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B Bonavida

Publications and source records attributed to B Bonavida.

At least 37 records · Page 2Linked to original sources

Both HPV and carcinogen contribute to the development of resistance to apoptosis during oral carcinogenesis.

Oral carcinomas frequently contain human papilloma virus (HPV)-16/18. As p53 is degraded through interaction with HPV-16/18 products (E6/E7), p53 dysfunction may contribute to oral carcinogenesis. Furthermore, epidemiological studies suggest that smoking history may be critical for oral carcinogenesis. To delineate the involvement of HPV-16 infection and carcinogen in oral carcinogenesis, Park et al have established a multistep oral carcinogenesis model. Overexpression of p53 altered the expression of Fas antigen (Fas-R), Bax and Bcl-2; however, it remains unclear how the loss of p53 modifies the expression of these molecules. Using the multistep oral carcinogenesis model, we analyzed how the loss of p53 and carcinogen modified the expression of these molecules and their role in the development of resistance to apoptosis of oral carcinomas. The HOK-16B cell line was immortalized by HPV-16 transfection of normal human oral keratinocytes (NHOK). HOK-16B-BaP and HOK-16B-BaP-T1 were established from HOK-16B following short-term and long-term stimulation with the chemical carcinogen, benzo(a)pyrene, respectively. The malignant phenotype develops in sequence from HOK-16B, HOK-16B-BaP and HOK-16B-BaP-T1. The expression of apoptosis-related molecules was examined by Western blot analysis or by flow cytometry. Fas-mediated cytotoxicity was assessed using CH-11, an agonistic anti-Fas-R IgM monoclonal antibody. The apoptosis-related molecules examined were the Fas-R, Bcl-2, Bax, and Fas-associated phosphatase 1 (FAP-1). Downregulation of Fas-R and upregulation of Bcl-2 in HOK-16B-BaP were observed in HOK-16B-BaP and HOK-16B-BaPT1. Bax was downregulated in HOK-16B, HOK-16B-BaP and HOK-16B-BaP-T1. The expression of FAP-1 was increased with progression towards malignancy. NHOK and HOK-16B were relatively sensitive to CH-11, whereas HOK-BaP and HOK-BaP-T1 were resistant to CH-11. Treatment of HOK-16B-BaP with antisense bcl-2 oligonucleotide rendered the cells more sensitive to CH-11-induced apoptosis. These data demonstrate that both the loss of p53 and carcinogen stimulation are associated with altered expression of Fas-R, Bcl-2 and FAP-1, although the loss of p53 is sufficient for altered expression of Bax. Thus, both HPV infection and smoking contribute to acquisition of anti-apoptotic characteristics by oral carcinomas.

Antibodies, Monoclonal↗

Sensitization of immunoresistant prostate carcinoma cell lines to Fas/Fas ligand-mediated killing by cytotoxic lymphocytes: independence of de novo protein synthesis.

BACKGROUND: We recently reported that drug-resistant prostate tumor cells (DU145, PC-3) are resistant to Fas-mediated killing by cytotoxic lymphocytes, and that this resistance can be overcome by treatment with subtoxic concentrations of chemotherapeutic drugs. Fas belongs to the tumor necrosis factor (TNF) family of receptors. Since resistance to TNF-alpha-mediated killing has been shown to be due, in part, to the presence of protective factors and that inhibitors of protein synthesis can sensitize cells to TNF-alpha killing, we hypothesized that resistance to Fas-mediated killing may be due to similar mechanisms. Since sensitization is achieved with chemotherapeutic drugs, and some chemotherapeutic drugs can also inhibit protein synthesis, we tested whether sensitization of prostate tumor cells to Fas ligand (Fas-L) occurred through inhibition of protein synthesis in a manner analogous to that of TNF-alpha. METHODS: The effect of chemotherapeutic drugs on protein synthesis in DU145 and PC-3 cells was characterized by (3)H-leucine incorporation assays. We also determined the ability of inhibitors of protein synthesis and chemotherapeutic drugs to sensitize Fas and TNF-resistant DU145 cells to killing. The ability of RNA (actinomycin-D, Act-D) and protein synthesis inhibitors (cyclohexamide (CHX), emetine) to block drug-mediated sensitization to Fas-L killing was analyzed. Sensitivity to Fas-L killing was determined by the (51)Cr-release assay using human lymphokine-activated killer cells (LAK) and tumor-infiltrating lymphocyte (TIL) effector cells and the murine Fas-L-expressing PMMI cells. RESULTS: The drugs cis-diamminedichloroplatinum (II) (CDDP), adriamycin (ADR), and etoposide (VP-16) sensitized DU145 and PC-3 cells to Fas killing. CDDP and ADR, which sensitized DU145 and PC-3 cells to Fas-L- and TNF-mediated killing, inhibited de novo protein synthesis in both cell lines, while VP-16 only inhibited protein synthesis in DU145 cells. Further, neither CHX nor emetine sensitized DU145 or PC-3 cells to Fas-L-mediated killing, despite blocking >90% de novo protein synthesis. In contrast, CDDP, VP-16, and the protein synthesis inhibitors, Act-D and CHX sensitized DU145 cells to TNF-alpha killing. Finally, pretreating cells with protein synthesis inhibitors (CHX, emetine) did not abrogate drug-mediated sensitization to Fas-mediated killing. CONCLUSIONS: These findings demonstrate that downregulation of protective factors by protein synthesis inhibition may not be the primary mechanism of drug-mediated sensitization to Fas-L killing in prostate cell lines. These findings also suggest that drug-mediated sensitization to Fas-L killing may be due to modifications of preexisting gene products that participate in Fas-L-mediated apoptosis.

