[EFFECT OF CHEMICAL SYSTEMS WHICH GENERATE FREE HYDROXYL RADICALS ON CELLS IN MAINTAINED CULTURE (KB CELLS)].
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[6]-paradol, a pungent phenolic substance found in ginger and other Zingiberaceae plants, has been demonstrated to be an effective inhibitor of tumor promotion in mouse skin carcinogenesis. In the present study, we found that [6]-paradol and other structurally related derivatives, [10]-paradol, [3]-dehydroparadol, [6]-dehydroparadol, and [10]-dehydroparadol, with the exception of [3]-paradol induce apoptosis in an oral squamous carcinoma cell line, KB, in a dose-dependent manner. [10]-paradol and [10]-dehydroparadol exhibited a similar extent of cytotoxicity to that of [6]-paradol. [6]-Dehydroparadol and [3]-dehydroparadol appeared to be more potent, with an IC50 less than 40 microM. Treatment of KB cells with an apoptosis-inducing concentration of [6]-dehydroparadol caused induction of proteolytic cleavage of pro-caspase-3. These results suggest that [6]-paradol and structurally related derivatives induce apoptosis through a caspase-3-dependent mechanism.
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A KB cell line resistant to cisplatin (KB-rc cell) was successfully established by exposing KB cells to a gradually increasing dose of cisplatin in vitro. The concentration of cisplatin required for 50% inhibition of KB-rc cell proliferation was 1.0 micrograms/ml, while that of KB cells was 0.5 micrograms/ml. Studies of KB-rc cell kinetics after treatment with cisplatin, using flow cytometry, showed that the G2M phase block was inhibited on day 3, and that G0G1 phase cells started to increase on day 5. Therefore, cisplatin-resistance is related to inhibition of the G2M phase block. The decrease of KB-rc cell viability with cisplatin was accelerated by the addition of a Ca antagonist (verapamil) and S phase cells increased on day 3. Verapamil may therefore be useful for enhancement of the effect generated by cisplatin on cisplatin-resistant tumor cells.
Human nasopharyngeal epidermoid carcinoma (KB) cells contain a membrane-associated particulate folate-binding protein which is important in the cellular accumulation of physiologic folates (Antony, A. C., Kane, M. A., Portillo, R. M., Elwood, P. C., and Kolhouse, J. F. (1985) J. Biol. Chem. 260, 14911-14917) and in the binding of methotrexate (Kane, M. A., Portillo, R. M., Elwood, P. C., Antony, A. C., and Kolhouse, J. F. (1986) J. Biol. Chem. 261, 44-49). A soluble folate-binding protein appears in media exposed to proliferating KB cells. We have purified to homogeneity both the membrane-associated and the soluble folate-binding proteins from the KB cell tissue culture system. The purified membrane-associated and soluble folate-binding proteins give single bands on sodium dodecyl sulfate-polyacrylamide gel electrophoresis with apparent Mr values of 50,000 and 40,000, respectively. The membrane-associated folate-binding protein contains 45,000 g of amino acids and the soluble folate-binding protein contains 24,000 g of amino acids per mole of folate bound. Each of the purified proteins has a single folate-binding site, and the carbohydrate content is approximately 25% for each species of protein. The affinity constants for 5-methyltetrahydrofolate of the membrane-associated and soluble folate-binding proteins are 0.3 and 2.5 X 10(9) liters/mol, respectively. The affinities of various polyglutamated forms of methotrexate are similar for each protein, increase as the chain length of the polyglutamate increases (from approximately 0.004 X 10(9) liters/mol for methotrexate to 0.3 X 10(9) liters/mol for methotrexate heptaglutamate), are equal to the affinity for 5-methyltetrahydrofolate, and exceed the reported increase in affinity of methotrexate polyglutamates for dihydrofolate reductase.
