Tumor necrosis factor–related apoptosis inducing ligand (TRAIL) holds promise for the treatment of tumors; however, many tumors are resistant to TRAIL alone. We previously showed that resistant malignant mesothelioma cells are sensitized to TRAIL-induced apoptosis by diverse toxic insults including chemotherapy, irradiation, or protein translation inhibitors such as cycloheximide. In seeking nontoxic sensitizers for TRAIL, we tested the protein translation inhibitor anisomycin at subtoxic concentrations 10- to 100-fold below those reported to inhibit protein translation. At these low concentrations (25 ng/mL), anisomycin potently and rapidly sensitized mesothelioma cells to TRAIL-induced apoptosis. Moreover, such sensitization occurred in malignant but not in nonmalignant mesothelial cells. Sensitization by anisomycin was dependent on Bid, indicating a role for mitochondrial amplification in the apoptotic synergy with TRAIL signaling. Consistent with this, we found that anisomycin induces rapid accumulation of the BH3-only protein Bim; moreover, small interfering RNA knockdown of Bim inhibits anisomycin-induced sensitization. Bim accumulation seems not to be transcriptional; instead, it is associated with Bim phosphorylation and increased stability, both consistent with the activation of c-jun NH2-terminal kinase signals by anisomycin. Overall, our data indicate that the rapid and selective sensitization by anisomycin in mesothelioma cells is mediated by posttranslational potentiation of Bim, which primes the cells for apoptosis via the death receptor pathway. Such subtoxic approaches to sensitization may enhance the value of TRAIL in cancer therapy. [Mol Cancer Ther 2007;6(10):2766–76]
We have analyzed the transcriptional start sites of the rat ARF gene and the amino acid sequence of the rat ARF tumor suppressor protein. The 5' end of the ratARF gene is similar to that of a number of cellular housekeeping genes in that it is CG-rich and does not contain an upstream TATA box motif to define a precise transcriptional start site. The transcription of the rat ARF gene is initiated at multiple start sites with one major start site accounting for 41% of transcription. The rat ARF protein contains two methionine ATG codons at its amino terminus separated by 10 amino acids. The translation of the major endogenous ARF protein species is initiated from the upstream methionine ATG codon. The upstream methionine ATG codon is predominantly used, despite the fact that it is both very close to the major transcriptional start site (6 bases downstream) and is in a less favorable nucleic acid sequence context than the downstream ATG, relative to the ideal sequence postulated for efficient initiation of translation. The downstream, inefficient rat ARF ATG is equivalent to the major mouse ARF ATG start codon. Both of these closely spaced ATGs can be utilized as a translational start codon to produce a nucleolar-localized ARF protein which can induce a p53-dependent inhibition of cell division and transcriptional activation of p53 in the absence of p53 stabilization.
Overexpression of Bcl-xL, loss of p19 ARF, and loss of p53 all accelerate Myc oncogenesis. All three lesions are implicated in suppressing Myc-induced apoptosis, suggesting that this is a common mechanism by which they synergize with Myc. However, using an acutely switchable model of Myc-induced tumorigenesis, we demonstrate that each lesion cooperates with Myc in vivo by a distinct mechanism. While Bcl-xL blocks Myc-induced apoptosis, inactivation of p19 ARF enhances it. However, this increase in apoptosis is matched by increased Myc-induced proliferation. p53 inactivation shares features of both lesions, partially suppressing apoptosis while augmenting proliferation. Bcl-xL and p19 ARF loss together synergize to further accelerate Myc oncogenesis. Thus, differing lesions cooperate oncogenically with Myc by discrete mechanisms that can themselves synergize with each other.