Animals↗

Preferential induction of TNF-alpha and IL-1beta and inhibition of IL-10 secretion by human peripheral blood monocytes by synthetic aza-alkyl lysophospholipids.

Several newly synthesized aza-alkyl lysophospholipids (AALP) have been shown to exert a potent antitumor cytotoxicity in vitro. Their potential use in vivo prompted us to study their effects on the immune system. The present study investigated the effect of AALP on the secretion of cytokines (TNF-alpha, IL-1beta, IL-6, and IL-10) by normal and activated human peripheral blood-derived monocytes (PBM). Five AALP compounds (BN52205, BN52207, BN52211, BN52218, and BN52227) were tested. Human peripheral blood monocytes were cultured for 18 h at 37 degrees C in the presence of AALP and/or LPS (1 microg/ml) or IFN-gamma (1000 U/ml) and the supernatants tested for the presence of cytokines by ELISA. All five AALP compounds stimulated TNF-alpha and IL-1beta secretion but not IL-6 secretion from nonstimulated PBM. There were no significant differences among the five AALP compounds tested and BN52207 was selected for further studies. Secretion of TNF-alpha was significantly potentiated by BN52207 when the PBM were activated by either IFN-gamma or LPS. There was also an upregulation of TNF-alpha mRNA transcription as detected by RT-PCR. The induction of TNF-alpha secretion by BN52207 was dependent on de novo protein synthesis as the specific TNF-alpha inhibitor, pentoxifylline, and the protein synthesis inhibitors, cyclohexamide and emetine, abolished TNF-alpha secretion. BN52207 also stimulated IL-1beta secretion by resting and activated PBM in a concentration-dependent manner. Unlike TNF-alpha and IL-1beta, however, BN52207 had no effect on IL-6 secretion. Noteworthy, unlike the induction of TNF-alpha and IL-1beta secretion, BN52207 inhibited completely the secretion of IL-10 by resting and LPS-activated PBM. Further, BN52207 enhanced the macrophage killing activity of tumor target cells. Overall, this study demonstrates that AALP are endowed with a selective regulation of cytokine synthesis and secretion by resting and activated PBM. This regulation is manifested by upregulating TNF-alpha and IL-1beta secretion and abolishing IL-10 secretion. The selective regulation of cytokine synthesis and secretion by AALP suggest that AALP may have potential therapeutic uses in vivo in clinical disease manifestations that are regulated by cytokines.

Antineoplastic Agents↗

Sensitization of AIDS-Kaposi's sarcoma cells to Apo-2 ligand-induced apoptosis by actinomycin D.

