Literature DB >> 21823019

miR-125b confers resistance of ovarian cancer cells to cisplatin by targeting pro-apoptotic Bcl-2 antagonist killer 1.

Fanfei Kong1,2, Chaoyang Sun1, Zhongxian Wang1, Lingfei Han2, Danhui Weng1, Yunping Lu1, Gang Chen3.   

Abstract

Chemotherapy is the preferred therapeutic approach for advanced ovarian cancer, but a successful long-term treatment is prevented by the development of drug resistance. Recent works have underlined the involvement of non-coding RNAs, microRNAs (miRNAs) in cancer development, with several conjectures regarding their possible involvement in the evolution of drug resistance. This study is to investigate the promoting effects and mechanism of miR-125b involved in the development of chemoresistance in ovarian cancer. The different expression of miR-125b in cisplatin-sensitive ovarian cancer cell line (OV2008) and its resistant variant (C13*) was identified by real-time PCR. An in vitro cytotoxicity assay and apoptosis assay using CCK-8 assay and flow cytometry, were carried out to detect the effect of miR-125b and Bak1 on cisplatin resistance of cells. Real-time PCR, Western blotting and luciferase reporter assay were used to detect whether Bak1 is a target of miR-125b. As compared with OV2008 cells, the expression levels of miR-125b in C13* cells were increased. It was found that the up-regulation of microRNA-125b caused a marked inhibition of cisplatin-induced cytotoxicity and apoptosis and a subsequent increase in the resistance to cisplatin in OV2008 and C13* cells. Moreover, Bak1 was a direct target of miR-125b, and down-regulation of Bak1 suppressed cisplatin-induced apoptosis and led to an increased resistance to cisplatin. Our study indicates that miR-125b has a significantly promoting effect on chemoresistance of C13* cells and up-regulation of miR-125b expression contributes to cisplatin resistance through suppression of Bak1 expression. This finding has important implications in the development of targeted therapeutics for overcoming cisplatin resistance in ovarian cancer.

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Year:  2011        PMID: 21823019     DOI: 10.1007/s11596-011-0487-z

Source DB:  PubMed          Journal:  J Huazhong Univ Sci Technolog Med Sci        ISSN: 1672-0733


  25 in total

Review 1.  Biological characterization of ovarian cancer: prognostic and therapeutic implications.

Authors:  F Legge; G Ferrandina; V Salutari; G Scambia
Journal:  Ann Oncol       Date:  2005-05       Impact factor: 32.976

2.  Survival benefits with diverse chemotherapy regimens for ovarian cancer: meta-analysis of multiple treatments.

Authors:  Maria Kyrgiou; Georgia Salanti; Nicholas Pavlidis; Evangelos Paraskevaidis; John P A Ioannidis
Journal:  J Natl Cancer Inst       Date:  2006-11-15       Impact factor: 13.506

Review 3.  Role of microRNA in anticancer drug resistance.

Authors:  Tongsen Zheng; Jiabei Wang; Xi Chen; Lianxin Liu
Journal:  Int J Cancer       Date:  2010-01-01       Impact factor: 7.396

4.  MicroRNA-125b confers the resistance of breast cancer cells to paclitaxel through suppression of pro-apoptotic Bcl-2 antagonist killer 1 (Bak1) expression.

Authors:  Ming Zhou; Zixing Liu; Yuhua Zhao; Yan Ding; Hao Liu; Yaguang Xi; Wei Xiong; Guiyuan Li; Jianrong Lu; Oystein Fodstad; Adam I Riker; Ming Tan
Journal:  J Biol Chem       Date:  2010-05-11       Impact factor: 5.157

5.  MicroRNA signatures in human ovarian cancer.

Authors:  Marilena V Iorio; Rosa Visone; Gianpiero Di Leva; Valentina Donati; Fabio Petrocca; Patrizia Casalini; Cristian Taccioli; Stefano Volinia; Chang-Gong Liu; Hansjuerg Alder; George A Calin; Sylvie Ménard; Carlo M Croce
Journal:  Cancer Res       Date:  2007-09-15       Impact factor: 12.701

Review 6.  Ovarian cancer: strategies for overcoming resistance to chemotherapy.

