Literature DB >> 24692698

Quercetin-3-O-glucoside induces human DNA topoisomerase II inhibition, cell cycle arrest and apoptosis in hepatocellular carcinoma cells.

Sudhanshu Sudan1, H P Vasantha Rupasinghe.   

Abstract

BACKGROUND: Dietary flavonoids have been associated with reduced risk of cancer including hepatocellular carcinoma (HCC). Quercetin-3-O-glucoside (Q3G) has been shown to possess anti-proliferative and antioxidant activities. The objectives of this study were to assess the anti-proliferative properties of Q3G in human liver cancer cells (HepG2); assess the cytotoxicity on normal primary cells; and elucidate its possible mechanism of action(s).
MATERIALS AND METHODS: Using a dose- and time-dependent study, we evaluated the antiproliferative properties of Q3G in HepG2 cells using MTS cell viability assay and lactate dehydrogenase release assay. To elucidate the mechanism of action, we performed cell-cycle analysis using flow cytometry. Cell death via apoptosis was analyzed by DNA fragmentation assay, caspase-3 induction assay and fluorescence microscopy. DNA topoisomerase II drug screening assay was performed to assess the effect of Q3G on DNA topoisomerase II.
RESULTS: Q3G treatment inhibited cell proliferation in a dose- and time-dependent manner in HepG2 cells with the blockade of the cell cycle in the S-phase. Additionally, Q3G exhibited a strong ability to inhibit DNA topoisomerase II. Furthermore, DNA fragmentation and fluorescence microscopy analysis suggested that Q3G induced apoptosis in HepG2 cells with the activation of caspase-3. Interestingly, Q3G exhibited significantly lower toxicity to normal cells (primary human and rat hepatocytes and primary lung cells) than sorafenib (p<0.05), a chemotherapy drug for hepatocellular carcinoma. The results suggest that Q3G is a potential antitumor agent against liver cancer with a possible mechanism of action via cell-cycle arrest and apoptosis. Further research should be performed to confirm these results in vivo.

Entities:  

Keywords:  HepG2 cells; Quercetin-3-O-glucoside; apoptosis; cancer; caspase-3; cell cycle; topoisomerase II

Mesh:

Substances:

Year:  2014        PMID: 24692698

Source DB:  PubMed          Journal:  Anticancer Res        ISSN: 0250-7005            Impact factor:   2.480


  16 in total

1.  Antiproliferative activity of long chain acylated esters of quercetin-3-O-glucoside in hepatocellular carcinoma HepG2 cells.

Authors:  Sudhanshu Sudan; Hp Vasantha Rupasinghe
Journal:  Exp Biol Med (Maywood)       Date:  2015-02-13

2.  Regulation of the Intracellular ROS Level Is Critical for the Antiproliferative Effect of Quercetin in the Hepatocellular Carcinoma Cell Line HepG2.

Authors:  Ji-Sook Jeon; Sora Kwon; Kiwon Ban; Young- Kwon Hong; Curie Ahn; Jung-Suk Sung; Inho Choi
Journal:  Nutr Cancer       Date:  2019-01-19       Impact factor: 2.900

3.  Quercetin induces caspase-dependent extrinsic apoptosis through inhibition of signal transducer and activator of transcription 3 signaling in HER2-overexpressing BT-474 breast cancer cells.

Authors:  Hye-Sook Seo; Jin Mo Ku; Han-Seok Choi; Youn Kyung Choi; Jong-Kyu Woo; Minsoo Kim; Ilhwan Kim; Chang Hyeok Na; Hansol Hur; Bo-Hyoung Jang; Yong Cheol Shin; Seong-Gyu Ko
Journal:  Oncol Rep       Date:  2016-05-05       Impact factor: 3.906

4.  Dual Inhibition of Topoisomerase II and Tyrosine Kinases by the Novel Bis-Fluoroquinolone Chalcone-Like Derivative HMNE3 in Human Pancreatic Cancer Cells.

Authors:  Yong-Chao Ma; Zhi-Xin Wang; Shao-Ju Jin; Yan-Xin Zhang; Guo-Qiang Hu; Dong-Tao Cui; Jiang-Shuan Wang; Min Wang; Fu-Qing Wang; Zhi-Jun Zhao
Journal:  PLoS One       Date:  2016-10-19       Impact factor: 3.240

5.  HBx-related long non-coding RNA DBH-AS1 promotes cell proliferation and survival by activating MAPK signaling in hepatocellular carcinoma.

Authors:  Jin-lan Huang; Ting-yu Ren; Shun-wang Cao; Shi-hao Zheng; Xiu-mei Hu; Yan-wei Hu; Li Lin; Jing Chen; Lei Zheng; Qian Wang
Journal:  Oncotarget       Date:  2015-10-20

6.  Mining expression and prognosis of topoisomerase isoforms in non-small-cell lung cancer by using Oncomine and Kaplan-Meier plotter.

Authors:  Guo-Xin Hou; Panpan Liu; Jing Yang; Shijun Wen
Journal:  PLoS One       Date:  2017-03-29       Impact factor: 3.240

Review 7.  Natural Compounds as Modulators of Cell Cycle Arrest: Application for Anticancer Chemotherapies.

Authors:  Natalia Bailon-Moscoso; Gabriela Cevallos-Solorzano; Juan Carlos Romero-Benavides; Maria Isabel Ramirez Orellana
Journal:  Curr Genomics       Date:  2017-04       Impact factor: 2.236

8.  Antitumor Effects of Quercetin in Hepatocarcinoma In Vitro and In Vivo Models: A Systematic Review.

Authors:  Paula Fernández-Palanca; Flavia Fondevila; Carolina Méndez-Blanco; María J Tuñón; Javier González-Gallego; José L Mauriz
Journal:  Nutrients       Date:  2019-11-25       Impact factor: 5.717

9.  Identification of differentially expressed genes in non-small cell lung cancer.

Authors:  Ke Wang; Ruo Chen; Zhuan Feng; Yu-Meng Zhu; Xiu-Xuan Sun; Wan Huang; Zhi-Nan Chen
Journal:  Aging (Albany NY)       Date:  2019-12-09       Impact factor: 5.682

Review 10.  Therapeutic Implications for Overcoming Radiation Resistance in Cancer Therapy.

Authors:  Byeong Mo Kim; Yunkyung Hong; Seunghoon Lee; Pengda Liu; Ji Hong Lim; Yong Heon Lee; Tae Ho Lee; Kyu Tae Chang; Yonggeun Hong
Journal:  Int J Mol Sci       Date:  2015-11-10       Impact factor: 5.923

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