Kaposi's sarcoma (KS) is the most frequent malignancy associated with HIV infection (AIDS-KS), a complication that leads to high mortality and morbidity. AIDS-KS cells are resistant to killing by chemotherapeutic drugs/NK cells and Fas-induced apoptosis, suggesting that the acquisition of antiapoptotic characteristics by AIDS-KS cells may contribute to their prolonged survival. Apo-2 ligand (Apo-2L)/TNF-related apoptosis-inducing ligand, a new member of the TNF family, has been identified as an apoptosis-inducing molecule. In this study we examined the sensitivity of 10 different AIDS-KS isolates to Apo-2L-mediated cytotoxicity. AIDS-KS cells were relatively resistant to Apo-2L; however, Apo-2L and actinomycin D (Act D) used in combination synergistically potentiated the induction of cell death in nine of the 10 isolates. Apo-2L induced apoptosis in >80% of AIDS-KS cells pretreated with Act D. The caspase inhibitors, zIETD-fmk and zDEVD-fmk, inhibited apoptosis in AIDS-KS by sApo-2L, suggesting that caspase 3-like and caspase 8 or 10 activities are essential for Apo-2L-mediated apoptosis. Act D treatment of AIDS-KS cells markedly and selectively down-regulated Bcl-xL expression, while the expressions of decoy receptors 1 and 2, Bax, cellular FLICE (Fas-associated death domain protein-like IL-1-converting enzyme) inhibitory protein, FADD (Fas-associated death domain protein), procaspase 8, and p53 were not affected. These findings suggest the possible involvement of Bcl-xL in Act D-induced sensitization of AIDS-KS cells to Apo-2L-mediated apoptosis. Furthermore, Act D did not sensitize PBMC or fibroblast cells to Apo-2L. Thus, Apo-2L and Act D used in combination may be of therapeutic value in the treatment of AIDS-KS.

Acquired Immunodeficiency Syndrome↗

Interleukin-6 induces G1 arrest through induction of p27(Kip1), a cyclin-dependent kinase inhibitor, and neuron-like morphology in LNCaP prostate tumor cells.

Prostate carcinoma cells express high levels of interleukin-6 (IL-6) and IL-6 receptor. In this study, we examined the effect of IL-6 on LNCaP human prostate carcinoma cells. IL-6 induces G1 growth arrest of LNCaP. Following IL-6 treatment of LNCaP, Western blot analysis showed that the protein levels of cyclin-dependent kinase-2 (CDK2), CDK4, and CDK6 were decreased, while accumulation of CDK inhibitor p27(Kip1) was rapidly and markedly induced. In vitro kinase assays revealed that the CDK-associated histone H1 and CDK4- and CDK6-associated pRb kinase activities were significantly inhibited in IL-6-treated LNCaP. Further, a significant amount of p27(Kip1) was co-precipitated with CDK2, CDK4 and CDK6, as detected in immunoprecipitation experiments. Thus, IL-6-induced G1 arrest appears to be due to the accumulation of p27(Kip1). In addition, IL-6-treated LNCaP cells induced neuron-like morphological changes. Since neuroendocrine differentiation is observed in most prostate carcinomas, these findings raise the possibility that IL-6 may be involved in neuroendocrine differentiation in vivo.

Blotting, Western↗

Implication of TNF receptor-I-mediated extracellular signal-regulated kinases 1 and 2 (ERK1/2) activation in growth of AIDS-associated Kaposi's sarcoma cells: a possible role of a novel death domain protein MADD in TNF-alpha-induced ERK1/2 activation in Kaposi's sarcoma cells.

TNF-alpha is a key pathogenic mediator of infectious and inflammatory diseases. HIV infection stimulates and dysregulates the immune system, leading to abnormal production of TNF-alpha. Despite its cytotoxic effect on some tumor cell lines, TNF-alpha functions as a growth stimulator for Kaposi's sarcoma (KS), a common malignancy in HIV-infected patients. However, signaling pathways linked to TNF-alpha-induced mitogenic responses are not well understood. We found that extracellular signal-regulated kinases 1 and 2 (ERK1/2) in KS cells were significantly activated by TNF-alpha through tyrosine/threonine phosphorylation. Using neutralizing anti-TNFR-I and TNFR-II mAbs, we have now obtained evidence that TNF-alpha-induced KS cell growth and ERK1/2 activation are mediated exclusively by TNFR-I, not by TNFR-II. A selective inhibitor for ERK1/2 activator kinases, PD98059, profoundly inhibited not only the activation of ERK1/2, but also the TNF-alpha-induced KS cell proliferation. We therefore propose that the TNFR-I-ERK1/2 pathway plays a pivotal role in transmitting to KS cells the mitogenic signals of TNF-alpha. TNFR-I possesses no intrinsic kinase activity, suggesting that TNFR-I-associated proteins may provide a link between TNFR-I and ERK1/2 activation. We found that actinomycin D treatment of KS cells selectively abolished expression of mitogen-activated protein kinase-activating death domain protein (MADD), a novel TNFR-I-associated death domain protein. TNF-alpha failed to induce ERK1/2 activation in the actinomycin D-treated cells. MADD may couple TNFR-I with the ERK1/2 signaling pathway required for KS cell proliferation.

