in MEK-induced transformation.

Animals↗

[Endogenous ligands for PPARs].

Peroxisome proliferator-activated receptors (PPARs), a family of three nuclear receptors/transcription factors, are widely recognized as molecular targets for drugs against lifestyle related disease. In spite of intensive search for natural ligands, no truly endogenous ligand has been identified as yet. Rather, these results have lead to the suggestion that PPAR may act as various lipid sensors. Namely, the ligand binding modes of PPARs would be similar to those of odorant receptors or substrate-binding modes of drug-metabolizing enzyme P450 family. In this brief review, free fatty acids, lipid mediators in arachidonate cascade and polyphenolic compounds such as resveratrol will be discussed as natural ligands for PPARs.

Animals↗

Fatal adenovirus infection indistinguishable from thrombotic microangiopathy after allogeneic CD34+ peripheral progenitor cell transplantation.

A 10-year-old boy with acute lymphoblastic leukemia in second relapse received CD34+ purified allogeneic peripheral blood stem cell transplantation (PBSCT) from his HLA-haploidentical father. The patient developed grade II acute GVHD and received high-dose methyl-prednisolone starting on day + 13 posttransplant. Renal dysfunction followed by massive gastrointestinal bleeding was observed from day + 14. The laboratory findings including elevated serum LDH, increased RBC fragmentation, higher level of thrombomodulin and undetectable haptoglobin corresponded with the diagnosis of thrombotic microangiopathy (TMA). In spite of various treatments, the patient died of multiple organ failure on day + 93. Post-mortem examination revealed systemic adenovirus infection without histological findings of TMA. Severe adenovirus infection may be confused with TMA, and should be distinguished by rapid virological assay.

Adenoviridae Infections↗

Secondary G-CSF mobilized blood stem cell transplantation without preconditioning in a patient with Gaucher disease: Report of a new approach which resulted in complete reversal of severe skeletal involvement.

Gaucher disease has been treated by allogeneic bone marrow transplantation (BMT), however, severe bone involvement that is probably the most disabling aspect of this disease is difficult to reverse. Other problem of BMT is the use of intensive preconditioning that adversely affects growth and development of the patients. In this study, a patient with type I Gaucher disease was treated by allogeneic BMT from HLA-matched sibling donor. However, the treatment resulted in late graft failure and the patient developed severe bone involvement. Fifty months after the first BMT, the patient was treated by allogeneic peripheral blood stem cell (PBSC) transplantation without preconditioning. Recombinant human granulocyte-colony stimulating factor (rhG-CSF) was used to mobilize PBSC. Cyclosporine A (CyA) was administered for the prophylaxis of graft-versushost disease (GVHD). Full donor-derived hematopoiesis was obtained, and clinical symptoms including severe bone involvement improved completely with increased glucocerebrosidase activity. It was shown that an engraftment could be obtained without intensive preconditioning when a recipient receives an rhG-CSF-mobilized PBSCs infusion as a secondary transplant. Another important finding of this study is the complete reversal of severe bone involvement by the supply of abundant glucocerebrosidase from high proliferating PBSC graft.

Bone Marrow Transplantation↗

Bradykinin B2 receptor mediates NF-kappaB activation and cyclooxygenase-2 expression via the Ras/Raf-1/ERK pathway in human airway epithelial cells.

