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Effects of modulators of multidrug resistance on the expression of the MDR1 gene on human KB cells in culture.

The effect of four modulators of multidrug resistance (MDR) on the expression of the MDR1 gene was studied in two resistant variants of the KB cell lines, KB V1 and KB A1. This was done using a semi-quantitative assay based on mRNA reverse transcription coupled with polymerase chain reaction of the cDNA obtained. An automatic DNA sequencer was used for the measurement of the fluorescent amplification products and the MDR1 signal was compared to that of the beta-actin gene of the cells. After 24 h incubation with 15 microM of the modulators, MDR1 gene expression was slightly but significantly decreased by two of them, quinine and cyclosporine A, whereas verapamil and S-9788 had very little effect on this parameter. The effect were more pronounced in the KB A1 line than in the KB V1 line. The effect of quinine was studied over a longer time period (4-48 h) and was shown to be maximum at 24 h. These results favor the existence of a direct effect of some MDR reverters, especially quinine, on the expression of the MDR1 gene and could partially explain their modulating effect of MDR.

Antibiotics, Antineoplastic↗

KB cells for antinuclear antibody determination: comparison with HEp-2 cells and the Crithidia luciliae assay.

Fifty-seven sera from 53 patients were assayed simultaneously on KB and HEp-2 cells and compared with regard to pattern and titer. Additionally, KB cell fluorescent antinuclear antibody (FANA) titer and pattern in 310 sera from 194 patients were compared with regard to the presence of antinative DNA antibodies (anti-nDNA ab) as determined by the Crithidia luciliae assay. Sixty-five percent (37/57) of the sera had the same titer on both KB and HEp-2 cells; the remainder had higher titers using KB cells. Regression analysis yielded a highly significant, unbiased correlation between the substrates. Forty-four percent (25/57) of these sera gave identical patterns on both substrates, another 25 of the 57 sera (44%) gave different patterns on the two substrates and 12% (7/57) could not be compared because they were negative on HEp-2 cells. KB cells detected positive FANA in 30 of 30 (100%) diagnosed cases of systemic lupus erythematosus; HEp-2 cells detected 29/30 (97%). From the standpoint of sensitivity, these data indicate a slight advantage to the use of KB over HEp-2 cells. Seventeen percent (53/310) of the sera were positive for anti-nDNA ab. The highest percentage of these positive sera occurs at reciprocal FANA titers between 320 and 1280. No association was found between KB FANA patterns and a positive Crithidia luciliae assay.

Antibodies, Antinuclear↗

Overexpression of ribonucleotide reductase in transfected human KB cells increases their resistance to hydroxyurea: M2 but not M1 is sufficient to increase resistance to hydroxyurea in transfected cells.

Ribonucleotide reductase (RR) is a rate-limiting enzyme in DNA synthesis. The enzyme consists of two subunits, M1 and M2. Hydroxyurea (HU) is an M2-specific inhibitor. It has been shown that a HU-resistant clone derived from stepwise exposure to HU overexpresses the M2 mRNA and the RR protein (Y. Yen et al., Cancer Res., 54: 3868-3691, 1994). In this study, we established stable clones by transfecting human KB cells with the cDNA of human wild-type RR in which each subunit was overexpressed by a SV40 promoter. The mammalian cell expression vector ph beta APr-1 was used for constructing M1, M2, and M1/M2 subunit cDNA. The transfected cells were selected with G418. The clones designated M2-D, M1-D, X-D, and KB-V represent transfectant clones which contain M2 cDNA, M1 cDNA, M1/M2 cDNA, and vector alone, respectively. The parental KB cells and clones containing vector plasmid KB-V express equally low amounts of M2 and M1 mRNA from the endogenous genes. The expression of M2 mRNA and M1 mRNA is elevated 2-3 fold in the X-D transfectants. M2-D clone demonstrated a 6-fold higher M2 mRNA level although the M1 mRNA expression remains the same as parental cells. M1-D transfectants have a 3-fold increase in M1 mRNA expression relative to parental cells, but reveal no alteration of M2 mRNA. Southern analysis of genomic DNA suggested the incorporation of the plasmid into the genome. The X-D clone revealed both integration of the M2 and M1 gene while the M2-D clone only showed M2 gene integration. The M1-D clone revealed M1 gene integration relative to the parental cells. The Western blot of M2 protein showed a 3-fold increase in the X-D and M2-D clones whereas the M2 protein level in M1-D was the same as it was in parental cells. The M1 protein was increased 3-fold in X-D and 1.5-fold in M1-D over that of parental cells. However, lower M1 protein levels were identified in the M2-D clone. The specific activity of the RR enzyme from each transfectant showed a 3-fold increase in both the X-D and M2-D clones and slightly increased in M1-D clone over that of parental cells. However, X-D and M2-D both demonstrated a 3-fold increase in resistance to HU as compared to M1-D which showed the same sensitivity as the parental enzyme.(ABSTRACT TRUNCATED AT 400 WORDS)

Blotting, Southern↗

The effect of crude preparations of vaccinia on mitosis and DNA synthesis of KB cells.