The identities of the upstream activators of the mitogen-activated protein (MAP) kinase homologues termed stress-activated-protein (SAP) kinase-1 (also known as JNK or SAPK) and SAP kinase-2 (also known as p38, RK and CSBP) were investigated in rat PC12 cells and human KB cells after exposure to cellular stresses and cytokines. In PC12 cells, the same two upstream activators, SAP kinase kinase-1 (SAPKK-1) and SAPKK-2 were activated after exposure to osmotic shock, ultraviolet irradiation or the protein synthesis inhibitor anisomycin, and more weakly in response to sodium arsenite. SAPKK-1 was capable of activating both SAP kinase-1 and SAP kinase-2 and was similar, if not identical, to the previously described MAP kinase kinase homologue MKK4, as judged by immunological criteria and by its ability to be activated by MEK kinase in vitro. In contrast, SAPKK-2 activated SAP kinase-2, but not SAP kinase-1 in vitro. In KB cells, five distinct upstream activators of SAP kinase-1 and SAP kinase-2 were induced, namely SAPKK-1, SAPKK-2, SAPKK-3, SAPKK-4 and SAPKK-5, whose appearance depended on the nature of the stimulus. SAPKK-3, which was strongly induced by every stimulus tested (osmotic shock, ultraviolet irradiation, anisomycin or IL-1), accounted for about 95% of the SAP kinase-2 activator activity in these cells, did not activate SAP kinase-1 and eluted from Mono S at a lower salt concentration than SAPKK-2. SAPKK-4 and SAPKK-5 were also eluted from Mono S at higher NaC1 concentrations than SAPKK-3 and these enzymes activated SAP kinase-1 but not SAP kinase-2. SAPKK-4 was the only SAP kinase-1 activator induced by interleukin-1 or ultraviolet irradiation, while two SAP kinase-1 activators, SAPKK-1 and SAPKK-5, were induced by osmotic shock or anisomycin. SAPKK-2, SAPKK-3, SAPKK-4 and SAPKK-5, were not activated by MEK kinase in vitro, were separable from the major activator(s) of p42 MAP kinase, and were not recognised by anti-MKK4 antibodies. At least two of these enzymes are likely to be novel MAP kinase kinase homologues. Our results demonstrate unexpected complexity in the upstream regulation of stress and cytokine-stimulated kinase cascades and indicate that the selection of the appropriate SAPKK varies with both the stimulus and the cell type.
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In human KB cells productively infected with adenovirus type 12, viral DNA replication starts between 12 and 14h postinfection. Virus-specific, polysome-associated mRNA was investigated early (6-8h) and late (26-28h) after infection. Most of the viral mRNA was polyadenylated and accounted for 0.46% and 24.1% of the mRNA synthesized early and late postinfection, respectively. The viral-specific mRNA isolated both early and late after infection falls into several distinct size-classes, ranging in molecular weights between 0.3X10(6) and 1.5X10(6) for the early RNA and between 0.6X10(6) and 2.3X10(6) for the RNA synthesized late in the infection.
Growing KB cells in hyperosmolar medium causes in reduction in total alkaline phosphatase activity associated with a decrease in the proportion of the heat-labile and an increase of the heat-stable enzyme components. In standard medium enzyme activity increases progressively during a 6-day growth cycle and the proportion of heat-stable activity remains constant. In hyperosmolar medium, activity increases only during the initial 24 hr after the change in osmolality and then levels off, but the heat-stable alkaline phosphatase activity increases 7-fold within 48 hr. The transmission in thermostability is discernible 24 hr after increasing the osmolality of the medium and toward the end of a growth cycle most of the activity is heat-stable.
