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The carcinogenicity of anticancer drugs: a hazard in man.

The carcinogenic potential of anticancer drugs is discussed in the light of selected basic principles of chemical carcinogenesis. Anticancer drugs which act by alkylation and/or by binding tightly to DNA frequently cause cancer in experimental animals and may be carcinogenic in man. In addition, certain anticancer drugs act as cocarcinogens in experimental systems and augment the tumorigenicity of chemical carcinogens. Host determinants are important in chemical carcinogenesis. Many chemical carcinogens and anticancer drugs require metabolic activation by microsomal enzymes. Studies in twins have shown interindividual variation of drug metabolism in man is greater than intraindividual variation caused by exogenous factors. Therefore, certain individuals may be unusually susceptible to the carcinogenicity of anticancer drugs on a pharmacogenetic basis. Age is also a host determinant. At a given total dose level, age at first exposure to chemical carcinogens has been shown to be an important risk factor in experimental studies and in some epidemiologic investigations in man. Therefore, children may be especially susceptible to the carcinogenicity of anticancer drugs. These treated children have the potential of a normal lifespan; the latency period between initial exposure to a carcinogen and clinical evidence of cancer in man is long, usually 2-5 decades. The problems involved in extrapolating data of carcinogenicity in experimental animals to man are discussed. A single drug may have multiple consequences in experimental studies; for example, actinomycin D can act as an anticancer drug, an anticarcinogen, and a carcinogen. These uncertainities and the clinical results concerning second neoplasms following cancer therapy in both children and adults clearly indicate the need to follow carefully long-term survivors who have received cancer therapy.

Age Factors↗

The role of reactive oxygen species in the anticancer activity of vitamin D.

Calcitriol, the hormonal form of vitamin D, enhances the anticancer activity of the immune cytokine tumor necrosis factor, interleukin 1 and interleukin 6 in human breast and renal cell carcinoma cells without affecting the cytotoxic action of interferon-alpha or killer lymphocytes. It also enhances cytotoxicity induced by the anticancer drug doxorubicin, by the redox cycling quinone menadione, and by the reactive oxygen species hydrogen peroxide. The synergistic interaction was accompanied by increased oxidative stress, as manifested by glutathione depletion and was abolished by exposure to the thiol antioxidant N-acetylcysteine. The hormone on its own brought about an increase in the cellular redox state as reflected in the ratio between oxidized and reduced glutathione and glyceraldehyde-3-phosphate dehydrogenase, and a reduction in the expression of the antioxidant enzyme Cu/Zn superoxide dismutase. These results support the notion that the interplay between active vitamin D derivatives and other anticancer agents such as immune cytokines and anticancer drugs plays a role in the in vivo anticancer activity of vitamin D and that reactive oxygen species are involved in the anticancer activity of vitamin D on its own and in its cross-talk with other anticancer modalities.

Animals↗

Recent progress in drug delivery systems for anticancer agents.

Recent progress in understanding the molecular basis of cancer brought out new materials such as oligonucleotides, genes, peptides and proteins as a source of new anticancer agents. Due to their macromolecular properties, however, new strategies of delivery for them are required to achieve their full therapeutic efficacy in clinical setting. Development of improved dosage forms of currently marketed anticancer drugs can also enhance their therapeutic values. Currently developed delivery systems for anticancer agents include colloidal systems (liposomes, emulsions, nanoparticles and micelles), polymer implants and polymer conjugates. These delivery systems have been able to provide enhanced therapeutic activity and reduced toxicity of anticancer agents mainly by altering their pharmacokinetics and biodistribution. Furthermore, the identification of cell-specific receptor/antigens on cancer cells have brought the development of ligand- or antibody-bearing delivery systems which can be targeted to cancer cells by specific binding to receptors or antigens. They have exhibited specific and selective delivery of anticancer agents to cancer. As a consequence of extensive research, clinical development of anticancer agents utilizing various delivery systems is undergoing worldwide. New technologies and multidisciplinary expertise to develop advanced drug delivery systems, applicable to a wide range of anticancer agents, may eventually lead to an effective cancer therapy in the future.

Antineoplastic Agents↗

Potentiation of effects of anticancer agents by local electric pulses in murine bladder cancer.