A morphologic study has been made on KB cells infected with various doses of vaccinia as to DNA synthesis and mitosis. Determination of mitotic indices revealed that the mitotic cell pool depended on the proportion of infected cells and the time after infection. By cytologic examination neither mitotic lesions were found nor an accumulation of mitotic cells at any one stage of mitosis was demonstrated. Radioautographs of infected cultures have shown that the frequency of cells labeled over nuclei was significantly increased as compared with control cultures. Following the greatest dose of virus (multiplicity of 20 PFU/cell) the ratio of cells synthesizing DNA to mitotic cells increased from 45:5 at 5 hr to 50:0 at 50 hr. Concommittant with the appearance of this disparity between the DNA-synthesizing cell pool and mitotic cell pool the nuclei of cells became "lightly" labeled. Following the lowest dose of virus (multiplicity of 0.0002 PFU/cell) the increase of the fraction of mitotic cells was proportional to the increase of the fraction of cells which were labeled over nuclei.

Cell Division↗

Morphologic characterization of the pathway of transferrin endocytosis and recycling in human KB cells.

The pathway of transferrin uptake and recycling was investigated in KB cells to attempt to identify the organelles involved in the return of transferrin to the cell surface. Comparison was made with the pathway of internalization of epidermal growth factor (EGF), which has been shown to terminate in lysosomes. A horseradish peroxidase conjugate of transferrin (TF-HRP) was incubated with KB and at 4 degrees C and, at various times after warming to 37 degrees C, the location of TF-HRP was examined at the electron microscopic level. Transferrin, like EGF, was found to enter cells via coated pits and to move to the Golgi region in receptosomes (endosomes). Transferrin was located in the tubular elements of the transreticular portion of the Golgi but not in Golgi stacks. Interestingly, transferrin was not concentrated in the coated pits of the Golgi. In contrast, EGF was highly concentrated there. Transferrin was next detected in tubular elements (approximately equal to 600 A in width and up to 5,000 A in length) that were closely associated with microtubules and in dumbbell-shaped structures. In contrast, EGF was not detected in these structures. These results suggest that those organelles containing transferrin, but not EGF, participate in the return of receptor-bound transferrin to the cell surface.

Biological Transport↗

Expression of KB cell alkaline phosphatase isoenzymes during growth in immunosuppressed LEW rats.

Alkaline phosphatase isoenzyme expression of human tumor xenografts was studied by the growing of KB cells in immunosuppressed neonatal LEW rats. In culture these cells produced the oncoamniotic (FL) isoenzyme as the major form and the Regan isoenzyme as a minor fraction as well as a "hybrid" that shared properties of both of the other isoenzymes. Despite a reduction in specific activity, this isoenzyme pattern was essentially unchanged during in vivo growth. KB cells "pretreated" in culture with the glucocorticoid prednisolone in hyperosmolal medium exhibited a decrease in the levels of the oncoamniotic (FL) isoenzyme and an increase in the Regan isoenzyme. During growth of pretreated cells in vivo, a time-dependent resumption in the expression of the oncoamniotic (FL) isoenzyme was associated with the disappearance of the Regan isoenzyme. This shows that the expression of the oncoamniotic (FL) isoenzyme is not restricted to human tumor cells monophenotypic with respect to alkaline phosphatase.

Alkaline Phosphatase↗

Time and sequence dependence of hydroxyurea in combination with gemcitabine in human KB cells.