Acquired Immunodeficiency Syndrome↗

Blocking signaling through the Gp130 receptor chain by interleukin-6 and oncostatin M inhibits PC-3 cell growth and sensitizes the tumor cells to etoposide and cisplatin-mediated cytotoxicity.

BACKGROUND: The mechanisms of drug resistance associated with advanced, hormone-independent prostate carcinoma are poorly understood. The human prostate carcinoma PC-3 cell line, derived from a metastatic tumor and lacking androgen receptors, represents a useful model to investigate drug resistance. METHODS: The effects of oncostatin M (OM), antiinterleukin-6 (IL-6) treatment, or interference with the gp130-mediated signaling on etoposide- or cisplatin-mediated cytotoxicity were investigated. RESULTS: Both endogenous and exogenous IL-6 and exogenous OM up-regulated cell growth and enhanced resistance of PC-3 tumor cells to both etoposide and cisplatin. The influence of IL-6 is controlled by treating PC-3 tumor cells with anti-IL-6 neutralizing antibody and, more efficiently, by a mutated IL-6, Sant7. Sant7 has a high affinity binding to the IL-6 receptor-alpha (IL-6Ralpha) subunit, but does not bind to the signaling subunit gp130; therefore, it behaves as a receptor antagonist. Both IL-6- and OM-mediated effects are inhibited by the treatment of PC-3 with an antisense oligodeoxynucleotide against gp130, the protein kinase inhibitor genistein (GNS), or the monoterpene perillic acid (PA), a posttranslational inhibitor of p21ras isoprenylation. CONCLUSIONS: These results demonstrate the protective roles in drug sensitivity of IL-6 and OM through signaling of the common chain gp130 and, most likely, a downstream ras-dependent pathway in PC-3 tumor cells. These findings suggest the potential clinical application of anticytokine therapy or interference with gp130 signaling in the treatment of drug resistant prostate carcinoma.

Antigens, CD↗

Aberrant expression of CD27 and soluble CD27 (sCD27) in HIV infection and in AIDS-associated lymphoma.

CD27 is a member of the tumor necrosis factor receptor superfamily that is expressed primarily on T cells, as well as on subsets of B cells and NK cells. CD70, which is expressed on activated B and T cells, but not on resting lymphocytes, is a ligand for CD27. Cell surface CD27 can be proteolytically cleaved to produce a 32-kDa soluble CD27 (sCD27) molecule. Elevated levels of sCD27 are seen in a number of disease states and malignancies. Although it has been reported that cerebrospinal fluid sCD27 levels were elevated in people who had AIDS dementia, little is known about CD27 expression in HIV disease. To determine if sCD27 levels were elevated in those with HIV infection, and/or in those with AIDS-associated non-Hodgkin's lymphoma (AIDS-NHL), sCD27 levels were measured in HIV-negative and HIV-positive subjects as well as in people who developed AIDS-NHL. Serum sCD27 levels were seen to be elevated in HIV+ subjects. Furthermore, sCD27 levels were particularly elevated in those subjects who went on to develop AIDS-NHL, with serum sCD27 levels in AIDS-NHL subjects being significantly higher than those in HIV+ subjects who did not develop lymphoma. Most AIDS-NHL cell lines and primary AIDS-NHL tumor specimens expressed both CD27 and its ligand, CD70. The proportion of circulating B cells that expressed cell surface CD27 was substantially reduced in those with HIV infection, and B cells from HIV-infected subjects produced decreased levels of sCD27 in culture. Together, these results indicate that CD27/sCD27 expression is abnormal in HIV infection and suggest that this molecule merits further examination as a potential marker for AIDS-NHL.

Antigens, CD↗

Nitric oxide sensitizes ovarian tumor cells to Fas-induced apoptosis.

