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DNA topoisomerase I-mediated formation of structurally modified DNA duplexes. Effects of metal ions and topoisomerase I inhibitors.

The ability of DNA topoisomerase I to mediate the formation of structurally modified DNA duplexes was studied utilizing suicide substrates containing high-efficiency cleavage sites and acceptor oligonucleotides in which the 5'-terminal nucleotides were varied. When the substrates were nicked duplexes, the divalent cations Mg2+ and Ca2+ were found to facilitate the topoisomerase I-mediated formation of ligation products containing 3-nucleotide deletions on the scissile strand, but to suppress the formation of 1-nucleotide deletions. The presence of a complementary nucleotide at the 5'-end of the acceptor strand was not required for the ligation reaction to proceed, but duplex formation to produce duplexes containing a mismatch proceeded more slowly than formation of the fully complementary duplex. Topoisomerase I-mediated mismatch formation in the ligation reaction was inhibited more readily by camptothecin than the corresponding ligation reaction to form a fully complementary duplex; the extent of inhibition was comparable for all three mismatches studied. In comparison, the topoisomerase I inhibitors nitidine and coralyne exhibited quite different effects on the same ligation reactions.

Animals↗

Synthesis and evaluation of new 6-amino-substituted benzo[c]phenanthridine derivatives.

Different 7,8,9,10-tetrahydrobenzo[c]phenanthridin-6(5H)-ones (10a-e) were prepared by using a one-pot procedure which includes the preparation of various 6- and 7-alkoxy-1-naphthylisocyanates from 1-naphthylamines and triphosgene, followed by addition of 1-N-morpholino-1-cyclohexenes, and cyclization of the resulting amides upon heating in the presence of hydrogen chloride. Subsequent aromatization, chlorination, and substitution with (dimethylamino)alkylamines, followed by a demethylation or a selective desisopropylation, allowed us to synthesize the derivatives 6a-i and 7a-h bearing a [(dimethylamino)alkyl]amino side chain at their 6-position. These compounds, as the other analogs 5a-b, were devised to further study the structure-activity relationships in the benzo[c]phenanthridine family of antitumor alkaloids led by fagaronine (1a) and nitidine (1b). Topoisomerases I and II cleavable complex assay and evaluation of the cytotoxicity and antitumor properties were performed. In vitro cytotoxicity (L1210 and Calc 18) shows a relationship between the cytotoxicity of these compounds and their topoisomerase poisoning properties. However, all these compounds were devoid of significant antitumor effect on the P388 murine leukemia system.

Adenocarcinoma↗

Potential anticancer agents XXXI. N-demethylation of fagaronine.

Fusion of fagaronine (1) afforded N-demethyl fagaronine (2) and two minor desmethyl products. Through examination of spectral properties and derivatization, the structures were deduced to be 3, a tetramethoxy derivative, and 5, a derivative bearing a hydroxy (rather than a methoxy) group at position-8. Acetylation of 2 afforded a monoacetate derivative (4), and similarly, a diacetate (6) was produced from 5. Compounds 2-6 were substantially less cytotoxic than 1, as judged by KB or P-388 cell culture assays, supporting the functional importance of the quaternary nitrogen atom. The results obtained to date for fagaronine in tumor panel-testing are also presented, and the marginal cytotoxic activity demonstrated by compounds 5 and 6 against cultured P-388 cells is discussed in terms of mechanisms of action of the parent compound.

Alkaloids↗

Chemical and bioactive constituents from Zanthoxylum simulans.

Two new benzo[c]phenanthridine alkaloids, 6-methyldihydrochelerythrine [1] and 6-methylnorchelerythrine [2], together with 23 known compounds, were isolated from the root bark of Zanthoxylum simulans. Structures were elucidated by spectral analysis. Among them, the pyranoquinoline alkaloids, zanthosimuline [3], and huajiaosimuline [4], exhibited cytotoxic activity. In addition, compound 4 showed significant antiplatelet aggregation activity and induced terminal differentiation with cultured HL-60 cells.

Animals↗

New protopine and benzyltetrahydroprotoberberine alkaloids from Aristolochia constricta and their activity on isolated guinea-pig ileum.