Gemcitabine (Gem) is a deoxycytidine analogue whose active metabolite, dFdCTP, blocks DNA elongation and has a cytotoxic effect. Hydroxyurea (HU) is an S-phase specific inhibitor of ribonucleotide reductase (RR) with a broad spectrum of antitumor effects. We report here that low-dose HU enhanced the activity of Gem in a time- and sequence-dependent manner. Exposure of human oropharyngeal carcinoma KB cells to HU followed by the addition of Gem at various times significantly enhanced cytotoxicity when compared to controls. The greatest enhancement of cytotoxicity occurred when Gem was added 8 hours after HU. By treating KB cells with radiolabeled-Gem following HU treatment, we further confirmed that the incorporation of dFdCTP into DNA increased 6-fold over control reactions under these conditions. The mechanism of the time- and sequence-dependent enhancement is associated with a decrease in hRRM2 RNA, protein, and activity between 4 and 8 hours. The subsequent depletion of dNTP pools allows for increased incorporation of dFdCTP into cells arrested in S-phase, resulting in higher levels of cytotoxicity than either treatment alone.

Antineoplastic Combined Chemotherapy Protocols↗

Aspergillus species strain M39 produces two naphtho-gamma-pyrones that reverse drug resistance in human KB cells.

One thousand fungi and Actinomycetes were investigated to see whether they produced compounds that reverse multi-drug resistance in KB cells. Only one Aspergillus strain M39 produced agents with resistance-reversing activity and these compounds were identified to be rubrofusarin B and dianhydro-aurasperone C. Rubrofusarin B only slightly reversed the resistance of KB-C2 cells to Adriamycin and daunomycin, partially reversed the resistance to chromomycin A3, and almost completely reversed the resistance to vincristine and mitomycin C. Purified dianhydro-aurasperone C and rubrofusarin B had similar effects on drug resistance in KB-8-5 cells. Dianhydro-aurasperone C enhanced the accumulation of vinblastine in KB-8-5 cells and inhibited the efflux of vinblastine from the cells. Dianhydro-aurasperone C and rubrofusarin B at 10 microM completely inhibited 3H-azidopine photolabelling of P-glycoprotein. The two products of Aspergillus strain M39 appear to reverse multi-drug resistance by interacting with P-glycoprotein and inhibiting its role as an active efflux pump.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

rac p21 is involved in insulin-induced membrane ruffling and rho p21 is involved in hepatocyte growth factor- and 12-O-tetradecanoylphorbol-13-acetate (TPA)-induced membrane ruffling in KB cells.

Insulin and hepatocyte growth factor (HGF) induced morphologically different membrane rufflings in KB cells. Insulin-induced membrane ruffling was inhibited by microinjection of rho GDI, an inhibitory GDP/GTP exchange regulator for both rho p21 and rac p21 small GTP-binding proteins, but not inhibited by microinjection of botulinum exoenzyme C3, known to selectively ADP-ribosylate rho p21 and to impair its function. This rho GDI action was prevented by comicroinjection with guanosine 5'-(3-O-thio)triphosphate (GTP gamma S)-bound rac1 p21. In contrast, HGF-induced membrane ruffling was inhibited by microinjection of rho GDI or C3. This rho GDI action was prevented by comicroinjection with GTP gamma S-bound rhoA p21, and this C3 action was prevented by comicroinjection with GTP gamma S-bound rhoAIle-41 p21, which is resistant to C3. Microinjection of either GTP gamma S-bound rac1 p21 or rhoA p21 alone induced membrane ruffling in the absence of the growth factors. The rac1 p21-induced membrane ruffling was morphologically similar to the insulin-induced kind, whereas rhoA p21-induced ruffling was apparently different from both the insulin- and HGF-induced kinds. Membrane ruffling was also induced by 12-O-tetradecanoylphorbol-13-acetate (TPA), a protein kinase C-activating phorbol ester, but not by Ca2+ ionophore or microinjection of a dominant active Ki-ras p21 mutant (Ki-rasVal-12 p21). The phorbol ester-induced membrane ruffling was morphologically similar to the rhoA p21-induced kind and inhibited by microinjection of rho GDI or C3. These results indicate that rac p21 and rho GDI are involved in insulin-induced membrane ruffling and that rho p21 and rho GDI are involved in HGF- and phorbol ester-induced membrane rufflings.

ADP Ribose Transferases↗

Cytoplasmic DNA synthesis in rhinovirus type 14-inoculated KB cells.