Mesothelioma, like many tumors, is inherently resistant to apoptosis. However, certain stimuli can sensitize mesothelioma to apoptosis without affecting normal cells. We have previously shown that chemotherapy sensitized human mesothelioma cells, such as M28, to apoptosis induced by TRAIL (TNF-related apoptosis inducing ligand) via stimulation of the JNK-Stress Activated Pathway. We asked whether non-toxic stimulators of JNK, such as anisomycin, could also sensitize M28 cells to TRAIL and, if so, by what mechanism. Anisomycin rapidly sensitized M28 to TRAIL-induced apoptosis 8 h after treatment but did not sensitize primary human mesothelial cells. By 2 h, anisomycin induced JNK phosphorylation in M28 but not in primary mesothelial cells and also selectively upregulated Bim, a downstream BH3-only protein target of pJNK, suggesting Bim regulation by pJNK in malignant cells. We used siRNA to knockdown Bim protein and, using timelapse video-microscopy and flow cytometry, we demonstrated that Bim knockdown significantly delayed the onset of apoptosis induced by anisomycin and TRAIL. Although anisomycin clearly increased Bim protein, anisomycin did not increase Bim mRNA as measured by RT-PCR but did alter Bim phosphorylation as seen on 2D gel electrophoresis and decrease Bim degradation as seen over 8 h on immunoblot. Overall, our data suggest that the sensitization by anisomycin in malignant cells is mediated in part via a JNK signaling pathway that alters Bim phosphorylation and inhibits degradation, thus priming the cells for apoptosis via the death receptor pathway. Funded by NIH NCI R01 095671
TNF-alpha is a key factor in a variety of inflammatory diseases. This study examines the role of p38 MAPK in the regulation of TNF-alpha in primary human cells relevant to inflammation, e.g., macrophages and rheumatoid synovial cells. Using a dominant negative variant (D168A) of p38 MAPK and a kinase inhibitor, SB203580, we confirm in primary human macrophages that p38 MAPK regulates TNF-alpha production using a posttranscriptional mechanism requiring the 3' untranslated region of the gene. However, in LPS-activated primary human macrophages we also detect a second previously unidentified mechanism, the p38 MAPK modulation of TNF-alpha transcription. This is mediated through p38 MAPK regulation of NF-kappaB. Interestingly this mechanism was not observed in rheumatoid synovial cells. Importantly however, the dominant negative mutant of p38 MAPK, but not SB203580 was effective at inhibiting spontaneous TNF-alpha production in these ex vivo rheumatoid synovial cell cultures. These data indicate there are potential major differences in the role of p38 MAPK in inflammatory signaling that have a bearing on the use of this kinase as a target for therapy. These results indicate despite disappointing results with p38 MAPK inhibitors in the clinic, this kinase is a valid target in rheumatoid disease.
The death ligand, TRAIL (tumor necrosis factor-related apoptosis-inducing ligand), has shown great promise for inducing apoptosis selectively in tumors. Although many tumor cells are resistant to TRAIL-induced apoptosis alone, they can often be sensitized by co-treatment with DNA-damaging agents such as etoposide. However, the molecular mechanism underlying this therapeutically important synergy is unknown. We explored the mechanism mediating TRAIL-DNA damage apoptotic synergy in human mesothelioma cells, a tumor type particularly refractory to existing therapies. We show that Bid, a cytoplasmic Bcl-2 homology domain 3-containing protein activated by caspase 8 in response to TRAIL ligation, is essential for TRAIL-etoposide apo-ptotic synergy and, furthermore, that exposure to DNA damage primes cells to induction of apoptosis by otherwise sublethal levels of activated Bid. Finally, we show that the extensive caspase 8 cleavage seen during TRAIL-etoposide synergy is a consequence and not a cause of the apoptotic cascade activated downstream of Bid. These data indicate that TRAIL-etoposide apoptotic synergy arises because DNA damage increases the inherent sensitivity of cells to levels of TRAIL-activated Bid that would otherwise be insufficient for apoptosis. Such studies indicate how the adroit combination of differing proapoptotic and sublethal signals can provide an effective strategy for treating refractory tumors.