The folate binding proteins (FBPs) of KB cells which were cultured in normal (N) and folate-deficient (D) medium have been characterized. The 200,000 g supernate of lysed cells contained two FBPs which could be separated by DEAE-Bio-Gel A chromatography, indicating that they differ in ionic charge although they could not be separated by gel filtration through Sephadex G-100 (apparent Mr approximately 40,000). Two species of FBP, a major form of apparent Mr approximately 160,000 and a minor form of apparent Mr approximately 40,000, were identified by gel filtration through Sephadex G-150 in the membrane component of the cells after solubilization with Triton X-100. An additional FBP was isolated and purified by affinity chromatography from the medium in which these cells were cultured. By gel filtration and sodium dodecyl sulfate-polyacrylamide gel electrophoresis, the apparent Mr of this FBP was approximately 44,000. The association constants for pteroylglutamic acid of the FBPs in the 200,000 g cell lysate supernate, culture medium, and Triton-solubilized membrane were similar and the relative affinity of folate analogs for the FBP, vis-à-vis pteroylglutamic acid, was similar for all species. An antiserum raised to the purified FBP from the culture medium precipitated the FBPs in the 200,000 g cell lysate supernate, Triton-solubilized membrane, and culture medium, indicating antigenic homology among these FBPs. There was no unsaturated FBP in the 200,000 g cell lysate supernate or medium when KB cells were cultured in N medium. However, when cells were cultured in D medium, the unsaturated FBP of the 200,000 g cell supernate and culture medium was substantial (9.2 and 14.1 pmol/mg protein, respectively). Unsaturated FBP was detected in the membrane of normal cells but this also increased when these cells were cultured in D medium (4.5 to 756 pmol/mg protein), indicating that the FBPs of these cellular compartments are normally saturated by folate. After 16 weeks of culture in D medium, the total folate binding capacity of the membrane-associated FBP was twofold greater than that of normal KB cells, indicating the induction of FBP.
Ribonucleoside diphosphate reductase (EC 1.17.4.1) (RR) is a potential target for antineoplastic agents due to its crucial role in DNA replication and repair. The expression and activity of RR subunits are highly regulated to maintain an optimal dNTP pool, which is required to maintain genetic fidelity. The human RR small subunit M2B (p53R2) is thought to contribute to DNA repair in response to DNA damage. However, it is not clear whether M2B is involved in providing dNTPs for DNA replication under physiological growth conditions. Serum starvation synchronized studies showed that a rapid increase of M2B was associated with cyclin E, which is responsible for regulation of G(1)/S-phase transition. A living cell sorting study that used KB cells in normal growth, further confirmed that M2B increased to maximum levels at the G(1)/S-phase transition, and decreased with DNA synthesis. Confocal studies revealed that M2B redistributed from the cytoplasm to the nucleus earlier than hRRM2 in response to DNA replication. Nuclear accumulation of M2B is associated with dynamic changes in dNTP at early periods of serum addition. By using M2B-shRNA expression vectors, inhibition of M2B may result in growth retardation in KB cells. We conclude that M2B may translocate from the cytoplasm into the nucleus and allow dNTPs to initiate DNA synthesis in KB cells under physiological conditions. Thus, our findings suggested that M2B might play an important role for initiating DNA replication of KB cells in normal growth.
Viable monolayers of KB cells were maintained without passage for up to one year by adding 2 X 10(-3) M caffeine to the medium, while untreated monolayers degenerated after 2 weeks. When adenoviruses type 2 and 17 were titrated on caffeine-stabilised KB cells, the late breakthrough of cytopathic effect at terminal dilutions (up to 40 days after inoculation) resulted in titre determinations up to 100-fold higher than those measured before spontaneous degeneration in untreated cells. Yields of adenovirus type 2 in caffeine-treated KB cultures infected at different multiplicities and harvested at different intervals were equal to, or up to 100-fold higher than those obtained in untreated cultures.
Pyrazolon derivatives were reported to have cytotoxicity to some tumour cells. In the present study, we investigated the effect of Lgf-YL-9 on cytotoxicity and cell apoptosis in human epidermoid carcinoma drug-sensitive parental KB cells and multidrug resistant (MDR) KBv200 cells. Lgf-YL-9 exhibited potent cytotoxicity not only to KB cells but also to KBv200 cells, and the IC(50) were 3.81 and 3.45 microg/mL in KB cells and KBv200 cells, respectively. Importantly, Lgf-YL-9 effectively inhibited tumour growth of KB cell xenografts in nude mice. Lgf-YL-9-induced cell apoptosis was confirmed by chromatin condensation, DNA fragmentation, Annexin-V and propidium iodide (PI) double-staining assay and poly(ADP-ribose) polymerase (PARP) cleavage. Furthermore, Lgf-YL-9-mediated apoptosis in KB cells and KBv200 cells was accompanied by the loss of mitochondrial membrane potential (DeltaPsi(m)), the release of cytochrome c, and the activation of caspases-3, -7, and -9, but not by intercalating to DNA. Although Lgf-YL-9-induced apoptosis was associated with the decrease of DeltaPsi(m), reactive oxygen species (ROS) reduction was interestingly observed in both cell lines. The data suggest that Lgf-YL-9 has similar cytotoxicity to drug-sensitive parental KB cells and MDR KBv200 cells. Lgf-YL-9-induced apoptosis is involved in a new ROS-independent mitochondrial dysfunction pathway, but not in intercalating to DNA.