Five new protopine-type alkaloids, 3,5-di-O-methylconstrictosine (1), 5,6-dihydro-3,5-di-O-methylconstrictosine (2), 5,6-dihydroconstrictosine (3), constrictosine (4), 3-O-methylconstrictosine (5), and a novel 8-benzylberberine-type alkaloid, (-)-8 beta-(4'-hydroxybenzyl)-2,3-dimethoxyberbin-10-ol (6) were isolated from the aerial parts of Aristolochia constricta. Their structures were elucidated by physical and spectroscopic data. The results of our pharmacological experiments indicated that MeOH extract, its partially purified fraction VI and the protopine derivatives constrictosine 1-5, significantly reduced, in a dose dependent manner, the electrical, acetylcholine, and histamine contractions of the isolated guinea-pig ileum.

Acetylcholine↗

Revision of the structure of fagaridine based on the comparison of UV and NMR data of synthetic compounds.

Fagaridine is a quaternary benzo[c]phenanthridine alkaloid, originally isolated from Fagara xanthoxyloides in 1973. The assigned structure of this alkaloid was 7-hydroxy-8-methoxy-5-methyl-2, 3-(methylenedioxy)benzo[c]phenanthridinium (1). We have synthesized this compound, coded NK109, aiming at a practical antitumor drug, and during synthetic studies we questioned the original assigned structure. Thus, we synthesized 8-hydroxy-7-methoxy-5-methyl-2, 3-(methylenedioxy)benzo[c]phenanthridinium (2), isomer of the assigned structure, and compared the spectroscopic data of both 1 and 2. The NMR data of 1 and 2 were very similar, but the UV spectra were completely different. The UV data for fagaridine agreed with these for 2; consequently, the true structure of fagaridine is 2, not 1.

Antineoplastic Agents, Phytogenic↗

Structural considerations of NK109, an antitumor benzo[c]phenanthridine alkaloid.

The antitumor activities of a synthetic benzo[c]phenanthridine, NK109 (7-hydroxy-2, 3-methylenedioxy-5-methyl-8-methoxybenzo[c]phenanthridinium hydrogensulfate dihydrate), and of natural benzo[c]phenanthridines were tested in vitro and in vivo. NK109 (3) had the highest activity among them. NK109 is similar in structure to fagaronine and fagaridine; however, it has a phenolic-OH at C-7. NK109 exists as a resonance hybrid, the keto-amine and zwitterionic forms in neutral media. The resonance hybrid is cationic and has molecular planarity; these have been considered to be essential for the antitumor activity of the benzo[c]phenanthridinium salts. On the other hand, the structurally similar benzo[c]phenthridine alkaloids, chelerythrine and sanguinarine, exist as pseudobases under the same conditions. The latter do not exhibit antitumor activity in vivo, probably because they lose both the immonium region and molecular planarity. Thus, 3 may be considered to be novel category of benzo[c]phenanthridinium salt from the viewpoint of its structure under biological conditions.

Animals↗

Synthesis and cytotoxic activities of a new benzo[c]phenanthridine alkaloid, 7-hydroxynitidine, and some 9-oxygenated benzo[c]phenanthridine derivatives.

[formula: see text] A new benzo[c]phenanthridine alkaloid, 7-hydroxynitidine, was synthesized by a novel synthetic procedure. The cytotoxic activity of this compound against HeLa S3 cells was strong, but not greater than those of its mother compounds, nitidine and NK109. We also synthesized other 9-oxygenated benzo[c]phenanthridine alkaloids, 7-methoxynitidine, 9-demethylnitidine, nitidine, and fagaronine, and tested their cytotoxic activities. These results suggest that the 7-hydroxy group enhances antitumor activity and an 8- or 9-hydroxy group weakens this activity.

Antineoplastic Agents↗

Mechanisms whereby glucose deprivation triggers metabolic preconditioning in the isolated rat heart.