Fas-mediated apoptosis represents one major mechanism by which tumor cells can be eliminated by activated cytotoxic immune lymphocytes. Previously, we have reported that interferon-gamma (IFN-gamma) sensitizes human ovarian carcinoma cell lines to Fas-mediated apoptosis. Furthermore, IFN-gamma, together with many other proinflammatory cytokines (TNF-alpha, IL-1beta, LPS, etc.), can stimulate the induction of inducible nitric oxide synthase (iNOS) and the generation of nitric oxide (NO). In this study, we examined whether nitric oxide is a mediator of IFN-gamma-induced sensitization of human ovarian carcinoma cell lines (A2780 and AD10) to Fas-mediated apoptosis and whether NO regulates the expression of the Fas receptor. Treatment of quiescent A2780 and AD10 ovarian carcinoma cells with IFN-gamma alone induced the expression of iNOS mRNA as examined by RT-PCR. There was accumulation of nitrite in the culture medium of IFN-gamma-treated cells, suggesting the generation of NOx. Like IFN-gamma, the use of exogenous sources of NO (S-nitroso-N-acetylpenicillamine (SNAP)) mimicked the sensitization of both cell lines to anti-Fas cytotoxic antibody (CH11) by IFN-gamma. Endogenously produced NO, by IFN-gamma pretreatment or exogenous nitrodonors, resulted in the upregulation of Fas receptor mRNA and protein expression. Blocking iNOS activity by NG-monomethyl-l-arginine (l-NMA) significantly reduced the sensitization, Fas mRNA, and protein expression observed with IFN-gamma pretreatment of the tumor cells. These findings demonstrate that sensitization of human ovarian carcinoma cell lines to Fas-mediated apoptosis by IFN-gamma can be due, in part, to the induction of iNOS and the subsequent upregulation of Fas gene expression by reactive nitrogen intermediates. Thus, the sensitivity of tumor cells to Fas-L-mediated cytotoxic immune lymphocytes can be regulated by the induction of NO or intermediates.

Apoptosis↗

Tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) for treatment of prostate cancer: first results and review of the literature.

We present the involvement and association of TNF-related apoptosis-inducing ligand (TRAIL) with apoptosis. Its potential application as a therapeutic agent in urologic oncology is discussed. We have examined the sensitivity of prostate carcinoma cell lines DU145, PC3 and LNCaP to TRAIL-induced apoptosis and the expression of TRAIL receptors. Furthermore we looked into the sensitization of those prostate carcinoma cell lines to TRAIL-mediated apoptosis by low toxic levels of actinomycin-D. Furthermore, we review and discuss the pertinent literature on the molecular biology of TRAIL, its receptors and future potential for therapy in urologic oncology. Recent discovery and characterization of TRAIL has led to further broadening and insights into the apoptotic process. Based on preceding in-vitro studies, the first in-vivo study using TRAIL has been conducted and published in 1999. Systemic application of TRAIL in severe combined immune deficient (SCID) mice resulted in tumor regression of subcutaneous implanted mammary and colon cancer and several groups are looking into TRAIL sensitivity of prostate cancer and renal cancer cellines. Our in-vitro data revealed a significant increase of apoptotic cell death rate following the combined application of TRAIL with actinomycin-D. Our results suggest that the combination of TRAIL and ActD may be a therapeutic option in the treatment of drug/hormone refractory prostate carcinoma. In the future TRAIL may be used in combination therapy with other immunotherapies or gene therapies providing a synergistic effect or enhancing the efficacy of chemotherapeutic or radiotherapeutic regimens.

Journal Article↗

Irreversible cancer cell-induced functional anergy and apoptosis in resting and activated NK cells.