Rhinovirus type 14 (RV14) incuced a transient statistically significant stimulation in synthesis of DNA which appeared between 0 and 3 h post-inoculation in the cytoplasm of high density monolayer cultures of KB cells. Newly synthesized DNA was measured by incorporation of [3H] thymidine into acid-insoluble DNAase-sensitive material and the cytoplasmic location established by cell fractionation and electron microscope radioautographic methods. A minimum of 10 plaque-forming units per cell of RV14 was required to stimulate DNA synthesis which did not occur above 34.5 degrees C, a temperature optimal for virus replication. Cytoplasmic DNA taken from RV14-infected or control cells could be differentiated from the bulk of cell (nuclear) DNA by several criteria, including: (1) RV14 induction of synthesis; (2) lower buoyant density and greater heterogeneity in CsCl and ethidium bromide/CsCl gradients; and (3) a different kinetic complexity upon reannealing. The Cot 1/2 value of cytoplasmic DNA, calclated as 50--100 from reassociation profiles, was about 10-fold less complex than the Cot 1/2 value of nuclear DNA (800-1000). These data rule out the possibility that cytoplasmic DNA arises by random breakage of nuclear DNA during cell disruption and extraction and are compatible with the hypothesis that inoculation of KB cells with RV14 results in stimulation of synthesis of a specific class of cell DNA which is detected in the cytoplasm.

Cell Line↗

Molecular cloning and characterization of the human folate-binding protein cDNA from placenta and malignant tissue culture (KB) cells.

Human folate-binding proteins (FBPs) are single chain glycoproteins that contain a high affinity binding site for folates and methotrexate and occur in a soluble or membrane-associated form. The membrane-associated FBP is involved in the uptake of physiologic folates and methotrexate. In this study, human FBP cDNA clones were isolated from human malignant nasopharyngeal carcinoma (KB) cell and placental cDNA libraries by means of oligonucleotide probes derived from determined internal amino acid sequences. The longest cDNA nucleotide sequence is 1126 base pairs and encodes a polypeptide that contains 257 amino acid residues (calculated molecular mass = 29,817). The deduced amino acid sequence is 80% homologous to a bovine soluble FBP, is greater than 99% homologous to the reported partial amino acid sequence of the human soluble FBP, contains three potential N-linked glycosylation sites, and has hydrophobic amino- and carboxylterminal regions which are consistent with a signal peptide and a potential membrane-anchoring domain, respectively. On Northern blot analysis, radiolabeled cDNA probes hybridize to a single 1100-base pair mRNA species that is expressed to a variable degree in human KB cells, placenta, brain, and epithelial mRNA but is not detectable in human liver mRNA. In vitro translation of RNA transcripts from the FBP cDNA inserts yields a 30-kDa and a 42-kDa polypeptide in the absence and presence of microsomal membranes, respectively.

Amino Acid Sequence↗

Insulin-like growth factors, insulin, and epidermal growth factor cause rapid cytoskeletal reorganization in KB cells. Clarification of the roles of type I insulin-like growth factor receptors and insulin receptors.

Insulin-like growth factor (IGF) I (greater than or equal to 10(-10)M, insulin-like growth factor II (greater than or equal to 10(-9) M), insulin (greater than or equal to 10(-9) M, and epidermal growth factor (EGF, greater than or equal to 10(-11) M) caused rapid membrane ruffling in KB cells. The morphological change was observed within 1 min after the addition of these growth factors and was accompanied by microfilament reorganization, but not by microtubule reorganization. IGF-I, IGF-II, and insulin induced morphologically very similar or identical membrane ruffles with the order of potency IGF-I greater than IGF-II greater than insulin, whereas EGF-induced membrane ruffles were morphologically different. KB cells possessed EGF receptors, type I IGF receptors, and insulin receptors, but few or no type II IGF receptors. Monoclonal antibody against type I IGF receptors, which completely inhibited the binding of 125I-IGF-I to the cells but did not inhibit the binding of 125I-insulin, caused marked inhibition of IGF-I (10(-8) M)-stimulated membrane ruffling. IGF-II (10(-8) M)-stimulated membrane ruffling was partially inhibited in the presence of this antibody, but insulin (10(-7) M)-stimulated membrane ruffling was only slightly inhibited. In contrast, monoclonal antibody against insulin receptors blocked insulin (10(-7) M) stimulation, but not IGF-I (10(-8) M) stimulation, of membrane ruffling. Thus, this study provides evidence that IGF-I and insulin act mostly through their own (homologous) receptors and that IGF-II acts by cross-reacting with both type I IGF and insulin (heterologous) receptors in causing rapid alterations in cytoskeletal structure.

Antibodies, Monoclonal↗

S-phase detailed analysis in KB cells by bromdeoxyuridine labelling.