The pro-apoptotic "BH3 domain-only" proteins of the Bcl-2 family (e.g. Bid and Bad) transduce multiple death signals to the mitochondrion. They interact with the anti-apoptotic Bcl-2 family members and induce apoptosis by a mechanism that requires the presence of at least one of the multidomain pro-apoptotic proteins Bax or Bak. Although the BH3 domain of Bid can promote the pro-apoptotic assembly and function of Bax/Bak by itself, other BH3 domains do not function as such. The latter point raises the question of whether, and how, these BH3 domains induce apoptosis. We show here that a peptide comprising the minimal BH3 domain from Bax induces apoptosis but is unable to stimulate the apoptotic activity of microinjected recombinant Bax. This relies on the inability of the peptide to directly induce Bax translocation to mitochondria or a change in its conformation. This peptide nevertheless interferes with Bax/Bcl-xL interactions in vitro and stimulates the apoptotic activity of Bax when combined with Bcl-xL. Similarly, a peptide derived from the BH3 domain of Bad stimulates Bax activity only in the presence of Bcl-xL. Thus, BH3 domains do not necessarily activate multidomain pro-apoptotic proteins directly but promote apoptosis by releasing active multidomain pro-apoptotic proteins from their anti-apoptotic counterparts.
c-Myc promotes apoptosis by destabilizing mitochondrial integrity, leading to the release of proapoptotic effectors including holocytochrome c. Candidate mediators of c-Myc in this process are the proapoptotic members of the Bcl-2 family. We show here that fibroblasts lacking Bak remain susceptible to c-Myc-induced apoptosis whereas bax-deficient fibroblasts are resistant. However, despite this requirement for Bax, c-Myc activation exerts no detectable effects on Bax expression, localization, or conformation. Moreover, susceptibility to c-Myc-induced apoptosis can be restored in bax-deficient cells by ectopic expression of Bax or by microinjection of a peptide comprising a minimal BH3 domain. Microinjection of BH3 peptide also restores sensitivity to c-Myc-induced apoptosis in p53-deficient primary fibroblasts that are otherwise resistant. By contrast, there is no synergy between BH3 peptide and c-Myc in fibroblasts deficient in both Bax and Bak. We conclude that c-Myc triggers a proapoptotic mitochondrial destabilizing activity that cooperates with proapoptotic members of the Bcl-2 family.
p38 MAPK was originally characterized as a stress-induced kinase, along with JNK. Subsequently, p38 MAPK was found to be activated by stimuli other than cellular stress, such as growth factors and mitogens, like interleukin (IL)-2, IL-7 and IL-3. A notable exception was IL-4, as studies in mast cells showed no activation of p38 MAPK by this cytokine. In this study we show that the regulation of p38 MAPK is cell type dependent. Like other cytokines that signal through the gamma (γ)c, IL-4 can activate p38 MAPK in the CT6 T-cell line and BA/F3 pro-B-cells. However, IL-4 was unable to activate p38 MAPK in the murine macrophage cell line, RAW 264.7 and, indeed, prolonged exposure of cells to IL-4 results in suppression of LPS-induced MAPK activation. This result correlates with the well defined inhibitory effect of IL-4 on tumour necrosis factor alpha (TNFα) production. In contrast, studies in primary human monocytes showed that prolonged exposure to IL-4 resulted in enhanced activation of LPS-stimulated p38 MAPK; this correlated with an enhanced TNFα production. These data highlight the complexity of IL-4 signalling mechanisms, the diversity that can exist in the regulation of a given signalling pathway by a given cytokine and, furthermore, indicate the problems that can arise from extrapolation between different cell systems.
T he wonder of multicellular organisms is that each individual cell seems to know what to do, where to be, and how to behave. Such remarkable self-organization relies in part on the surprising alacrity of cells to commit suicide, a process termed apoptosis, should they stray or be misplaced from their normal somatic compartment and so become deprived of the requisite social signals needed for their survival. Nowhere is this phenomenon more evident than in epithelial cells, which derive much of their positional information from their association with their neighbors and with the extracellular matrix. Deprived of such associations, epithelial cells typically undergo detachment-induced apoptosis, or anoikis. Such spontaneous suicide effectively confines epithelial tissues to their correct somatic compartments, ensuring the expeditious deletion of cells misplaced during development or through injury, and potently restraining the emergence of invasive malignancies. Accordingly, inactivation of anoikis is a critical step in the progression of epithelial cancers to an invasive and metastatic form. On page 1829 of this issue, Puthalakath et al. (1) show that detachment of epithelial cells from their extracellular matrix detonates an apoptotic bomb by triggering the release of the pro-apoptotic protein Bmf from the myosin V motor complex of the actin cytoskeleton.