The interaction of natural killer (NK) cells with target cells, such as K562, results in NK functional inactivation and apoptosis. The role of NK-activating cytokines, IL-2, IL-12, and IL-15, in the regulation of NK inactivation and programmed cell death by target cells was examined. Purified natural killer cells were obtained from human peripheral blood and either co-incubated with K562 target cells and cytokines or the NK cells were pretreated with cytokines for 18 h prior to co-culture with K562 cells. Sorted NK cells were examined for cytotoxic activity and NK co-cultured with K562 were examined for cytokine secretion, phenotyping and DNA fragmentation. The cytotoxic activity was inhibited and was not alleviated by cytokine treatment. Whereas the cytokine treatment maintained NK cell viability for several days, NK cell viability was decreased significantly in the presence of K562 target cells. Downregulation of CD16 and upregulation of CD69 on NK cells were induced by K562 target cells and no modulation of these antigens was observed with cytokine treatment. A subpopulation of target-treated NK cells succumbed to cell death by apoptosis and cell death was not rescued by the activating cytokines. These findings demonstrate that target-induced functional inactivation and apoptosis of NK cells were not rescued by the activating cytokines IL-2, IL-12, and IL-15 regardless of whether the NK cells were pretreated with cytokines prior to exposure to K562 or the cytokines were added to the NK-K562 mixtures. These results also suggest that signals triggered by the target cells and resulting in NK cell anergy and apoptosis override cytokine-mediated signals for activation, cell proliferation, and survival.

Apoptosis↗

Selectivity of TRAIL-mediated apoptosis of cancer cells and synergy with drugs: the trail to non-toxic cancer therapeutics (review).

There have been many advances in the therapy of cancer following the introduction of cytotoxic chemotherapeutic drugs. Notable responses were observed in primary tumors and often in malignant metastatic tumors. However, one of the consequences of chemotherapy is the development/acquisition of drug-resistant phenotypes and the development of multiple drug resistance. The development of drug resistance remains a major obstacle in the treatment of such tumors and therefore, there is an obvious need for alternative approaches such as immune/gene therapy. The cloning of biologically active cytotoxic molecules has been considered as potential new therapeutics in the destruction of drug-resistant tumor cells. For instance, some members of the TNF-superfamily are characterized by their ability to inflict cell death upon binding to their cognate receptors. TNF-alpha was the first molecule to be tested for its anti-tumor activity, followed by Fas-ligand. These two molecules are efficient in killing a variety of tumor cells, however, they cause significant damage to normal tissues that result in life-threatening toxicities. Therefore, the search for a cytotoxic molecule that is selective for tumor cells has continued until the recently discovered new member of the TNF superfamily, namely TRAIL/APO-2L. TRAIL has been shown to be selectively cytotoxic in inducing apoptosis against tumor cells and has minimal or no toxicity against normal tissues, as examined both in vitro and in vivo in mice. Therefore, TRAIL is a new agent that has great potential for its in vivo anti-cancer effect, whether used alone or in combination with drugs. Studies from our laboratory have recently demonstrated that tumor cells that are resistant to TRAIL can be sensitized by subtoxic concentrations of drugs/cytokines and the sensitized tumor cells are significantly killed by TRAIL. This review describes the current status of research studies performed with TRAIL by other investigators as well as by our laboratory.

Animals↗

Synergistic cytotoxicity and apoptosis by Apo-2 ligand and adriamycin against bladder cancer cells.

Resistance to conventional anticancer chemotherapeutic agents remains one of the major problems in the treatment of bladder cancer. Hence, new therapeutic modalities are necessary to treat the drug-resistant cancers. Apo-2 ligand (Apo-2L) is member of the tumor necrosis factor ligand family, and it induces apoptosis in cancer cells. Several cytotoxic anticancer drugs, including Adriamycin (ADR), also mediate apoptosis and may share the common intracellular pathways leading to cell death. We reasoned that combination treatment of the drug-resistant cancer cells with Apo-2L and drugs might overcome their resistance. Here, we examined whether bladder cancer cells are sensitive to Apo-2L-mediated cytotoxicity and whether Apo-2L can synergize with ADR in cytotoxicity and apoptosis against bladder cancer cells. Recombinant human soluble Apo-2L (sApo-2L), which carries the extracellular domain of Apo-2L, was used as a ligand. Cytotoxicity was determined by a 1-day microculture tetrazolium dye assay. Synergy was assessed by isobolographic analysis. Human T24 bladder cancer line was relatively resistant to sApo-2L. Treatment of T24 line with combination of sApo-2L and ADR resulted in a synergistic cytotoxic effect. Synergy was also achieved in the ADR-resistant T24 line (T24/ADR), two other bladder cancer lines, and three freshly derived human bladder cancer cell samples. In addition, T24 cells were sensitive to treatment with sApo-2L combined with epirubicin or pirarubicin. The synergy achieved in cytotoxicity with sApo-2L and ADR was also achieved in apoptosis. Intracellular accumulation of ADR was not affected by sApo-2L. Incubation of T24 cells with sApo-2L down-regulated the expression of glutathione S-transferase-pi mRNA. This study demonstrates that combination treatment of bladder cancer cells with sApo-2L and ADR overcomes their resistance. The sensitization obtained with established ADR-resistant bladder cancer cells and freshly isolated bladder cancer cells required low subtoxic concentrations of ADR, thus supporting the in vivo potential application of combination of sApo-2L and ADR in the treatment of ADR-resistant bladder cancer.