Electrochemotherapy is a novel cancer treatment in which electric pulses (EP) are used as a means of delivering anticancer agents to the cytoplasm of cancer cells (electroporation). The present study evaluates whether electrochemotherapy has in vitro and in vivo anticancer effects in murine bladder cancer. Using mouse bladder tumor cells (MBT-2 cells), in vitro electrochemotherapy was performed by applying EP to the cell suspension immediately after the addition of anticancer agents. The cytotoxicity of adriamycin (ADM), bleomycin (BLM) and cis-diamminedichloroplatinum(II) (CDDP) was determined by measuring succinate dehydrogenase (SD) activity in both electroporated and non-electroporated cells. In addition, intracellular concentrations of these anticancer agents were also measured. In the in vivo study, tumor-bearing C3H/He mice were treated with an intraperitoneal injection of anticancer agents followed by a local delivery of EP at the tumor site. Then, tumor growth rate (TGR) was determined and compared to that in the sham-treated control group, the EP-only group and the drug-only group. The in vitro study showed that, with electroporation, the cytotoxicity of BLM in electroporated cells was increased by as much as 95.7-fold compared to that of non-electroporated MBT-2 cells; CDDP showed only an increase of 1.8-fold and ADM showed no increase. After electroporation, the intracellular concentration of BLM, CDDP and ADM showed an increase of 120-, 1.7- and 0.8-fold, respectively. In electrochemotherapy for in vivo growing tumors, the potentiation of the antitumor effect was most prominent when combined with BLM, only slightly with CDDP, and totally absent with ADM. It is clear from in vitro and in vivo studies that, in a murine bladder tumor, the anticancer effect of BLM can be considerably potentiated by applying EP. Thus, BLM seems to be the most suitable anticancer agent for electrochemotherapy of bladder cancer.

Animals↗

Occupational exposure to anticancer drug--potential and real hazards.

Many anticancer agents have been shown to be mutagenic, teratogenic and carcinogenic in experimental systems and second malignancies are known to be associated with several specific therapeutic treatments. Anticancer agents thus represent a class of occupational carcinogens, the handling of which should involve no unnecessary exposure. The available methodologies to detect possible exposures from ambient air and from biological samples are discussed, and the published data on results are reviewed. Analytical methods are available for the detection of most frequently used anticancer drugs from all groups, i.e., alkylating agents, mitotic inhibitors, antimetabolites and antibiotics. The ambient samples taken from sites of admixture of cytostatics have often shown detectable, but low concentrations of anticancer agents. Urine samples from patients under chemotherapy as well as from personnel handling the drugs occupationally in hospitals have been analyzed both chemically and for excreted mutagenicity. Both cisplatin and cyclophosphamide have been detected in the urine of patients; furthermore, cyclophosphamide was observed in the urine of nurses who formulate and deliver this drug. Urinary mutagenicity assays have given both positive and negative results in various groups of nursing and pharmacy personnel. Cytogenetic methods have, likewise, been applied for monitoring purposes. Most of the available data concerns chromosome aberrations (CA) or sister-chromatid exchanges (SCE) induced in peripheral blood lymphocytes of patients under chemotherapy. A few studies on groups occupationally exposed to anticancer drugs have given positive results, but also negative reports have appeared for these same cytogenetic parameters. No studies are as yet available on the possible carcinogenic effects of occupational handling of anticancer drugs. Two recent case-referent studies among hospital personnel have pointed to slightly increased risks of disorders in pregnancy outcome; one of the studies has shown an excess of spontaneous abortions and other malformations in children of females with a history of work with anticancer agents.

Abnormalities, Drug-Induced↗

Apoptosis enzyme-linked immunosorbent assay distinguishes anticancer drugs from toxic chemicals and predicts drug synergism.

The effects of anticancer drugs and toxic compounds on leukemic cells in culture were evaluated by enzyme-linked-immunosorbent assay (ELISA) based on the detection of apoptotic cells by a monoclonal antibody against single-stranded DNA. The concentrations of 13 anticancer drugs, which increased apoptosis ELISA absorbance, were similar to the concentrations decreasing long-term cell survival. Short-term metabolic tetrazolium-based 3-(4,5-dimethylthiazol-yl)-2,5-diphenyformazan bromide (MTT) assay was significantly less sensitive than apoptosis ELISA and the cell survival assay. In contrast to anticancer drugs, 12 toxic chemicals did not increase apoptosis ELISA absorbance at cytotoxic concentrations. The difference between two groups of compounds by apoptosis ELISA was especially large in cultures treated with twofold of concentrations producing 50% inhibition of cell growth: all anticancer drugs induced intense reaction (mean absorbance 2.0), while none of the toxic chemicals induced apoptosis. The application of apoptosis ELISA to chemosensitivity testing was evaluated by its ability to detect synergism of anticancer drug combinations. Among 66 drug combinations tested, only combination of nitrogen mustard with mithramycin was highly synergistic by the apoptosis ELISA, as defined by apoptosis induction with the combination containing each drug at 50% of effective concentration. This combination was also synergistic in the cell survival assay, producing significant cell kill while each drug alone had no effect on cell survival. This synergism was not detected by MTT assay. We conclude that apoptosis ELISA could be useful for drug development and chemosensitivity assessment as it can distinguish clinically useful anticancer drugs from toxic compounds, is as sensitive as the long-term cell survival assay and can detect anticancer drug synergism by rapid evaluation of apoptosis induction.