Pyridinyl imidazole inhibitors, particularly SB203580, have been widely used to elucidate the roles of p38 mitogen-activated protein (MAP) kinase (p38/HOG/SAPKII) in a wide array of biological systems. Studies by this group and others have shown that 8B203580 can have antiproliferative activity on cytokine-activated lymphocytes, However, we recently reported that the antiproliferative effects of 8B203580 were unrelated to p38 MAP kinase activity. This present study now shows that SB203580 can inhibit the key cell cycle event of retinoblastoma protein phosphorylation in interleukin-a-stimulated T cells. Studies on the proximal regulator of this event, the phosphatidylinositol 3-kinase/protein kinase B (PKB)(Akt/Rac) kinase pathway, showed that SB203580 blocked the phosphorylation and activation of PKB by inhibiting the PKB kinase, phosphoinositide-dependent protein kinase 1. The concentrations of SB203580 required to block PKB phosphorylation (IC,, 3-5 mu M) are only approximately 10-fold higher than those required to inhibit p38 MAP kinase (IC50 0.3-0.5 mu M). These data define a new activity for this drug and would suggest that extreme caution should be taken when interpreting data where SB203580 has been used at concentrations above 1-2 mu M.
We have shown recently that interleukin (IL)-2 activates the mitogen-activated protein (MAP) kinase family members p38 (HOG1/stress-activated protein kinase II) and p54 (c-Jun N-terminal kinase/stress-activated protein kinase I). Furthermore, the p38 MAP kinase inhibitor SB203580 inhibited IL-2-driven T cell proliferation, suggesting that p38 MAP kinase might be involved in mediating proliferative signals. In this study, using transfected BA/F3 cell lines, it is shown that both the acidic domain and the membrane-proximal serine-rich region of the IL-2Rbeta chain are required for p38 and p54 MAP kinase activation and that, as for p42/44 MAP kinase, this activation requires the Tyr338 residue of the acidic domain, the binding site for Shc. It is well established that the acidic domain of the IL-2Rbeta chain is dispensable for IL-2-driven proliferation, and thus our observations suggest that neither p38 nor p54 MAP kinase activation is required for IL-2-driven proliferation of BA/F3 cells. In addition, the tetravalent guanylhydrazone inhibitor of proinflammatory cytokine production, CNI-1493, can block the activation of p54 and p38 MAP kinases by IL-2 but has no effect on IL-2-driven proliferation of BA/F3 cells, activated primary T cells, or a cytotoxic T cell line. Furthermore, our observations provide evidence for the existence of an additional, unknown target of the p38 MAP kinase inhibitor SB203580, the activation of which is essential for mitogenic signaling by IL-2.
IL-10 has a well-characterized anti-inflammatory role that includes the suppression of inflammatory cytokine (e.g. TNF-alpha) production by monocytic/macrophage cells. Both transcriptional and post-transcriptional/translational mechanisms have been proposed to explain this process. In this study we observed that IL-10 inhibited nuclear NF kappa B DNA binding activity without affecting I kappa B degradation or translocation of NF kappa B subunits to the nucleus. While the suppression of NF kappa B in 70Z/3 pre-B cells correlated with suppression of NF kappa B transcriptional activity and expression of surface IgM, it did not correlate with the production of TNF-alpha mRNA or protein in RAW 264.7 macrophages. Similar observations in the macrophages were made with a second anti-inflammatory cytokine, IL-4. Therefore we conclude that although IL-10 or IL-4 can suppress NF kappa B activity, this appears to have little effect on the expression of the TNF-alpha gene and is unlikely to be the basis of the anti-inflammatory effects of these cytokines.