Transient glucose deprivation of the heart [GLU (-)] confers a preconditioning-like protection against subsequent ischemic/reperfusion (I/R). The mechanisms involved remain unclear. We hypothesized that GLU (-) would induce the classic ischemic preconditioning activated signaling cascade. Potential metabolic consequences and putative cell signaling events induced by transient glucose deprivation were evaluated as candidate mediators of this cardioprotection. Isolated glucose-perfused rat hearts were subjected to 30 min global ischemia followed by 30 min reperfusion (index I/R). Cardiac contractile recovery following I/R was used as the functional end-point in these studies. Metabolic preconditioning was stimulated by 15 min GLU (-) followed by 10 min glucose repletion prior to the index I/R. The potential metabolic consequences of GLU (-) were evaluated by using excess octanoate (11 mM OCT Hi) or 11 mM 2-deoxy-D-glucose (2-DG) in place of GLU (-) and by combining GLU (-) with fuels known to inhibit glycolysis supply (20 mM pyruvate or 1 mM octanoate, OCT Lo). The roles of alpha-adrenoceptors, beta-adrenoceptors, adenosine receptors, protein kinase C (PKC) and mitochondrial K(ATP) channels were investigated using inhibitors prazosin (10 microM), propranolol (10 microM), 8-(p-sulfophenyl) theophylline, (SPT 100 microM), chelerythrine (CHEL 10 microM) and 5-hydroxydecanoate (5 HD 100 microM) respectively. GLU (-) increased mechanical recovery (59.8 +/- 4.0 vs. 32.3 +/- 4.7%; p < 0.01). Protection was abolished by pyruvate 26.6 +/- 3.1; SPT 36.6 +/- 3.0; CHEL 35 +/- 4.8 or 5 HD 23.8 +/- 3.3%. In a separate set of experiments, the specificity of SPT in this model was tested by preconditioning with adenosine (100 microM) (34.7 +/- 4 vs. control 16.8 +/- 1.3%, p = 0.01) and blocking this protection with the same dose of SPT (16.3 +/- 1 .5%) used in the GLU (-) studies. Protection was unaltered by prazosin (50.2 +/- 3.3%), propranolol (55.5 +/- 4.0%), or OCT Lo (50.2 +/- 2.5%). Protection was not mimicked by OCT Hi (35.6 +/- 3.8%) or 2-DG (34 +/- 4.3%). Transient glucose deprivation does not seem to achieve preconditioning-like cardioprotection by decreased glycolysis. Rather, the signal system may involve enhanced adenosine release, PKC, and activation of the mitochondrial K(ATP) channel.

Adrenergic alpha-Antagonists↗

Interaction of benzo[c]phenanthridine and protoberberine alkaloids with animal and yeast cells.

We compared the effects of four quaternary benzo[c]phenanthridine alkaloids--chelerythrine, chelilutine, sanguinarine, and sanguilutine--and two quaternary protoberberine alkaloids-berberine and coptisine--on the human cell line HeLa (cervix carcinoma cells) and the yeasts Saccharomyces cerevisiae and Schizosaccharomyces japonicus var. versatilis. The ability of alkaloids to display primary fluorescence, allowed us to record their dynamics and localization in cells. Cytotoxic, anti-microtubular, and anti-actin effects in living cells were studied. In the yeasts, neither microtubules nor cell growth was seriously affected even at the alkaloid concentration of 100 microg/ml. The HeLa cells, however, responded to the toxic effect of alkaloids at concentrations ranging from 1 to 50 microg/ml. IC50 values for individual alkaloids were: sanguinarine IC50 = 0.8 microg/ml, sanguilutine IC50 = 8.3 microg/ml, chelerythrine IC50 = 6.2 microg/ml, chelilutine IC50 = 5.2 microg/ml, coptisine IC50 = 2.6 microg/ml and berberine IC50 > 10.0 microg/ml. In living cells, sanguinarine produced a decrease in microtubule numbers, particularly at the cell periphery, at a concentration of 0.1 microg/ml. The other alkaloids showed a similar effect but at higher concentrations (5-50 microg/ml). The strongest effects of sanguinarine were explained as a consequence of its easy penetration through the cell membrane owing to nonpolar pseudobase formation and to a high degree of molecular planarity.

Alkaloids↗

Ethanol alters glutamate but not adenosine uptake in rat astrocytes: evidence for protein kinase C involvement.