Antineoplastic Agents↗

Are the major effects of P-glycoprotein modulators due to altered pharmacokinetics of anticancer drugs?

Agents (modulators) that reverse the in vitro resistance of tumor cells to anticancer drugs that are substrates for P-glycoprotein (Pgp, the product of the MDR1 gene) have been given to patients concurrently with anticancer drugs in an attempt to improve therapeutic response. The vast majority of investigations into these drugs indicate that Pgp modulators decrease the systemic clearance of anticancer drugs, thus potentially nonselectively increasing exposure to normal and malignant cells and thereby potentially increasing the severity and/or incidence of adverse effects associated with the anticancer therapy. Mechanisms by which Pgp modulators could alter the pharmacokinetics of the anticancer agent include competition for cytochrome P450 intestinal or liver metabolism, inhibition of Pgp-mediated biliary excretion or intestinal transport, or inhibition of renal elimination. It is suggested that administration of Pgp modulators is unlikely to improve the therapeutic index for anticancer drugs unless agents that lack significant pharmacokinetic interactions are found. Moreover, it will likely be required that there be some cancer-tissue selectivity for modulators in order to avoid collaterally increasing the sensitivity of normal Pgp-expressing tissues to the anticancer drug.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Vitamin E analogs, a novel group of "mitocans," as anticancer agents: the importance of being redox-silent.

The search for a selective and efficient anticancer agent for treating all neoplastic disease has yet to deliver a universally suitable compound(s). The majority of established anticancer drugs either are nonselective or lose their efficacy because of the constant mutational changes of malignant cells. Until recently, a largely neglected target for potential anticancer agents was the mitochondrion, showing a considerable promise for future clinical applications. Vitamin E (VE) analogs, epitomized by alpha-tocopheryl succinate, belong to the group of "mitocans" (mitochondrially targeted anticancer drugs). They are selective for malignant cells, cause destabilization of their mitochondria, and suppress cancer in preclinical models. This review focuses on our current understanding of VE analogs in the context of their proapoptotic/anticancer efficacy and suggests that their effect on mitochondria may be amplified by modulation of alternative pathways operating in parallel. We show here that the analogs of VE that cause apoptosis (which translates into their anticancer efficacy) generally do not possess antioxidant (redox) activity and are prototypical of the mitocan group of anticancer compounds. Therefore, by analogy to Oscar Wilde's play The Importance of Being Earnest, we use the motto in the title "the importance of being redox-silent" to emphasize an essentially novel paradigm for cancer therapy, in which redox-silence is a prerequisite property for most of the anticancer activities described in this communication.

Animals↗

Microplate screening for apoptosis with antibody to single-stranded DNA distinguishes anticancer drugs from toxic chemicals.

The effect of anticancer drugs and toxic compounds on cultures of human leukemic cells was evaluated by an enzyme-linked immunosorbent assay (Apoptosis ELISA) that uses a monoclonal antibody against single-stranded DNA to quantitate the apoptotic cells. The concentrations of 13 anticancer drugs, which increased Apoptosis ELISA absorbance, were close to the cytotoxic concentrations determined by the long-term cell survival assay. Short-term tetrazolium-based microculture tetrazolium (MTT) assay was significantly less sensitive than the Apoptosis ELISA and the cell survival assay for all anticancer drugs. For 6 drugs, cytotoxic concentrations measured by the MTT assay were at least 1 log higher than the concentrations inducing apoptosis. Importantly, in contrast to the anticancer drugs, 14 toxic chemicals did not increase the Apoptosis ELISA absorbance at cytotoxic concentrations. The difference in apoptosis induction by the anticancer drugs and the toxic chemicals was especially large in cultures treated with drug concentrations 2-fold higher than the IC(50) dose. Although all of the anticancer drugs tested induced intense ELISA reaction (mean absorbance 2.0), all toxic chemicals tested did not induce apoptosis. The Apoptosis ELISA assay could have useful applications in drug development as it can distinguish between clinically useful anticancer drugs and toxic compounds, has sensitivity similar to that of the long-term cell survival assay, and provides insight into the mechanism of drug cytotoxicity by differentiating between compounds killing cells by apoptosis and necrosis.