Authors:  Roshan Agarwal; Stan B Kaye
Journal:  Nat Rev Cancer       Date:  2003-07       Impact factor: 60.716

7.  Role of microRNAs in drug-resistant ovarian cancer cells.

Authors:  Antonio Sorrentino; Chang-Gong Liu; Antonio Addario; Cesare Peschle; Giovanni Scambia; Cristiano Ferlini
Journal:  Gynecol Oncol       Date:  2008-09-26       Impact factor: 5.482

8.  DNA damage response and MCL-1 destruction initiate apoptosis in adenovirus-infected cells.

Authors:  Andrea Cuconati; Chandreyee Mukherjee; Denise Perez; Eileen White
Journal:  Genes Dev       Date:  2003-11-21       Impact factor: 11.361

9.  miR-15a and miR-16 are implicated in cell cycle regulation in a Rb-dependent manner and are frequently deleted or down-regulated in non-small cell lung cancer.

Authors:  Nora Bandi; Samuel Zbinden; Mathias Gugger; Marlene Arnold; Verena Kocher; Lara Hasan; Andreas Kappeler; Thomas Brunner; Erik Vassella
Journal:  Cancer Res       Date:  2009-06-23       Impact factor: 12.701

10.  The transcriptional landscape of the mammalian genome.

Authors:  P Carninci; T Kasukawa; S Katayama; J Gough; M C Frith; N Maeda; R Oyama; T Ravasi; B Lenhard; C Wells; R Kodzius; K Shimokawa; V B Bajic; S E Brenner; S Batalov; A R R Forrest; M Zavolan; M J Davis; L G Wilming; V Aidinis; J E Allen; A Ambesi-Impiombato; R Apweiler; R N Aturaliya; T L Bailey; M Bansal; L Baxter; K W Beisel; T Bersano; H Bono; A M Chalk; K P Chiu; V Choudhary; A Christoffels; D R Clutterbuck; M L Crowe; E Dalla; B P Dalrymple; B de Bono; G Della Gatta; D di Bernardo; T Down; P Engstrom; M Fagiolini; G Faulkner; C F Fletcher; T Fukushima; M Furuno; S Futaki; M Gariboldi; P Georgii-Hemming; T R Gingeras; T Gojobori; R E Green; S Gustincich; M Harbers; Y Hayashi; T K Hensch; N Hirokawa; D Hill; L Huminiecki; M Iacono; K Ikeo; A Iwama; T Ishikawa; M Jakt; A Kanapin; M Katoh; Y Kawasawa; J Kelso; H Kitamura; H Kitano; G Kollias; S P T Krishnan; A Kruger; S K Kummerfeld; I V Kurochkin; L F Lareau; D Lazarevic; L Lipovich; J Liu; S Liuni; S McWilliam; M Madan Babu; M Madera; L Marchionni; H Matsuda; S Matsuzawa; H Miki; F Mignone; S Miyake; K Morris; S Mottagui-Tabar; N Mulder; N Nakano; H Nakauchi; P Ng; R Nilsson; S Nishiguchi; S Nishikawa; F Nori; O Ohara; Y Okazaki; V Orlando; K C Pang; W J Pavan; G Pavesi; G Pesole; N Petrovsky; S Piazza; J Reed; J F Reid; B Z Ring; M Ringwald; B Rost; Y Ruan; S L Salzberg; A Sandelin; C Schneider; C Schönbach; K Sekiguchi; C A M Semple; S Seno; L Sessa; Y Sheng; Y Shibata; H Shimada; K Shimada; D Silva; B Sinclair; S Sperling; E Stupka; K Sugiura; R Sultana; Y Takenaka; K Taki; K Tammoja; S L Tan; S Tang; M S Taylor; J Tegner; S A Teichmann; H R Ueda; E van Nimwegen; R Verardo; C L Wei; K Yagi; H Yamanishi; E Zabarovsky; S Zhu; A Zimmer; W Hide; C Bult; S M Grimmond; R D Teasdale; E T Liu; V Brusic; J Quackenbush; C Wahlestedt; J S Mattick; D A Hume; C Kai; D Sasaki; Y Tomaru; S Fukuda; M Kanamori-Katayama; M Suzuki; J Aoki; T Arakawa; J Iida; K Imamura; M Itoh; T Kato; H Kawaji; N Kawagashira; T Kawashima; M Kojima; S Kondo; H Konno; K Nakano; N Ninomiya; T Nishio; M Okada; C Plessy; K Shibata; T Shiraki; S Suzuki; M Tagami; K Waki; A Watahiki; Y Okamura-Oho; H Suzuki; J Kawai; Y Hayashizaki
Journal:  Science       Date:  2005-09-02       Impact factor: 47.728