In this study, we investigated the signaling pathways involved in bradykinin (BK)-induced NF-kappaB activation and cyclooxygenase-2 (COX-2) expression in human airway epithelial cells (A549). BK caused concentration- and time-dependent increase in COX-2 expression, which was attenuated by a selective B2 BK receptor antagonist (HOE140), a Ras inhibitor (manumycin A), a Raf-1 inhibitor (GW 5074), a MEK inhibitor (PD 098059), an NF-kappaB inhibitor (pyrrolidine dithiocarbate), and an IkappaB protease inhibitor (L-1-tosylamido-2-phenylethyl chloromethyl ketone). The B1 BK receptor antagonist (Lys-(Leu8)des-Arg9-BK) had no effect on COX-2 induction by BK. BK-induced increase in COX-2-luciferase activity was inhibited by cells transfected with the kappaB site deletion of COX-2 construct. BK-induced Ras activation was inhibited by manumycin A. Raf-1 phosphorylation at Ser338 by BK was inhibited by manumycin A and GW 5074. BK-induced ERK activation was inhibited by HOE140, manumycin A, GW 5074, and PD 098059. Stimulation of cells with BK activated IkappaB kinase alphabeta (IKKalphabeta), IkappaBalpha phosphorylation, IkappaBalpha degradation, p65 and p50 translocation from the cytosol to the nucleus, the formation of an NF-kappaB-specific DNA-protein complex, and kappaB-luciferase activity. BK-mediated increase in IKKalphabeta activity and formation of the NF-kappaB-specific DNA-protein complex were inhibited by HOE140, a Ras dominant-negative mutant (RasN17), manumycin A, GW 5074, and PD 098059. Our results demonstrated for the first time that BK, acting through B2 BK receptor, induces activation of the Ras/Raf-1/ERK pathway, which in turn initiates IKKalphabeta and NF-kappaB activation, and ultimately induces COX-2 expression in human airway epithelial cell line (A549).

Bradykinin↗

Induction of cyclooxygenase-2 overexpression in human gastric epithelial cells by Helicobacter pylori involves TLR2/TLR9 and c-Src-dependent nuclear factor-kappaB activation.

Gastric epithelial cells were incubated with a panel of clinical isolates of Helicobacter pylori, including nonulcer dyspepsia with gastritis (HS, n = 20), gastric ulcer (HU, n = 20), duodenal ulcer (HD, n = 21), and gastric cancer (HC, n = 20). HC strains induced a higher cyclooxygenase-2 (COX-2) expression than those from HS, HD, and HU. The bacterial virulence factors and the host cellular pathways were investigated. Virulence genes of iceA, vacA, babA2, cagA 3' repeat region, and hrgA failed to show any association with the disease status and COX-2 expression. Methylation-specific polymerase chain reaction revealed HC strains not affecting the methylation status of COX-2 promoter. Nuclear factor (NF)-kappaB, NF-interleukin 6, and cAMP response element were found to be involved in COX-2 induction. We explored a novel NF-kappaB activation pathway. The mutants of TLR2 and TLR9, but not TLR4, inhibited H. pylori-induced COX-2 promoter activity, and neutralizing antibodies for TLR2 and TLR9 abolished H. pylori-induced COX-2 expression. Phosphatidylinositol-specific phospholipase C (PI-PLC), protein kinase C (PKC), and Src inhibitors inhibited COX-2 induction. The dominant-negative mutants of NIK and various IkappaB kinase complexes, including IKKbeta (Y188F), IKKbeta (Y199F), and IKKbeta (FF), inhibited the COX-2 promoter activity. Phosphorylation of GST-IKKbeta (132-206) at Tyr188 and Tyr199 by c-Src was found after H. pylori infection. In summary, H. pylori induces COX-2 expression via activations of NF-kappaB, NF-interleukin 6, the cAMP response element. In NF-kappaB activation, H. pylori acts through TLR2/TLR9 to activate both the cascade of PI-PLCgamma/PKCalpha/c-Src/IKKalpha/beta and the cascade of NIK/IKKalpha/beta, resulting in the IkappaBalpha degradation and the expression of COX-2 gene. The COX-2 overexpression may contribute to the carcinogenesis in patients colonized with these strains.

CCAAT-Enhancer-Binding Proteins↗

Involvement of the 3'-untranslated region of cyclooxygenase-2 gene in its post-transcriptional regulation through the glucocorticoid receptor.