Glutamate is the primary excitatory neurotransmitter in brain. By stimulating neuronal activity, glutamate increases cellular energy utilization, enhances ATP hydrolysis and promotes the formation of adenosine. Adenosine has receptor-mediated effects that reduce or oppose the excitatory effects of glutamate. As a possible mechanism for ethanol's ability to inhibit excitatory effects of glutamate and enhance inhibitory effects of adenosine, we tested the hypothesis that ethanol promotes [3H]glutamate uptake and inhibits [3H]adenosine uptake. Using primary cultures of rat astrocytes, we found that acute treatment with ethanol (50 mM, 30 min) inhibited [3H]glutamate uptake and reduced protein kinase C (PKC)-induced stimulation of [3H]glutamate uptake. Prolonged treatment (50 mM, 3 day) with ethanol, however, increased both [3H]glutamate uptake and PKC activity. Contrary to other cell types, neither acute or chronic ethanol exposure affected [3H]adenosine uptake in astrocytes. These data indicate that in rat cortical astrocytes ethanol affects [3H]glutamate uptake but not [3H]adenosine uptake by affecting PKC modulation of transporter activity.

Adenosine↗

Effect of modulators of protein kinase C activity on Ca2+ transport in retinal rod microsomes.

The effect of modulators of protein kinase C (PKC) activity on Ca2+ translocation in retinal rod microsomes was studied. It is shown that PKC activators (phorbol 12-myristate-13-acetate (PMA) and diacylglycerol (DAG)) and inhibitors (chelerythrine chloride, polymyxin B, and phloretin) stimulate and inhibit ATP-dependent Ca2+ uptake in retinal rod microsomes, respectively. This effect is apparently due to an influence of PKC on Ca-ATPase contained in these vesicular structures. It was found that PKC inhibitors (chelerythrine chloride, polymyxin B, and phloretin) and activators (PMA and DAG) potentiate Ca2+ release from Ca2+-loaded retinal rod microsomes. Specific and nonspecific mechanisms of Ca-release stimulation by the modulators of PKC activity are discussed.

Alkaloids↗

Activation of glutamate receptors inhibits Na/K-ATPase of cerebellum granule cells.

Na/K-ATPase prepared from cerebellum granule cells of 10-12-day-old mice is inhibited by glutamate and its agonists, NMDA (ligand for ionotropic receptors) and ACPD (ligand for metabotropic receptors). The inhibition is specific and prevented by subsequent antagonists (MK-801 for ionotropic NMDA-receptors and MCPG for metabotropic receptors). The inhibiting effect of NMDA is significantly reversed by cysteine and that of ACPD by chelerythrine or indolyl maleimide. It is concluded that ionotropic receptors inhibit Na/K-ATPase because of intracellular production of reactive oxygen species, and metabotropic receptors mediate their effect via protein kinase C.

Alkaloids↗

Effect of protein kinase C activation and inhibition on rat hepatic stellate cell activation.

Protein kinase C (PKC) may play a role in the intracellular signaling pathways responsible for transforming hepatic stellate cells into myofibroblasts. This study examined the effects of inhibitors and activators of PKC on hepatic stellate cell activation. Stellate cells isolated from normal rats were incubated with either 10(-5) M chelerythrine, 10(-7) M bisindolylmaleimide I hydrochloride (BIM), or 10(-6) M staurosporine (PKC inhibitors), or 10(-7) M phorbol myristate acetate (PMA) or 10(-6) M thymeleatoxin (PKC activators). Chelerythrine suppressed alpha-smooth muscle actin expression and proliferation by 49% and 33%, respectively. BIM inhibited alpha-smooth muscle actin expression by 60%, but had no significant effect on proliferation. Staurosporine decreased proliferation by 86% and completely prevented alpha-smooth muscle actin expression. PKC activators had divergent effects on proliferation and alpha-smooth muscle actin expression. PMA and thymeleatoxin caused a 2.8- to 3.2-fold increase in proliferation, while suppressing alpha-smooth muscle actin expression by 50-70%. The demonstration that hepatic stellate cell activation can be suppressed by PKC inhibitors suggests a role for PKC in the regulation of hepatic stellate cell activation.

Actins↗

Preischemic infusion of alpha-human atrial natriuretic peptide elicits myoprotective effects against ischemia reperfusion in isolated rat hearts.