Antineoplastic Combined Chemotherapy Protocols↗

Differential regulation of human NK cell-associated gene expression following activation by IL-2, IFN-alpha and PMA/ionomycin.

Natural killer (NK) cells are important in host-defense mechanisms against infection and cancer and also participate in regulation of the immune response. The functions of NK cells as well as their maturation and differentiation are regulated by various stimuli such as interleukin-2 (IL-2) and interferon-alpha (IFN-alpha). The mechanisms by which these stimuli regulate distinct NK functions are not known. This study compared the patterns of gene expression for several NK-associated genes namely perforin (PEF), granzymes A and B (GA or B), IL-1beta, IFN-gamma, tumor necrosis factor-alpha (TNF-alpha), CD16 and NK-specific genes, NKG2A, NKG5 and NKG7 in both unstimulated and in IL-2-, IFN-alpha and PMA/Ionomycin (PMA/I)-stimulated NK cells purified from human peripheral blood. IFN-alpha enhanced mRNA expression for PEF, IFN-gamma, TNF-alpha and NKG2A, but did not affect NKG7 mRNA expression. IL-2 augmented mRNA expression for PEF, IFN-gamma, TNF-alpha, NKG2A and NKG7. PMA/I increased mRNA expression for IFN-gamma, TNF-alpha and NKG2A but did not affect mRNA expression for PEF and NKG7. Further, PMA/I inhibited the expression of CD16 mRNA. These findings demonstrate that the three NK-stimuli used share in common the regulation of several genes but each regulates specifically other genes. These findings suggest that stimuli-specific expression of NK-associated genes may underlie the molecular mechanisms responsible for distinct NK-mediated activities induced by different stimuli.

Antigens, CD↗

Sensitization of human bladder cancer cells to Fas-mediated cytotoxicity by cis-diamminedichloroplatinum (II).

PURPOSE: The resistance of bladder cancer to anticancer chemotherapeutic drugs is a major problem. Several immunotherapeutic approaches have been developed to treat drug-resistant tumor cells. The Fas antigen (Fas)-Fas ligand pathway is involved in cytotoxic T lymphocyte and natural killer cell-mediated cytotoxicity. Like the Fas ligand, anti-Fas monoclonal antibody (mAb) induces apoptosis in tumor cells expressing Fas. Several anticancer drugs also mediate apoptosis and may share with Fas common intracellular pathways leading to cell killing. We reasoned that treatment of drug-resistant cancer cells with a combination of anti-Fas mAb and drugs might overcome their resistance. This study has investigated whether anticancer drugs synergize with anti-Fas mAb in cytotoxicity against bladder cancer cells. MATERIALS AND METHODS: Cytotoxicity was determined by a 1-day microculture tetrazolium dye assay. Synergy was assessed by isobolographic analysis. RESULTS: Treatment of the T24 human bladder cancer cell line with anti-Fas mAb in combination with 5-fluorouracil, mitomycin C or methotrexate did not overcome resistance to these agents. However, treatment of T24 tumor cells with a combination of anti-Fas mAb and cisdiamminedichloroplatinum (II) (CDDP) resulted in a synergistic cytotoxic effect. In addition, the CDDP-resistant T24 line (T24/CDDP) was sensitive to treatment with a combination of anti-Fas mAb and CDDP. Synergy by combination of anti-Fas mAb and CDDP was also achieved in three other bladder cancer lines and four freshly derived human bladder cancer cells. The combination of anti-Fas mAb and carboplatin also resulted in a synergistic cytotoxic effect on T24 cells; however, the combination of anti-Fas mAb and trans-diamminedichloroplatinum (II) resulted in an additive cytotoxic effect. Treatment with CDDP enhanced the expression of Fas on T24 cells. The synergy achieved in cytotoxicity with anti-Fas mAb and CDDP was also achieved in apoptosis. Incubation of T24 cells with anti-Fas mAb increased the intracellular accumulation of CDDP. Treatment of freshly isolated bladder cancer cells with CDDP enhanced their susceptibility to lysis by autologous lymphocytes. CONCLUSIONS: This study demonstrates that combination treatment of bladder cancer cells with anti-Fas mAb and CDDP overcomes their resistance. Synergy was achieved with established CDDP-resistant bladder cancer cells and freshly isolated bladder cancer cells. In addition, the sensitization required low concentrations of CDDP, thus supporting the potential in vivo application of combination of CDDP and immunotherapy in the treatment of CDDP- and/or immunotherapy-resistant bladder cancer.

