Literature DB >> 22456335

MYC directs transcription of MCL1 and eIF4E genes to control sensitivity of gastric cancer cells toward HDAC inhibitors.

Wajana L Labisso1, Matthias Wirth, Natasa Stojanovic, Roland H Stauber, Angelika Schnieke, Roland M Schmid, Oliver H Krämer, Dieter Saur, Günter Schneider.   

Abstract

Histone deacetylases (HDACs) control fundamental physiological processes such as proliferation and differentiation. HDAC inhibitors (HDACi) induce cell cycle arrest and apoptosis of tumor cells. Therefore, they represent promising cancer therapeutics that appear particularly useful in combination therapies. Although HDACi are tested in current clinical trials, the molecular mechanisms modulating the cellular responses toward HDACi are incompletely understood. To gain insight into pathways that limit HDACi efficacy in gastric cancer, we treated a panel of gastric cancer cells with the clinically relevant HDACi suberoylanilide hydroxamic acid (SAHA). We report that higher expression levels of the anti-apoptotic BCL2 family members MCL1 and BCL(XL) were detectable in cells with high inhibitory concentration 50 (IC(50)) values for SAHA. Using RNAi, we show that MCL1 and BCL(XL) lower the efficacy of SAHA. To find strategies to interfere with MCL1 and BCL(XL) expression, we investigated molecular regulation of both proteins. We show that specific siRNAs against c-MYC as well as pharmacological inhibition of this cancer-relevant transcription factor reduced MCL1 and BCL(XL) expression. Subsequently, we observed an increase in SAHA efficacy. Our data furthermore demonstrate that two different molecular mechanisms are responsible for the modulation of these factors. Whereas c-MYC controls transcription of MCL1 directly, regulation of BCL(XL) was due to c-MYC's capability to regulate the eIF4E gene, which encodes a rate-limiting factor of eukaryotic translation. Our data reveal a new molecular mechanism for how c-MYC controls cell autonomous apoptosis and provide a rationale for a concerted inhibition of HDACs and c-MYC in gastric cancer.

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Year:  2012        PMID: 22456335     DOI: 10.4161/cc.20008

Source DB:  PubMed          Journal:  Cell Cycle        ISSN: 1551-4005            Impact factor:   4.534


  33 in total

1.  Decreased DHRS2 expression is associated with HDACi resistance and poor prognosis in ovarian cancer.

Authors:  Yingyan Han; Zhi Wang; Shujuan Sun; Zeyu Zhang; Jia Liu; Xin Jin; Peng Wu; Teng Ji; Wencheng Ding; Beibei Wang; Qinglei Gao
Journal:  Epigenetics       Date:  2019-09-03       Impact factor: 4.528

2.  Cisplatin-mediated c-myc overexpression and cytochrome c (cyt c) release result in the up-regulation of the death receptors DR4 and DR5 and the activation of caspase 3 and caspase 9, likely responsible for the TRAIL-sensitizing effect of cisplatin.

Authors:  Xingchao Zhu; Kaiguang Zhang; Qiaomin Wang; Si Chen; Yawen Gou; Yufang Cui; Qin Li
Journal:  Med Oncol       Date:  2015-03-22       Impact factor: 3.064

3.  CDK7 inhibition suppresses super-enhancer-linked oncogenic transcription in MYCN-driven cancer.

Authors:  Edmond Chipumuro; Eugenio Marco; Camilla L Christensen; Nicholas Kwiatkowski; Tinghu Zhang; Clark M Hatheway; Brian J Abraham; Bandana Sharma; Caleb Yeung; Abigail Altabef; Antonio Perez-Atayde; Kwok-Kin Wong; Guo-Cheng Yuan; Nathanael S Gray; Richard A Young; Rani E George
Journal:  Cell       Date:  2014-11-06       Impact factor: 41.582

4.  MicroRNA-561 inhibits gastric cancercell proliferation and invasion by downregulating c-Myc expression.

Authors:  Kun Qian; Binglang Mao; Wei Zhang; Huanwen Chen
Journal:  Am J Transl Res       Date:  2016-09-15       Impact factor: 4.060

5.  The soy isoflavone equol may increase cancer malignancy via up-regulation of eukaryotic protein synthesis initiation factor eIF4G.

Authors:  Columba de la Parra; Elisa Otero-Franqui; Michelle Martinez-Montemayor; Suranganie Dharmawardhane
Journal:  J Biol Chem       Date:  2012-10-24       Impact factor: 5.157

6.  Biological effects of the Pim kinase inhibitor, SGI-1776, in multiple myeloma.

Authors:  Fabiola Cervantes-Gomez; Lisa S Chen; Robert Z Orlowski; Varsha Gandhi
Journal:  Clin Lymphoma Myeloma Leuk       Date:  2013-08-27

7.  MYC and MCL1 Cooperatively Promote Chemotherapy-Resistant Breast Cancer Stem Cells via Regulation of Mitochondrial Oxidative Phosphorylation.

Authors:  Kyung-Min Lee; Jennifer M Giltnane; Justin M Balko; Luis J Schwarz; Angel L Guerrero-Zotano; Katherine E Hutchinson; Mellissa J Nixon; Mónica V Estrada; Violeta Sánchez; Melinda E Sanders; Taekyu Lee; Henry Gómez; Ana Lluch; J Alejandro Pérez-Fidalgo; Melissa Magdalene Wolf; Gabriela Andrejeva; Jeffrey C Rathmell; Stephen W Fesik; Carlos L Arteaga
Journal:  Cell Metab       Date:  2017-10-03       Impact factor: 27.287

Review 8.  Saga of Mcl-1: regulation from transcription to degradation.

Authors:  Viacheslav V Senichkin; Alena Y Streletskaia; Anna S Gorbunova; Boris Zhivotovsky; Gelina S Kopeina
Journal:  Cell Death Differ       Date:  2020-01-06       Impact factor: 15.828

9.  PIM1 kinase regulates cell death, tumor growth and chemotherapy response in triple-negative breast cancer.

Authors:  Fara Brasó-Maristany; Simone Filosto; Steven Catchpole; Rebecca Marlow; Jelmar Quist; Erika Francesch-Domenech; Darren A Plumb; Leila Zakka; Patrycja Gazinska; Gianmaria Liccardi; Pascal Meier; Albert Gris-Oliver; Maggie Chon U Cheang; Anna Perdrix-Rosell; Manar Shafat; Elodie Noël; Nirmesh Patel; Kristen McEachern; Maurizio Scaltriti; Pau Castel; Farzana Noor; Richard Buus; Sumi Mathew; Johnathan Watkins; Violeta Serra; Pierfrancesco Marra; Anita Grigoriadis; Andrew N Tutt
Journal:  Nat Med       Date:  2016-10-24       Impact factor: 53.440

10.  HDAC1 and HDAC2 integrate the expression of p53 mutants in pancreatic cancer.

Authors:  N Stojanovic; Z Hassan; M Wirth; P Wenzel; M Beyer; C Schäfer; P Brand; A Kroemer; R H Stauber; R M Schmid; A Arlt; A Sellmer; S Mahboobi; R Rad; M Reichert; D Saur; O H Krämer; G Schneider
Journal:  Oncogene       Date:  2016-10-10       Impact factor: 9.867

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