We have isolated a nuclear membrane fraction from KB cells infected with human adenovirus 2 that synthesizes exclusively small viral DNA chains (approx. 9 S) in vitro (Yamashita, T., Arens, M. and Green, M. (1975) J. Biol. Chem. 250, 3273-3279). The DNA polymerase activity present in the adenovirus 2 DNA-nuclear membrane complex was purified through chromatography on phosphocellulose and DEAE-cellulose, glycerol gradient centrifuation and DNA-cellulose chromatography. A single peak of enzymatic activity sedimented in glycerol gradients at about 6.7 S which corresponds to a molecular weight of 125000. The enzyme preparation in the step of glycerol gradient centrifugation utilized activated calf thymus, KB cell and adenovirus 2 DNA as template-primer in the presence of Mg2+; Km values for these DNAs were 5.5, 4.0, and 0.8 mug/ml, respectively. The partially purified enzyme preparation was characterized by several criteria which were compared to the properties of the three major mammalian DNA polymerases, alpha, beta, and psi. On the basis of template-primer preference, effect of salt, inhibition by N-ethylmaleimide and Km for dTTP, the DNA polymerase activity from the membrane complex can be distinguished from the alpha and beta DNA polymerases. The elution profile from DNA cellulose revealed a minor peak (I) and a major peak (II) of DNA polymerase activity utilizing poly(A) -(dT)10 as template-primer in the presence of Mn2+ - Peak II from DNA cellulose, which contained about 90% of the total DNA polymerase activity eluted from the column, was 2-3 times as active with poly(A) - (dT)10 as template-primer in the presence of Mn2+ than with activated calf thymus DNA in the presence of Mg2+. On the other hand, peak I had a low ratio of poly(A) - (dT)10 to activated calf thymus DNA activity. DNA polymerase was also purified from the nuclear membrane fraction of uninfected KB cells by the same procedures as those used in enzyme purification from the adenovirus 2 DNA-nuclear membrane complex. A minor peak and a major peak of DNA polymerase activity utilizing poly(A) - (dT)10 as template primer in the presence of Mn2+ were again observed that eluted from DNA cellulose at the same KCl concentrations as peak I and II from adenovirus 2-infected cells. The enzymes of the nuclear membrane fraction of uninfected KB cells could not be differentiated from the enzymes of the adenovirus 2 DNA-nuclear membrane complex through any of the purification steps nor by their template specificities. These results indicate that the predominant enzyme in the adenovirus 2 DNA-nuclear membrane complex and in the KB cell nuclear membrane complex belongs to the class of DNA polymerase psi.
Lines of KB cells resistant to Sendai virus-induced cytolysis have been isolated and characterized (Toyama, S., Toyama, Su., and Uetake, H. (1977) Virology 76, 503-515). This study is concerned with the nature of this mutation. Plasma membrane fractions from Sil cells were found to have decreased amount of sialic acid and the same amount of galactose as compared to the membranes from parental KB cells. Sil cells exhibited an increase in sensitivity to toxic effects of ricin and a decrease in sensitivity to wheat germ agglutinin. Binding of wheat germ agglutinin to Sil cells was markedly decreased. Several membrane glycoproteins of Sil cells migrated slightly faster than the corresponding bands of wild type membrane when examined by gel electrophoresis in sodium dodecyl sulfate. Sil cells had decreased sialyltransferase activity that catalyzed the transfer of sialic acid residues from CMP-N-acetylneuraminic acid to glycoprotein acceptors containing Gal beta 1 leads to 3GalNAc alpha 1 leads to O-Ser(Thr) chain. The decreased enzyme activity could not be accounted for by the presence of inhibitors, altered pH optimum, or increased sialidase or CMP-sialic acid hydrolase activities. These results indicate that a molecular basis for the Sil cell phenotype might be the deficiency of sialyltransferase.