Antibiotics, Antineoplastic↗

Prognostic significance of soluble Fas in the serum of patients with bladder cancer.

PURPOSE: The interaction of Fas antigen (Fas) and Fas ligand plays an important role in cytotoxic T lymphocyte- and natural killer cell-mediated cytotoxicity against cancer cells. Circulating soluble Fas (sFas) antagonizes cell-surface Fas function and may interfere with immune surveillance against autologous tumors. This possibility was examined in patients with bladder cancer. MATERIALS AND METHODS: The levels of sFas in the serum of 173 patients with bladder cancer were determined by using an enzyme-linked immunosorbent assay. Cytotoxicity of anti-Fas monoclonal antibody was examined by a 1-day microculture tetrazolium dye assay. Anti-autologous tumor cytotoxic activity was determined by the 12-hour 51Cr release assay. RESULTS: The mean serum level of sFas in patients with bladder cancer was threefold higher than the mean in normal donors. The patients were divided into 2 groups based on the level of sFas in the serum. Bladder cancer patients with low level of serum sFas (less than the mean value) had a higher disease-specific survival rate, when compared with those with high level of serum sFas (greater than the mean value) in the 5-year followup. There were no statistical differences in patients' age and sex, as well as histological stage and grade of bladder cancer between the patients with high and low levels of serum sFas. Furthermore, patients with Ta bladder cancer with a low level of serum sFas had a longer postoperative tumor-free interval than those with high level in the 5-year followup. Cytotoxic activity of peripheral blood lymphocytes against autologous tumor cells was examined in 25 patients. There was an inverse correlation between the level of serum sFas and anti-autologous tumor cytotoxicity. CONCLUSIONS: The findings suggest that elevated levels of sFas in the serum might be associated with poor prognosis in patients with bladder cancer.

Adult↗

Pivotal role of endogenous TNF-alpha in the induction of functional inactivation and apoptosis in NK cells.

The interaction of purified nonactivated human NK cells with target cells overnight results in functional anergy and apoptosis in NK cells and in a change of the NK phenotype from CD16+ CD56+ CD69- to CD16(dim/-) CD56(+/dim/-) CD69+. These studies suggested that signaling triggered by the FcR CD16 may be implicated in target cell-mediated anergy/apoptosis of NK cells. We hypothesized that triggering CD16 by anti-CD16 Ab should result in NK cells exhibiting functional and phenotypic properties similar to those obtained following triggering of NK cells with target cells. The findings demonstrate that the anti-CD16 mAb-treated NK cells acquired the CD16- CD56(+/dim) CD69+ Fas+ phenotype and lost their cytotoxic function, a significant number of the NK cells underwent apoptosis, and a selective induction of TNF-alpha synthesis and secretion was observed. The coaddition of IL-2 to anti-CD16 Ab-treated NK cells resulted in enhanced secretion of TNF-alpha and augmentation of the frequency of cell death. However, a minor subset of NK cells exhibited potent cytotoxic function and proliferated. The anti-CD16-induced effects in NK cells were largely abrogated by the addition of either anti-TNF-alpha Ab or TNF-binding protein in the cultures. There was an enhancement of NK cell killing following the addition of exogenous TNF-alpha into the culture. Cytochalasin B selectively triggered the secretion of TNF-alpha and significantly augmented the frequency of apoptosis of anti-CD16-treated NK cells. These findings demonstrate an important and pivotal role of endogenous TNF-alpha synthesis and secretion by NK cells in the induction of functional anergy and apoptosis in anti-CD16-treated NK cells.

Antibodies, Monoclonal↗