Antibodies↗

[Effect of anticancer drugs on invasive capacity of human small-cell lung cancer cells in vitro].

The effect of anticancer drugs on invasive capacity of Lu 135 human small-cell lung cancer cells was studied in vitro. the invasive capacity decreased in a dose-dependent manner when tumor cells were treated with the anticancer drugs cisplatin and etopside. The inhibition of tumor cell invasion was almost parallel with the inhibition of tumor cell growth. The anticancer drugs also suppressed tumor cell migration and the activity of the matrix-degrading protease, type IV collagenase, activity. But they did not suppress adhesion to basement membrane protein such as laminin, fibronectin, or type IV collagen. Because tumor cells express adhesion molecules on the cell surface, the effect of the anticancer drugs on the expression of one such molecule, integrin, was also studied. Lu 135 cells expressed alpha 4/beta 1 integrin on the cell surface, and the pattern of integrin expression did not change with exposure with the anticancer drugs. These data suggest that the anticancer drugs inhibit the invasive capacity by suppression of migration and type IV collagenase activity of tumor cells, and that they do not modulate adhesion to the extracellular matrix or cell surface adhesion molecules such as integrin. Furthermore, these findings indicate that anticancer drugs may be useful for anti-metastatic therapy in patients with small-cell lung cancer.

Antineoplastic Agents↗

Growth-inhibitory signals by activin A do not affect anticancer drug-sensitivity and acquired multi-drug-resistance in human ovarian endometrioid adenocarcinoma OVK-18 cells.

Using the human ovarian adenocarcinoma cell line, OVK-18, which is sensitive to activin A-mediated inhibition of growth and various anticancer drugs, we determined whether activin A altered the sensitivity of these cells to seven anticancer drugs. The relationship between the sensitivity to activin and the resistance to anticancer drugs was also investigated in OVK-18 parent cells and OVK-18-derived CDDP-resistant cells. Activin A inhibited proliferation of OVK-18 parent cells in a dose-dependent manner, although it did not affect the sensitivity of OVK-18 parent cells to the seven anticancer drugs, CDDP, CBDCA, adriamycin, paclitaxel, SN38, terarubicin and etoposide (VP16). Both the sensitivity to activin A-mediated inhibition of growth and the sensitivity to anticancer drug-induced apoptosis were reduced in CDDP-resistant cells, while their sensitivity to the seven anticancer drugs was not affected by activin A. Flow cytometric analysis revealed a significant reduction in type IIA activin receptor expression on the surface of CDDP-resistant cells. These results indicate that the activin A-induced intracellular signals inhibiting cell growth are independent of the inhibition caused by the seven anticancer drugs, and suggest that the reduced sensitivity of CDDP-resistant cells to activin A is derived in part from reduced activin receptor expression and not acquired drug-resistance.

Activins↗

Stability of anticancer activity induced by cellular differentiation.

Human and murine cells can express anticancer activity which we define as any biologic process that can prevent or inhibit the expression of the transformed phenotype. The existence of anticancer activities has been demonstrated by many systems, including the fusion of normal cells with tumorigenic cells and the implantation of cancer cells into specific embryonic sites. Furthermore, cellular differentiation has recently been shown to regulate the expression of anticancer activity without limiting a cell's proliferative potential. Those results show that reversible nonterminal differentiation (NTD) induces 3T3T mesenchymal stem cells to become resistant to transformation by physical or chemical carcinogens or oncogene products and NTD induces spontaneously transformed 3T3T cells to revert to a benign state and to become resistant to retransformation. In addition, NTD induces SV40 T-antigen transformed 3T3T cells to revert to a nontransformed state that prevents growth in soft agarose. Data are now presented that define the relative stability of these differentiation-induced anticancer activities. Anticancer activity induced by NTD in 3T3T cells is shown to have a mean stability of 55 population doublings (PD) and a maximum stability of 88 PD. Anticancer activity induced by NTD in spontaneously transformed 3T3T cells shows a similar stability with a mean of 55 PD and a maximum of 95 PD. Finally, in SV40-3T3T cells, the induction of NTD suppresses soft agarose growth for a maximum of 20-30 PD. These results demonstrate that three forms of differentiation-induced anticancer activity are stable for an extended number of population doublings.