Carperitide, a synthetic alpha-human atrial natriuretic peptide (ANP) is a newly developed drug for the treatment of heart failure. However, effects of carperitide on susceptibility to ischemia reperfusion injury are left to be determined. Isolated rat hearts were subjected to Langendorff perfusion. Six hearts received 0.1 microM of carperitide for 10 min, 6 hearts received 1 mM of a NO synthetase inhibitor N(G)-nitro-L-arginine methyl ester (L-NAME) for 5 min before the infusion of carperitide, 6 hearts received 0.02 microM of a PKC synthetase inhibitor chelerythrine chloride for 5 min before the infusion of carperitide, 6 hearts received 100 microM of a selective mitochondrial ATP-sensitive potassium (KATP) channel blocker 5-dehydroxydecanoate (5HD) before the infusion of carperitide, 6 hearts received 10 microM of a soluble guanylate cyclase inhibitor methylene blue for 5 min before the infusion of carperitide, and 6 hearts served as a control with no drug infusion. All hearts were then subjected to 20 min of global ischemia followed by 120 min of reperfusion. Left ventricular pressures and coronary flow were measured throughout the experiment and infarct size was detected at the end of experiment. Both plasma and tissue cGMP levels were also determined. The results showed: (1) Carperitide significantly reduced infarct size compared to control (26.1 +/- 2.8 vs. 42.7 +/- 2.3%, carperitide vs. control, p < 0.05). This effect was reversed by L-NAME, chelerythrine and 5HD, but not methylene blue. (2) Plasma cGMP levels were increased in carperitide-treated group. This effect was reversed by L-NAME (0.16 +/- 0.03 vs. 1.04 +/- 0.09* vs. 0.28 +/- 0.02 nmol/L, control vs. carperitide vs. L-NAME, *p < 0.01 vs. control). We conclude that preischemic infusion of carperitide exerts cardioprotective effects possibly through NO-PKC dependent pathway followed by mitochondrial KATP channel activation.

Adenosine Triphosphate↗

Pharmacological inhibition of protein kinase C activity could induce apoptosis in gastric cancer cells by differential regulation of apoptosis-related genes.

The protein kinase C (PKC) signaling pathway plays a key role in tumor cell proliferation, differentiation, and apoptosis. Gastric cancer usually possesses a higher level of PKC activity than normal tissue. We evaluated inhibition of PKC activity in apoptosis induction of gastric cancer cells and the expression profile of apoptosis-related genes. Gastric cancer cells (AGS) were incubated with two highly specific PKC inhibitors (RO-31-8220 and chelerythrine). Cell viability and cell cycle were determined by methyl-tetrazolium (MTT) assay and flow cytometry, respectively. Apoptosis was characterized by acridine orange staining, DNA gel electrophoresis, and flow cytometry. The expression of p53, p21(waf/cip1), c-myc, bcl-2, and bax was determined by western blot. The results showed that both PKC inhibitors hindered cell growth, arrested cells at G0/G1 phase and induced apoptosis. The protein level of p53, p21(waf/cip1), c-myc, and bax was elevated while bcl-2 kept unchanged following drug exposure. In conclusion, PKC inhibitors suppress growth of gastric cancer cells through apoptosis induction and cell cycle quiescence, which may be regulated by differential expression of apoptosis-related genes.

Adenocarcinoma↗

Protein kinase C inhibitor chelerythrine disrupts memory formation in chicks.

Chelerythrine (CHELE), a specific, potent protein kinase C (PKC) inhibitor, disrupts memory formation for a one-trial peck-avoidance task. Three predictions were made about how CHELE, injected into chick brain near the time of training, would affect memory formation, based on previous work with two classes of protein kinase inhibitors (M. R. Rosenzweig et al., 1992; P. A. Serrano et al., 1994) and the in vitro inhibition of PKC by CHELE: (a) CHELE, injected into the intermediate medial hyperstriatum ventrale, would significantly impair memory formation; (b) the amnestic dose would be approximately 10 nmol; (c) CHELE would not produce amnesia for about 45 min after training, but significantly impair memory by 60 min. Experimental tests confirmed each prediction. This study adds to evidence that PKC activity is part of a cascade of neurochemical events initiated by learning and that PKC activity shortly after training is necessary for long-term memory.

Alkaloids↗