Functional roles of the 3'-untranslated region (3'-UTR) of the human Cyclooxygenase-2 (COX-2) gene were evaluated by transient transfection using luciferase (Luc) reporter vectors into bovine arterial endothelial cells (BAEC). Insertion of the 3'-UTR into the downstream of a Luc coding region resulted in decreased reporter activity (23%), although insertion into the upstream was no effect. The reporter activity of the downstream insertion but not the upstream insertion was induced by bacterial lipopolysaccharide (LPS). Moreover, LPS selectively stabilized COX-2 mRNA. Next, to evaluate the role of the 3'-UTR together with glucocorticoid receptor (GR), a GR-expression vector was cotransfected with the reporter vector of the downstream insertion of the 3'-UTR. As a result, the LPS-induced reporter activity was suppressed by dexamethasone in a dose-dependent manner. These data suggest that the 3'-UTR of the COX-2 gene is involved in not only the induction by LPS but also the suppression by DEX of COX-2 expression at the post-transcriptional level.

3' Untranslated Regions↗

Temporal and topographic profiles of cyclooxygenase-2 expression during 24 h of focal brain ishemia in rats.

Substantial increases in cyclooxygenase-2 (COX-2) mRNA and protein levels were demonstrated in the peri-infarct and focal ischemic areas after 3-24 and 12-24 h, respectively, in rats. In the ischemic core, significant increases in COX-2 mRNA followed 6 h of ischemia, though the peak level was about one-third of that in the peri-infarct area. Increases in COX-2 protein in the ischemic core were not observed during ischemic periods. Diffuse, neuronal COX-2 staining was found in peri-infarct areas as well as in discrete, immunoreactive neurons in the ischemic core. Robust increases in prostaglandin E2 levels in the peri-infarct area were demonstrated following 24 h of ischemia. Prostaglandin production as well as COX-2 expression in ischemic tissues depended on the degree and duration of the reduction in cerebral blood flow.

Analysis of Variance↗

Changes in thyroid function after bone marrow transplant in young patients.

BACKGROUND: Changes in thyroid function among young patients who received bone marrow transplantation (BMT) were evaluated. METHODS: The study included 91 patients (50 males) who underwent BMT from 1985 to 1995 at the age of 0.6-21 years. Sixty patients had neoplastic disease such as leukemia or lymphoma, and the remainder had non-neoplastic diseases. Preconditioning regimen for BMT included 12 Gy of fractionated-total body irradiation (TBI) for patients with neoplastic disease and 3-8 Gy of irradiation for the remaining patients, in addition to chemotherapy. Evaluation of thyroid function was performed by serial assessment of basal serum FT4, FT3, TSH concentrations as well as by TRH test. RESULTS: No patient had overt hypothyroidism or elevated basal TSH concentrations (>10 mU/L). However, 6 (7%) of patients experienced exaggerated peak TSH response to TRH stimulation several years after BMT. In 33 patients whose thyroid status was evaluated before, within 3 months, and 1 year after BMT, serum FT3 concentrations as well as peak TSH response to TRH stimulation significantly decreased immediately after BMT (<3 months) and normalized within 1 year. However, serum FT4 concentrations did not change significantly. One patient developed primary hypothyroidism and another developed follicular adenoma of the thyroid 5 and 12 years after BMT, respectively. CONCLUSION: Short-term changes in thyroid function after BMT can indicate euthyroid sick syndrome rather than tertiary hypothyroidism. It must be noted that overt hypothyroidism may occur several years after BMT, hence long-term follow-up of thyroid function is warranted.

Adolescent↗

gamma-Mangostin inhibits inhibitor-kappaB kinase activity and decreases lipopolysaccharide-induced cyclooxygenase-2 gene expression in C6 rat glioma cells.