Animals↗

Properties of anticancer agents relevant to in vitro determinations of human tumor cell sensitivity.

The physical properties of 59 anticancer agents have been examined with respect to solubility in tissue culture media, binding to ultrafiltration materials, and molecular absorbance and fluorescence behavior. Methods for dissolving these agents, which are compatible with in vitro sensitivity testing of human tumor cells to anticancer agents, are reported in this paper. The potential for anticancer agent binding to cellulose nitrate/cellulose acetate and teflon membrane ultrafilters was documented, and quantitation of these anticancer agents based upon absorbance and fluorescence spectroscopy was performed. Post-filtration quantitation of anticancer agents was found to be a reliable method for determining the actual drug concentrations available in tumor cell sensitivity testing in vitro. The properties documented herein are pharmacologically relevant parameters related to in vitro determinations of human tumor cell sensitivity to anticancer agents.

Antineoplastic Agents↗

The synergistic effects of hyperthermia and anticancer drugs on induction of apoptosis.

We studied the synergistic effects of hyperthermia and anticancer drugs on induction of apoptosis in lung cancer cells (LK-2 and LU-65A) using in situ end-labeling of DNA, the DNA fragmentation assay, and transmission electron microscopy. A few apoptotic cells were detected only when both cell lines were heated at relatively high temperature (44 degrees C). Moderate numbers of apoptotic cells were observed when both cell lines were incubated with high concentrations (30 or 40 microM) of anticancer drug. Compared with hyperthermia or anticancer drug alone, the combined treatment induced many apoptotic cells in both cell lines, even in the cells treated with lower concentrations (6 or 8 microM) of anticancer drugs following mild hyperthermia (43 degrees C). In regard to kinetics of apoptotic cells induced by treatment, the maximum induction of apoptosis by the combined treatment was higher than that of hyperthermia or anticancer drug alone in both cell lines, although the time of the peak of apoptotic index differed among the three treatments. Therefore, "hyperthermo-chemotherapy" may reduce the required dosage of anticancer drug and decrease the temperature of hyperthermia on induction of apoptosis.

Antineoplastic Agents↗

Anthracycline and anthraquinone anticancer agents: current status and recent developments.

The clinical treatment of neoplastic diseases relies on the complementary procedures of surgery, radiation treatment, immunotherapy and chemotherapy. The latter technique has matured from its earliest applications of mustard alkylating agents in the 1940s to an increasingly rationally based discipline, which is contributing significantly to the management of human malignancies. As the field of chemotherapy matured, several promising natural anticancer agents were identified. However, a more urgent need soon arose from the common experience of clinically limiting toxicities of most anticancer drugs, i.e. the necessity to develop less toxic clinical drug candidates. Thus, the medicinal chemist turned towards analog development involving certain anthraquinones. Hand-in-hand with this considerable synthetic effort, which uncovered several promising clinical leads, biochemical pharmacology, or study of the mechanisms of action of clinical anticancer agents, afforded deeper insight into drug metabolism and mode of action. More recently, therefore, the field of synthetic organic chemistry, which has been complemented by the methods of microbial chemistry, has been faced with new synthetic challenges, occasioned by the identification of hitherto unrecognized cellular targets for anticancer drugs, such as topoisomerases and helicases. The armementarium of the oncologist currently includes about 40-50 clinically useful chemical agents. The paradigm of cytotoxic anticancer agents is doxorubicin, an anthracycline, which is still amongst the most widely prescribed and effective of anticancer agents. The review attempts to summarize the discovery of anthracyclines and the elucidation of their several mechanisms of action and efforts towards improvement of their therapeutic efficacy.

Amino Sugars↗

Potent anticancer activities of novel aminophenol analogues against various cancer cell lines.

