The induction of MIG6 under hypoxic conditions is critical for dormancy in primary cultured lung cancer cells with activating EGFR mutations

被引:35
作者
Endo, H. [1 ]
Okami, J. [2 ]
Okuyama, H. [1 ]
Nishizawa, Y. [3 ]
Imamura, F. [4 ]
Inoue, M. [1 ]
机构
[1] Osaka Med Ctr Canc & Cardiovasc Dis, Dept Biochem, Osaka, Japan
[2] Osaka Med Ctr Canc & Cardiovasc Dis, Dept Thorac Surg, Osaka, Japan
[3] Osaka Med Ctr Canc & Cardiovasc Dis, Dept Pathol, Osaka, Japan
[4] Osaka Med Ctr Canc & Cardiovasc Dis, Dept Thorac Oncol, Osaka, Japan
关键词
SIGNAL-REGULATED KINASE; GEFITINIB RESISTANCE; ACQUIRED-RESISTANCE; PROTEIN-SYNTHESIS; RECEPTOR; PATHWAY; QUIESCENCE; PROMOTES; SURVIVAL; MUTANT;
D O I
10.1038/onc.2016.431
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The biologic activity of individual cancer cells is highly heterogeneous. Hypoxia, one of the prominent features of a tumor microenvironment, is thought to be causal in generating this cellular heterogeneity. In this study, we revealed that primary lung cancer cells harboring activating epidermal growth factor receptor (EGFR) mutations generally entered a dormant state when hypoxic. We found that heterodimer formation of the ERBB family receptor tyrosine kinases (RTKs), and their subsequent downstream signaling, was diminished under hypoxic conditions, although phosphorylation of the EGFR was retained. Dormant lung cancer cells were found to be resistant to EGFR tyrosine kinase inhibitor (TKI) treatment. In terms of mechanism, we found that a negative regulator of ERBB signaling, MIG6/ERRFI1/RALT/Gene33, was induced by hypoxia both in vitro and in vivo. MIG6 expression prevented heterodimer formation of ERBB family RTKs, and suppressed their downstream signaling. Knockdown of MIG6 enhanced tumor cell growth under hypoxic conditions, and promoted the phosphorylation of ERK and AKT via increased EGFR-HER3 binding. Critically, sensitivity to an EGFR-TKI, as well as to irradiation under hypoxic conditions, was increased in MIG6 knockdown cells. The expression of MIG6 was partly correlated with a pS6 negative zone in patient tumors. Analyses of tumor sections from 68 patients with activating EGFR mutations showed that patients with high MIG6 expression showed significantly shorter survival after EGFR-TKI treatment than other groups. Collectively, our data suggest that dormant cancer cells with a high MIG6 expression level might be one of the causes of EGFR-TKI resistance in EGFR mutant lung cancer cells.
引用
收藏
页码:2824 / 2834
页数:11
相关论文
共 53 条
[1]   Notch promotes recurrence of dormant tumor cells following HER2/neu-targeted therapy [J].
Abravanel, Daniel L. ;
Belka, George K. ;
Pan, Tien-chi ;
Pant, Dhruv K. ;
Collins, Meredith A. ;
Sterner, Christopher J. ;
Chodosh, Lewis A. .
JOURNAL OF CLINICAL INVESTIGATION, 2015, 125 (06) :2484-2496
[2]   Green fluorescent protein tagging of extracellular signal-regulated kinase and p38 pathways reveals novel dynamics of pathway activation during primary and metastatic growth [J].
Aguirre-Ghiso, JA ;
Ossowski, L ;
Rosenbaum, SK .
CANCER RESEARCH, 2004, 64 (20) :7336-7345
[3]   ΔNp63α induces quiescence and downregulates the BRCA1 pathway in estrogen receptor-positive luminal breast cancer cell line MCF7 but not in other breast cancer cell lines [J].
Amin, Ruhul ;
Morita-Fujimura, Yuiko ;
Tawarayama, Hiroshi ;
Semba, Kentaro ;
Chiba, Natsuko ;
Fukumoto, Manabu ;
Ikawa, Shuntaro .
MOLECULAR ONCOLOGY, 2016, 10 (04) :575-593
[4]   Regulation of the ErbB network by the MIG6 feedback loop in physiology, tumor suppression and responses to oncogene-targeted therapeutics [J].
Anastasi, Sergio ;
Lamberti, Dante ;
Alema, Stefano ;
Segatto, Oreste .
SEMINARS IN CELL & DEVELOPMENTAL BIOLOGY, 2016, 50 :115-124
[5]   SMAD signaling and redox imbalance cooperate to induce prostate cancer cell dormancy [J].
Anh Thu Bui ;
Laurent, Fanny ;
Havard, Maryline ;
Dautry, Francois ;
Tchenio, Thierry .
CELL CYCLE, 2015, 14 (08) :1218-1231
[6]  
[Anonymous], CELL REP
[7]   A novel hypoxia-inducible factor-independent hypoxic response regulating mammalian target of rapamycin and its targets [J].
Arsham, AM ;
Howell, JJ ;
Simon, MC .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (32) :29655-29660
[8]   The tumour microenvironment after radiotherapy: mechanisms of resistance and recurrence [J].
Barker, Holly E. ;
Paget, James T. E. ;
Khan, Aadil A. ;
Harrington, Kevin J. .
NATURE REVIEWS CANCER, 2015, 15 (07) :409-425
[9]   A hypoxia-controlled cap-dependent to cap-independent translation switch in breast cancer [J].
Braunstein, Steve ;
Karpisheva, Ksenia ;
Pola, Carolina ;
Goldberg, Judith ;
Hochman, Tsivia ;
Yee, Herman ;
Cangiarella, Joan ;
Arju, Rezina ;
Formenti, Silvia C. ;
Schneider, Robert J. .
MOLECULAR CELL, 2007, 28 (03) :501-512
[10]   Role of hypoxia-inducible factor (HIF)-1α-versus HIF-2α in the regulation of HIF target genes in response to hypoxia, insulin-like growth factor-1, or loss of von Hippel-Lindau function:: Implications for targeting the HIF pathway [J].
Carroll, Veronica A. ;
Ashcroft, Margaret .
CANCER RESEARCH, 2006, 66 (12) :6264-6270