The characteristics of the uptake by human epidermoid carcinoma (KB) cells of 5-methyltetrahydrofolate at extracellular concentrations in the physiologic range and the possible role of a membrane-associated folate binder in folate uptake by KB cells have been investigated. Uptake of 5-methyltetrahydrofolate was specific, saturable, and time-, temperature-, and concentration-dependent. Trypsin treatment released 50% of the 5-methyltetrahydrofolate accumulated by KB cells at 4 degrees C, but only 12% at 37 degrees C, indicating that most of the accumulated ligand was intracellular at 37 degrees C, thus demonstrating transport. Accumulated 5-methyltetrahydrofolate was bound to a membrane-associated protein which required detergent for its solubilization, and a significant amount of which was oriented to the cell exterior as demonstrated by its release by trypsin treatment of intact KB cells. The membrane-associated folate binder was immunoprecipitated by antiserum to purified human placental folate receptor, and this antiserum inhibited 5-methyltetrahydrofolate uptake by intact KB cells in a concentration-dependent manner. These data support the hypothesis that the membrane-associated folate-binding protein of human cells participates in the transport of folates under physiologic conditions.
Crude extracts of human KB cells grown in suspension culture contain enzyme activity that catalyzes the preferential excision of thymine-containing pyrimidine dimers from UV-irradiated E. coli DNA specifically incised adjacent to dimer sites. Fractionation of KB cell crude extracts reveals the presence of three such activities with distinct affinities for both DEAE-cellulose and phosphocellulose. One of the activities (activity B) is distinguished by its s 20,w (2.6) and isoelectric point (9.0) from the other two (activities A and C) which have similar s 20,w's (3.0-3.2) and isoelectric points (6.0). All three differ in their extent of stimulation by divalent cation and inhibition by NaCl or a sulfhydryl group inhibitor. These results indicate that multiple 5' leads to 3' dimer excision nuclease activities exist in human cells; however, there is as yet no direct evidence that these enzymes are functional in nucleotide excision repair in vivo.
Type II DNA topoisomerase breaks both DNA strands, and many anticancer agents including etoposide (VP-16) and teniposide (VM-26) have been developed by targeting topoisomerase II molecules. In this study we examined whether expression of the topoisomerase II gene is regulated in response to heat shock stress in human epidermoid cancer KB cells. Exposure of KB cells to 42 degrees C for 3 to 24 h permitted cell growth at a slightly reduced rate but still at an exponential rate, in comparison with that at 37 degrees C, whereas exposure to 45 degrees C for 15 to 120 min caused the almost complete cessation of exponential growth. There appeared 5-fold or higher increases in mRNA levels of both topoisomerase II and a heat shock protein, hsp-70, after exposure to 42 degrees C for 3 h, but only a slight, if any, increase in topoisomerase I mRNA. Nuclear run-on assays showed increased transcription of topoisomerase II and the hsp-70 gene after exposure to 42 degrees C. By contrast, KB cells induced a rapid and transient increase of topoisomerase II mRNA after exposure to 45 degrees C for 15 to 30 min, whereas the cellular level of hsp-70 mRNA was dramatically enhanced 60 min after exposure to 45 degrees C. The immunoblot assay also demonstrated increased expression of topoisomerase II in KB cells exposed to 42 degrees C. Decatenation activity of the nuclear extracts from KB cells was increased 1.5-fold by exposure to 42 degrees C, but there appeared no increase in topoisomerase I activity. Prior exposure of KB cells to 42 degrees C enhanced the cytotoxicity of VP-16, but not that of a topoisomerase I-targeting agent, a camptothecin analogue, CPT-11. However, exposure of KB cells to 42 degrees C after treatment with VP-16 did not enhance the cytotoxicity induced by the drug. The formation of cleavable DNA-topoisomerase II-VP-16 complexes was also greatly increased by prior exposure to 42 degrees C. Our present study proposes the hypothesis that the topoisomerase II gene might be one of the heat-shock-inducible genes and that hyperthermic anticancer therapy with topoisomerase II-targeting antitumor agents can be improved.