A method based on the sequential BrdU incorporation followed by differential spiralization of the chromosomes was used for analysis of S-phase in KB cells when Brdu was added to the cultures for 19, 24 and 26 hours before fixation. The S-phase was subdivided into three subphases, each recognisable by a specific incorporation pattern at metaphase: late-S (LS), middle-S (MS) and early -S (ES). Two other intermediary subphases, mid-early S (mES) and mid-late S (mLS) have also been distinguished but their accurate identification is generally difficult. A high degree of asynchrony in KB cells population was observed as well as a wide variability concerning the duration of S-phase (BrdU = bromdeoxyuridine).

Bromodeoxyuridine↗

Developmental expression of the embryonic chicken brain DNA polymerase alpha and its binding with monoclonal antibodies against human KB cell DNA polymerase alpha.

Changes in DNA polymerase alpha activity accompanying tissue development have been well established in several systems. In most cases, DNA polymerase alpha activity decreases with development. Here, we report observed changes in DNA polymerase alpha activity throughout embryonic chicken brain (ECB) development. The level of DNA polymerase alpha activity was found to gradually decrease by 60% (2.3 to 0.8 nmol of [3H]dCMP incorporated/mg protein/h) between 9- and 19-day-old ECB. An enzyme-linked immunosorbent assay of DNA polymerase alpha utilizing monoclonal antibody SJK 237-71 (human KB cell DNA pol-alpha binder) also demonstrated a gradual decrease (up to 60%) of antigen over this same range of development. Analysis of DNA polymerase alpha from 11- and 19-day-old ECB by a 10 to 30% glycerol density gradient revealed a high molecular weight peak sedimenting near catalase (11.3 S) with activity at the 11th day being approximately 3-fold greater than activity at the 19th day. A Western immunoblot analysis utilizing monoclonal antibody SJK 237-71 (against human KB cell DNA polymerase alpha) showed a decrease in DNA polymerase alpha from 186 kilodaltons in 9- and 11-day ECB cell-free extracts to 120 kilodaltons in extracts from 13- to 19-day ECB. The conversion of DNA polymerase alpha from a higher to a lower molecular weight form may be a regulatory mechanism in eukaryotic DNA replication.

Animals↗

[Enzymatic characteristics of the guanylate cyclase of KB cells: their change as a function of the development of the cultures].

We have localized 71% of the guanylate cyclase activity in the (G X 105,000) supernatent fraction of broken KB cells. The reaction follows Michaelis-Menten kinetics, the apparent Km for GTP is 0,5 mM, as long as GTP is lower than a limited concentration, then activity is inhibited. The ion Mn++ is an absolutely required activator, it does not change enzyme-substrate affinity. The enzyme shows several types of binding sites of Mn++. Guanylate cyclase, studied over a period of development of culture, shows, in KB cells without cell contact, an activity higher than that observed in confluent cells. This is not due to the fact of a change in enzyme-substrate affinity but to a modification of Mn++ influence.

Cell Adhesion↗

Camptothecin resistance involving steps subsequent to the formation of protein-linked DNA breaks in human camptothecin-resistant KB cell lines.

To identify mechanisms of camptothecin (CPT) resistance/toxicity, sublines from a human KB cell line were made resistant to CPT by continuous selection in increasing concentrations of CPT. Two CPT-resistant lines, 100 and 300, were 32- and 54-fold resistant to the growth-inhibitory properties of CPT compared to the KB line. After CPT-free culturing, partial revertant lines were established from each resistant line. These partial revertant lines, 100rev and 300rev, were 2.5- and 3.2-fold resistant to CPT compared to KB. When growth inhibition and toxicity were compared, the resistant lines alone displayed an enhanced cytostatic response to CPT. The resistant and partial revertant lines displayed no cross-resistance to etoposide or cisplatin. Comparisons of topoisomerase I (TOPI) activity, content, and protein-linked DNA break production by CPT revealed that resistant and partial revertant lines had one-half the levels as KB, with TOP1 activity that was equally sensitive to CPT in all cell lines tested. However, double-stranded DNA break induction by CPT was significantly reduced only in the resistant lines. Coincubation with 3-aminobenzamide, an inhibitor of poly(ADP-ribosyl) polymerase, potentiated CPT toxicity in the resistant lines alone, without affecting CPT: TOP1 interactions. Therefore, CPT resistance in the 100 and 300 lines was characterized by factors independent of TOP1, specific for CPT, and attenuated by poly(ADP-ribosyl) polymerase inhibition. This resistant phenotype produced fewer double-stranded DNA breaks and enhanced a cytostatic response to CPT.

Benzamides↗