We investigated the effect of gamma-mangostin purified from the fruit hull of the medicinal plant Garcinia mangostana on spontaneous prostaglandin E(2) (PGE(2)) genase release and inducible cyclooxy-2 (COX-2) gene expression in C6 rat glioma cells. An 18-h treatment with gamma-mangostin potently inhibited spontaneous PGE(2) release in a concentration-dependent manner with the IC(50) value of approximately 2 microM, without affecting the cell viability even at 30 microM. By immunoblotting and reverse-transcription polymerase chain reaction, we showed that gamma-mangostin concentration-dependently inhibited lipopolysaccharide (LPS)-induced expression of COX-2 protein and its mRNA, but not those of constitutive COX-1 cyclooxygenase. Because LPS is known to stimulate inhibitor kappaB (IkappaB) kinase (IKK)-mediated phosphorylation of IkappaB followed by its degradation, which in turn induces nuclear factor (NF)-kappaB nuclear translocation leading to transcriptional activation of COX-2 gene, the effect of gamma-mangostin on the IKK/IkappaB cascade controlling the NF-kappaB activation was examined. An in vitro IKK assay using IKK protein immunoprecipitated from C6 cell extract showed that this compound inhibited IKK activity in a concentration-dependent manner, with the IC(50) value of approximately 10 microM. Consistently gamma-mangostin was also observed to decrease the LPS-induced IkappaB degradation and phosphorylation in a concentration-dependent manner, as assayed by immunoblotting. Furthermore, luciferase reporter assays showed that gamma-mangostin reduced the LPS-inducible activation of NF-kappaB-and human COX-2 gene promoter region-dependent transcription. gamma-Mangostin also inhibited rat carrageenan-induced paw edema. These results suggest that gamma-mangostin directly inhibits IKK activity and thereby prevents COX-2 gene transcription, an NF-kappaB target gene, probably to decrease the inflammatory agent-stimulated PGE(2) production in vivo, and is a new useful lead compound for anti-inflammatory drug development.

Animals↗

Long-term follow-up of thyroid function in patients who received bone marrow transplantation during childhood and adolescence.

An increasing number of long-term surviving bone marrow transplant (BMT) recipients have recovered from their primary disease but are at risk of developing failure of endocrine organs. We investigated 147 patients who underwent allogeneic BMT. Thyroid function was evaluated by serial measurement of basal TSH and free T4 levels as well as by TRH provocative test. Thyroid ultrasound examination was performed for evaluation of thyroid tumor after BMT. Five patients were found to have overt thyroid dysfunction (hypothyroidism in four patients and hyperthyroidism in one patient). Twenty-three patients in the under 9-yr-old group at BMT and 16 patients in the over 10-yr-old group at BMT had subclinical compensated hypothyroidism. Younger age at BMT was the strongest factor for developing thyroid dysfunction, compared with older age (P < 0.001). Only in patients with subclinical compensated hypothyroidism did median basal and peak TSH increase to the upper half of the normal range by 8 yr after BMT and then returned slightly to the middle of the normal range spontaneously. These results suggest that thyroid dysfunction in long-term BMT survivors depends on age at BMT, with a greater risk among younger patients, indicating the need for life-long surveillance.

Adenoma↗

Unmanipulated HLA-haploidentical bone marrow transplantation for the treatment of fatal, nonmalignant diseases in children and adolescents.

Fetomaternal microchimerism has been demonstrated, and immunologic tolerance to unshared HLA antigens between mother and offspring may be suggested. We used T-cell-repleted bone marrow transplantation (BMT) from their HLA-haploidentical mothers to treat 6 patients with fatal nonmalignant diseases. The number of mismatched HLA loci in the graft-versus-host disease (GVHD) direction was 3 in 4 patients and 2 in 2 patients. The number in the host-versus-graft direction was 3 in 4 patients, 2 in 1 patient, and 1 in 1 patient. Microchimerism of inherited paternal antigens was demonstrated in 5 donors, and microchimerism of noninherited maternal antigens was detected in 3 recipients. GVHD prophylaxis consisted of short-course methotrexate, tacrolimus, and mycophenolate mofetil (3 patients) or short-course methotrexate, tacrolimus, and methylprednisolone (1 patient). Engraftment was achieved in 5 patients who had received preconditioning, and T-cell engraftment was confirmed in 1 patient with severe combined immunodeficiency. Acute GVHD developed in 3 patients: grade 1 in 2 patients and grade 2 in 1 patient. Chronic GVHD was observed in 5 patients: localized type in 3 patients and extended type in 2 patients. Five patients were alive 11 to 30 months after BMT and 1 patient died of chronic GVHD. Unmanipulated haploidentical BMT from a maternal donor may be the treatment of choice of poor-prognosis nonmalignant diseases.