Novel aminophenol analogues were synthesized based on the structure of fenretinide (N-(4-hydroxyphenyl)retinamide, 5), which is a potent anticancer agent. Our findings showed that the anticancer activities of 5 were due to the side chain attached to the aminophenol moiety. A p-octylaminophenol (p-OAP) provided the most potent anticancer activity among p-alkylaminophenols examined. In this study, we investigated anticancer activities against various cancer cell lines by the new aminophenols, p-dodecylaminophenol (1), p-decylaminophenol (2), N-(4-hydroxyphenyl)dodecananamide (3), and N-(4-hydroxyphenyl)decananamide (4), which exhibits a side chain as long as 5. Cell growth of breast cancer (MCF-7, MCF-7/Adr(R)), prostate cancer (DU-145), and leukemia (HL60) cells was suppressed by 1 and 2 in a fashion dependent on the length of the alkyl chain attached to the aminophenol. In contrast, 3 and 4 were extremely weak. Compound 5 was less potent than 1. Cell growth of liver cancer (HepG2) was not markedly affected by these compounds. In addition, apoptosis of HL60 cells was induced by 1 and 2 in a chain length-dependent manner, but not by 3 and 4. Incorporation of compounds into HL60 cells was in the order 1>2=3>4. These results indicated that anticancer activities for 1 and 2 are correlated with their incorporation into cancer cells and their capability to induce apoptosis, but not for 3 and 4. Compound 1, a potent anticancer agent with potency strikingly greater than 5, may potentially be useful in clinic.

Aminophenols↗

Ten years of marketing approvals of anticancer drugs in Europe: regulatory policy and guidance documents need to find a balance between different pressures.

Despite important progress in understanding the molecular factors underlying the development of cancer and the improvement in response rates with new drugs, long-term survival is still disappointing for most common solid tumours. This might be because very little of the modest gain for patients is the result of the new compounds discovered and marketed recently. An assessment of the regulatory agencies' performance may suggest improvements. The present analysis summarizes and evaluates the type of studies and end points used by the EMEA to approve new anticancer drugs, and discusses the application of current regulations. This report is based on the information available on the EMEA web site. We identified current regulatory requirements for anticancer drugs promulgated by the agency and retrieved them in the relevant directory; information about empirical evidence supporting the approval of drugs for solid cancers through the centralised procedure were retrieved from the European Public Assessment Report (EPAR). We surveyed documents for drug applications and later extensions from January 1995, when EMEA was set up, to December 2004. We identified 14 anticancer drugs for 27 different indications (14 new applications and 13 extensions). Overall, 48 clinical studies were used as the basis for approval; randomised comparative (clinical) trial (RCT) and Response Rate were the study design and end points most frequently adopted (respectively, 25 out of 48 and 30 out of 48). In 13 cases, the EPAR explicitly reported differences between arms in terms of survival: the range was 0-3.7 months, and the mean and median differences were 1.5 and 1.2 months. The majority of studies (13 out of 27, 48%) involved the evaluation of complete and/or partial tumour responses, with regard to the end points supporting the 27 indications. Despite the recommendations of the current EMEA guidance documents, new anticancer agents are still often approved on the basis of small single arm trials that do not allow any assessment of an 'acceptable and extensively documented toxicity profile' and of end points such as response rate, time to progression or progression-free survival which at best can be considered indicators of anticancer activity and are not 'justified surrogate markers for clinical benefit'. Anticipating an earlier than ideal point along the drug approval path and the use of not fully validated surrogate end points in nonrandomised trials looks like a dangerous shortcut that might jeopardise consumers' health, leading to unsafe and ineffective drugs being marketed and prescribed. The present Note for Guidance for new anticancer agents needs revising. Drugs must be rapidly released for patients who need them but not be at the expense of adequate knowledge about the real benefit of the drugs.

Antineoplastic Agents↗

Staurosporine and conventional anticancer drugs induce overlapping, yet distinct pathways of apoptosis and caspase activation.

Apoptosis can be induced by various stimuli including DNA-damaging anticancer drugs and the protein kinase inhibitor staurosporine. It is generally believed that the molecular events during execution of apoptosis are shared, as both anticancer drugs and staurosporine derivatives induce mitochondrial damage, cytochrome c release and the activation of the caspase-9 proteolytic cascade. In the present study we show that overexpression of a dominant-negative caspase-9 mutant abolished the activation of endogenous caspase-9, caspase-3 and the cleavage of the caspase substrate Bid in response to anticancer drug treatment. Surprisingly, however, only marginal effects were observed during staurosporine-induced apoptosis. Furthermore, we describe a Jurkat T-cell clone that is completely resistant towards different anticancer drugs, but remains sensitive towards staurosporine-induced apoptosis. In these cells only staurosporine, but neither anti-CD95 nor anticancer drugs were able to trigger caspase activity and the cleavage of caspase substrates. Our results therefore suggest that the mechanism of staurosporine-induced apoptosis is more complex and at least partially differs from anticancer drug-induced caspase activation. These distinct features of staurosporine may allow to bypass chemoresistance of tumor cells and may encourage further clinical trials for the use of staurosporine derivatives in antitumor therapy.

Antineoplastic Agents↗