1.MS-5, a Naphthalene Derivative, Induces the Apoptosis of an Ovarian Cancer Cell CAOV-3 by Interfering with the Reactive Oxygen Species Generation.
Eunsook MA ; Seon Ju JEONG ; Joon Seok CHOI ; Thi Ha NGUYEN ; Chul Ho JEONG ; Sang Hoon JOO
Biomolecules & Therapeutics 2019;27(1):48-53
Reactive oxygen species (ROS) are widely generated in biological processes such as normal metabolism and response to xenobiotic exposure. While ROS can be beneficial or harmful to cells and tissues, generation of ROS by diverse anti-cancer drugs or phytochemicals plays an important role in the induction of apoptosis. We recently identified a derivative of naphthalene, MS-5, that induces apoptosis of an ovarian cell, CAOV-3. Interestingly, MS-5 induced apoptosis by down-regulating the ROS. Cell viability was evaluated by water-soluble tetrazolium salt (WST-1) assay. Apoptosis was evaluated by flow cytometry analysis. Intracellular ROS (H₂O₂), mitochondrial superoxide, mitochondrial membrane potential (MMP) and effect on cycle were determined by flow cytometry. Protein expression was assessed by western blotting. The level of ATP was measured using ATP Colorimetric/Fluorometric Assay kit. MS-5 inhibited growth of ovarian cancer cell lines, CAOV-3, in a concentration- and time-dependent manner. MS-5 also induced G1 cell cycle arrest in CAOV-3 cells, while MS-5 decreased intracellular ROS generation. In addition, cells treated with MS-5 showed the decrease in MMP and ATP production. In this study, we found that treatment with MS-5 in CAOV-3 cells induced apoptosis but decreased ROS level. We suspect that MS-5 might interfere with the minimum requirements of ROS for survival. These perturbations appear to be concentration-dependent, suggesting that MS-5 may induce apoptosis by interfering with ROS generation. We propose that MS-5 may be a potent therapeutic agent for inducing apoptosis in ovarian cancer cell through regulation of ROS.
Adenosine Triphosphate
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Apoptosis*
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Biological Processes
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Blotting, Western
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Cell Line
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Cell Survival
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Flow Cytometry
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G1 Phase Cell Cycle Checkpoints
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Membrane Potential, Mitochondrial
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Metabolism
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Ovarian Neoplasms*
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Phytochemicals
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Reactive Oxygen Species*
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Superoxides
2.MS-5, a Naphthalene Derivative, Induces Apoptosis in Human Pancreatic Cancer BxPC-3 Cells by Modulating Reactive Oxygen Species
Suman GIRI ; Gyu Hwan PARK ; Joon-Seok CHOI ; Eunsook MA ; Kyung-Soo CHUN ; Sang Hoon JOO
Biomolecules & Therapeutics 2023;31(1):68-72
Pancreatic cancer is one of the most fatal cancers with a poor prognosis. Standard chemotherapies have proven largely ineffective because of their toxicity and the development of resistance. Therefore, there is an urgent need to develop novel therapies. In this study, we investigated the antitumor activity of MS-5, a naphthalene derivative, on BxPC-3, a human pancreatic cancer cell line. We observed that MS-5 was cytotoxic to BxPC-3 cells, as well as inhibited the growth of cells in a concentration- and time- dependent manner. Flow cytometry analysis revealed that the percentage of annexin V-positive cells increased after MS-5 treatment. We also observed cleavage of caspases and poly (ADP-ribose) polymerase, and downregulation of Bcl-xL protein. Flow cytometry analysis of intracellular levels of reactive oxygen species (ROS) and mitochondrial superoxide suggested that MS-5 induced the generation of mitochondrial superoxide while lowering the overall intracellular ROS levels. Thus, MS-5 may be potential candidate for pancreatic cancer treatment.
3.Alterations of Gefitinib Pharmacokinetics by Co-administration of Herbal Medications in Rats.
Kwon-Yeon WEON ; Min Gi KIM ; Soyoung SHIN ; Tae Hwan KIM ; Sang Hoon JOO ; Eunsook MA ; Seok Won JEONG ; Sun Dong YOO ; Yu Seok YOUN ; Beom Soo SHIN
Chinese journal of integrative medicine 2018;24(6):460-466
OBJECTIVETo evaluate the potential pharmacokinetic interactions of the anticancer agent gefitinib (Iressa®) and the oriental medications Guipi Decoction (, GPD, Guibi-tang in Korean) and Bawu Decoction (, BWD, Palmul-tang in Korean).
METHODSMethylcellulose (MC, control), GPD (1,200 mg/kg), or BWD (6,000 mg/kg) was orally administered to rats either as a single dose or multiple doses prior to gefitinib administration. To examine the effects of a single dose of the herbal medicines, gefitinib (10 mg/kg) was orally administered after 5 min or 1 h of MC or the herbal medicine pretreatments. To examine the effects of the multiple doses of the herbal medicines, gefitinib (10 mg/kg) was orally administered following 7 consecutive days of the administration of MC or each herbal medicine. The plasma concentrations of gefitinib were determined with liquid chromatography-tandem mass spectrometry assay. The plasma concentration-time profiles of gefitinib were analyzed with a noncompartmental analysis.
RESULTSGefitinib was rapidly absorbed and showed a monoexponential decline with an elimination half-life of 3.7-4.1 h. The pharmacokinetics of gefitinib was not affected by GPD pretreatment. However, a significantly lower maximum plasma concentration (C, P<0.05) and area under the curve (P<0.05), and a delayed time to reach C (T, P<0.01) were observed in both single- and multipledose BWD-pretreated rats compared with the control rats.
CONCLUSIONSBWD and not GPD might delay and interfere with gefitinib absorption. Further evaluations of the clinical significance of these findings are needed.
Animals ; Chromatography, Liquid ; Dose-Response Relationship, Drug ; Drugs, Chinese Herbal ; pharmacology ; Male ; Quinazolines ; administration & dosage ; blood ; pharmacokinetics ; Rats, Sprague-Dawley ; Tandem Mass Spectrometry ; Time Factors