Abnormalities, Multiple↗

Brain protection by resveratrol and fenofibrate against stroke requires peroxisome proliferator-activated receptor alpha in mice.

Peroxisome proliferator-activated receptors (PPARs) are ligand-dependent transcription factors which belong to the nuclear receptor family. We examined whether PPARalpha agonists and resveratrol, a polyphenol contained in grapes, protect the brain against ischemia. To investigate whether resveratrol activates PPARs, we performed a cell-based transfection activity assay using luciferase reporter plasmid. PPARalpha and PPARgamma were activated by resveratrol in primary cortical cultures and vascular endothelial cells. Resveratrol (20 mg/kg, 3 days) reduced infarct volume by 36% at 24 h after middle cerebral artery occlusion in wild-type mice. The PPARalpha agonists fenofibrate (30 mg/kg, 3 days) and Wy-14643 (30 mg/kg, days) exerted similar brain protection. However, resveratrol and fenofibrate failed to protect the brain in PPARalpha knockout mice. The data indicate that PPARalpha agonists protect the brain through PPARalpha.

Animals↗

Characterisation of [123I]iomazenil distribution in a rat model of focal cerebral ischaemia in relation to histopathological findings.

Iodine-123 labelled iomazenil ([(123)I]IMZ) has been reported to be a useful marker of neuronal viability. The brain distribution of [(123)I]IMZ, however, has not been correlated with the pathophysiological response in detail after an ischaemic insult. To characterise [(123)I]IMZ as a marker of neuronal viability, we compared its brain distribution with cyclooxygenase-2 (COX-2) expression, DNA fragmentation and cellular integrity. [(123)I]IMZ and [(125)I]IMP were injected into rats with focal cerebral ischaemia for the purpose of dual-tracer autoradiography. COX-2 and microtubule-associated protein-2 (MAP-2, a marker of cellular integrity) were immunostained. In situ DNA polymerase-I-dependent dUTP incorporation into damaged DNA was used as an indicator of DNA fragmentation. Lesion to normal ratios (LNRs) for [(123)I]IMP and [(125)I]IMZ were calculated. [(123)I]IMZ accumulation was preserved in several regions with impaired [(123)I]IMP accumulation. COX-2 expression was occasionally observed, whereas neither DNA fragmentation nor MAP-2 denaturation was detected in these regions. DNA fragmentation and impaired MAP-2 immunostaining were observed only in the regions with reduced LNRs for both tracers. The LNR for [(123)I]IMZ was significantly lower in regions with impaired MAP-2 immunostaining (0.120+/-0.152, P<0.0001), in regions positive for dUTP incorporation (0.488+/-0.166, P<0.0001) and in regions positive for COX-2 expression (0.626+/-0.186, P<0.001) than in histologically normal regions (0.784+/-0.213). Thus, neuronal DNA is still intact and cellular integrity is maintained in the ischaemic regions with preserved [(123)I]IMZ accumulation. The impairment of [(123)I]IMZ accumulation precedes DNA fragmentation and denaturation of cellular integrity. These results provide the molecular basis of [(123)I]IMZ distribution.

Animals↗

Control of COX-2 gene expression through peroxisome proliferator-activated receptor gamma in human cervical cancer cells.