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  33 in total

Review 1.  Emerging diagnostic, prognostic and therapeutic biomarkers for ovarian cancer.

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Journal:  Cell Oncol (Dordr)       Date:  2016-12-15       Impact factor: 6.730

2.  A carvedilol-responsive microRNA, miR-125b-5p protects the heart from acute myocardial infarction by repressing pro-apoptotic bak1 and klf13 in cardiomyocytes.

Authors:  Ahmed S Bayoumi; Kyoung-Mi Park; Yongchao Wang; Jian-Peng Teoh; Tatsuya Aonuma; Yaoliang Tang; Huabo Su; Neal L Weintraub; Il-Man Kim
Journal:  J Mol Cell Cardiol       Date:  2017-11-07       Impact factor: 5.000

3.  miR-125b regulates cell progression in chronic myeloid leukemia via targeting BAK1.

Authors:  Quan Li; Yaohui Wu; Yongkang Zhang; Huapeng Sun; Zhaoli Lu; Ke Du; Shanshan Fang; Weiming Li
Journal:  Am J Transl Res       Date:  2016-02-15       Impact factor: 4.060

Review 4.  MicroRNAs in lung cancer.

Authors:  Pooja Joshi; Justin Middleton; Young-Jun Jeon; Michela Garofalo
Journal:  World J Methodol       Date:  2014-06-26

5.  Expression of miR-146a in patients with ovarian cancer and its clinical significance.

Authors:  Miłosz Wilczyński; Ewelina Żytko; Bożena Szymańska; Monika Dzieniecka; Marek Nowak; Justyna Danielska; Grzegorz Stachowiak; Jacek R Wilczyński
Journal:  Oncol Lett       Date:  2017-06-23       Impact factor: 2.967

6.  Inhibitory effects of microRNA-34a on cell migration and invasion of invasive urothelial bladder carcinoma by targeting Notch1.

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Journal:  J Huazhong Univ Sci Technolog Med Sci       Date:  2012-06-09

7.  Hybrid-polymerase chain reaction to identify novel target genes of miR-134 in paclitaxel resistant human ovarian carcinoma cells.

Authors:  Ting Shuang; Min Wang; Shuang Chang
Journal:  Oncol Lett       Date:  2015-04-23       Impact factor: 2.967

8.  MiR-106a targets Mcl-1 to suppress cisplatin resistance of ovarian cancer A2780 cells.

Authors:  Yu-Mei Rao; Hui-Rong Shi; Mei Ji; Cai-Hong Chen
Journal:  J Huazhong Univ Sci Technolog Med Sci       Date:  2013-08-01

9.  MicroRNA-155 promotes apoptosis in SKOV3, A2780, and primary cultured ovarian cancer cells.

Authors:  Wei Chen; Liuxuan Huang; Chenjun Hao; Wenshu Zeng; Xu Luo; Xiaodi Li; Longshu Zhou; Songshan Jiang; Zheng Chen; Yuanli He
Journal:  Tumour Biol       Date:  2016-01-15

10.  Serum microRNA 125b as a diagnostic or prognostic biomarker for advanced NSCLC patients receiving cisplatin-based chemotherapy.

Authors:  En-hai Cui; Hong-jiao Li; Feng Hua; Bin Wang; Wei Mao; Xue-ren Feng; Jian-you Li; Xiang Wang
Journal:  Acta Pharmacol Sin       Date:  2012-09-17       Impact factor: 6.150

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