PURPOSE: The peroxisome proliferator-activated receptor-gamma (PPARgamma), a ligand-dependent transcription factor belonging to the family of nuclear receptors, has been implicated in the control of cyclooxygenase (COX) 2 expression in some tissue, although the exact mechanism(s) of this activity has not been elucidated. In this study we explored the possible mechanism(s) of control of COX-2 gene expression through PPARgamma signaling in human cervical cancer. EXPERIMENTAL DESIGN: Using primary human cervical tissues and the CaSki human cervical cancer cell line, we assayed for PPARgamma and COX-2 mRNA expression by reverse transcription-PCR. Nuclear protein binding activities to three response elements located in the COX-2 promoter [nuclear factor kappaB (NFkappaB), cyclic AMP response element, and activator protein (AP)-2] were measured by gel mobility shift assays. We used transient transfection assays with COX-2 promoter reporter gene constructs to determine the regulatory sites in this promoter, which mediates PPARgamma regulation of COX-2 activity. RESULTS: We showed, for the first time, that primary human cervical cancer tissues express PPARgamma. Using CaSki cells, we demonstrated that COX-2 and PPARgamma mRNA levels were inversely regulated by PPARgamma ligands in that these compounds up-regulated PPARgamma but down-regulated COX-2. In contrast, epidermal growth factor (EGF), a potent activator of COX-2, decreased PPARgamma mRNA levels. This down-regulation of PPARgamma mRNA by EGF was blocked in the presence of NS-398, a selective COX-2 inhibitor. PPARgamma ligands suppressed the binding activities of AP-1 (binding to CRE) and NFkappaB but not AP-2. Transient transfection results indicated that EGF stimulated whereas PPARgamma ligands inhibited COX-2 promoter (-327/+59) activity. This effect by PPARgamma ligands on the COX-2 promoter was blocked when the CRE, but not the NFkappaB, binding site was mutagenized. CONCLUSION: Cervical cancer cells express readily detectable levels of PPARgamma. There is reciprocal negative regulation between COX-2 and PPARgamma signaling in human cervical cancer cells. The ability of PPARgamma ligands to inhibit COX-2 appears to be mediated predominantly through inhibition of AP-1 protein binding to the CRE site in the COX-2 promoter.

Cyclic AMP Response Element-Binding Protein↗

Tyrosine phosphorylation of I-kappa B kinase alpha/beta by protein kinase C-dependent c-Src activation is involved in TNF-alpha-induced cyclooxygenase-2 expression.

The signaling pathway involved in TNF-alpha-induced cyclooxygenase-2 (COX-2) expression was further studied in human NCI-H292 epithelial cells. A protein kinase C (PKC) inhibitor (staurosporine), tyrosine kinase inhibitors (genistein and herbimycin A), or a Src kinase inhibitor (PP2) attenuated TNF-alpha- or 12-O-tetradecanoylphorbol-13-acetate (TPA)-induced COX-2 promoter activity. TNF-alpha- or TPA-induced I-kappaB kinase (IKK) activation was also blocked by these inhibitors, which reversed I-kappaBalpha degradation. Activation of c-Src and Lyn kinases, two Src family members, was inhibited by the PKC, tyrosine kinase, or Src kinase inhibitors. The dominant-negative c-Src (KM) mutant inhibited induction of COX-2 promoter activity by TNF-alpha or TPA. Overexpression of the constitutively active PKCalpha (PKCalpha A/E) or wild-type c-Src plasmids induced COX-2 promoter activity, and these effects were inhibited by the dominant-negative c-Src (KM), NF-kappaB-inducing kinase (NIK) (KA), or IKKbeta (KM) mutant. The dominant-negative PKCalpha (K/R) or c-Src (KM) mutant failed to block induction of COX-2 promoter activity caused by wild-type NIK overexpression. In coimmunoprecipitation experiments, IKKalpha/beta was found to be associated with c-Src and to be phosphorylated on its tyrosine residues after TNF-alpha or TPA treatment. Two tyrosine residues, Tyr(188) and Tyr(199), near the activation loop of IKKbeta, were identified to be crucial for NF-kappaB activation. Substitution of these residues with phenylalanines attenuated COX-2 promoter activity and c-Src-dependent phosphorylation of IKKbeta induced by TNF-alpha or TPA. These data suggest that, in addition to activating NIK, TNF-alpha also activates PKC-dependent c-Src. These two pathways cross-link between c-Src and NIK and converge at IKKalpha/beta, and go on to activate NF-kappaB, via serine phosphorylation and degradation of IkappaB-alpha, and, finally, to initiate COX-2 expression.

Amino Acid Sequence↗