Macroautophagy is dispensable for growth of KRAS mutant tumors and chloroquine efficacy

被引:193
作者
Eng, Christina H. [1 ]
Wang, Zuncai [2 ]
Tkach, Diane [1 ]
Toral-Barza, Lourdes [1 ]
Ugwonali, Savuth [2 ]
Liu, Shanming [2 ]
Fitzgerald, Stephanie L. [2 ]
George, Elizabeth [2 ]
Frias, Elizabeth [2 ]
Cochran, Nadire [2 ]
De Jesus, Rowena [2 ]
McAllister, Gregory [2 ]
Hoffman, Gregory R. [2 ]
Bray, Kevin [1 ]
Lemon, LuAnna [1 ]
Lucas, Judy [1 ]
Fantin, Valeria R. [3 ]
Abraham, Robert T. [3 ]
Murphy, Leon O. [2 ]
Nyfeler, Beat [4 ]
机构
[1] Pfizer, Oncol Res Unit, Pearl River, NY 10965 USA
[2] Novartis Inst BioMed Res, Dept Dev & Mol Pathways, Cambridge, MA 02139 USA
[3] Pfizer, Oncol Res Unit, San Diego, CA 92121 USA
[4] Novartis Inst BioMed Res, Dept Dev & Mol Pathways, CH-4056 Basel, Switzerland
关键词
autophagy; chloroquine; cancer; KRAS; ATG7; INDUCED AUTOPHAGY; CANCER; INHIBITION; TUMORIGENESIS; CYTOTOXICITY; CELLS; INFLAMMATION; PROGRESSION; FIBROBLASTS; HOMEOSTASIS;
D O I
10.1073/pnas.1515617113
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Macroautophagy is a key stress-response pathway that can suppress or promote tumorigenesis depending on the cellular context. Notably, Kirsten rat sarcoma (KRAS)-driven tumors have been reported to rely on macroautophagy for growth and survival, suggesting a potential therapeutic approach of using autophagy inhibitors based on genetic stratification. In this study, we evaluated whether KRAS mutation status can predict the efficacy to macroautophagy inhibition. By profiling 47 cell lines with pharmacological and genetic loss-of-function tools, we were unable to confirm that KRAS-driven tumor lines require macroautophagy for growth. Deletion of autophagy-related 7 (ATG7) by genome editing completely blocked macroautophagy in several tumor lines with oncogenic mutations in KRAS but did not inhibit cell proliferation in vitro or tumorigenesis in vivo. Furthermore, ATG7 knockout did not sensitize cells to irradiation or to several anticancer agents tested. Interestingly, ATG7-deficient and -proficient cells were equally sensitive to the antiproliferative effect of chloroquine, a lysosomotropic agent often used as a pharmacological tool to evaluate the response to macroautophagy inhibition. Moreover, both cell types manifested synergistic growth inhibition when treated with chloroquine plus the tyrosine kinase inhibitors erlotinib or sunitinib, suggesting that the antiproliferative effects of chloroquine are independent of its suppressive actions on autophagy.
引用
收藏
页码:182 / 187
页数:6
相关论文
共 55 条
[1]   Chloroquine synergizes sunitinib cytotoxicity via modulating autophagic, apoptotic and angiogenic machineries [J].
Abdel-Aziz, Amal Kamal ;
Shouman, Samia ;
El-Demerdash, Ebtehal ;
Elgendy, Mohamed ;
Abdel-Naim, Ashraf B. .
CHEMICO-BIOLOGICAL INTERACTIONS, 2014, 217 :28-40
[2]   Principles and Current Strategies for Targeting Autophagy for Cancer Treatment [J].
Amaravadi, Ravi K. ;
Lippincott-Schwartz, Jennifer ;
Yin, Xiao-Ming ;
Weiss, William A. ;
Takebe, Naoko ;
Timmer, William ;
DiPaola, Robert S. ;
Lotze, Michael T. ;
White, Eileen .
CLINICAL CANCER RESEARCH, 2011, 17 (04) :654-666
[3]   The Cancer Cell Line Encyclopedia enables predictive modelling of anticancer drug sensitivity [J].
Barretina, Jordi ;
Caponigro, Giordano ;
Stransky, Nicolas ;
Venkatesan, Kavitha ;
Margolin, Adam A. ;
Kim, Sungjoon ;
Wilson, Christopher J. ;
Lehar, Joseph ;
Kryukov, Gregory V. ;
Sonkin, Dmitriy ;
Reddy, Anupama ;
Liu, Manway ;
Murray, Lauren ;
Berger, Michael F. ;
Monahan, John E. ;
Morais, Paula ;
Meltzer, Jodi ;
Korejwa, Adam ;
Jane-Valbuena, Judit ;
Mapa, Felipa A. ;
Thibault, Joseph ;
Bric-Furlong, Eva ;
Raman, Pichai ;
Shipway, Aaron ;
Engels, Ingo H. ;
Cheng, Jill ;
Yu, Guoying K. ;
Yu, Jianjun ;
Aspesi, Peter, Jr. ;
de Silva, Melanie ;
Jagtap, Kalpana ;
Jones, Michael D. ;
Wang, Li ;
Hatton, Charles ;
Palescandolo, Emanuele ;
Gupta, Supriya ;
Mahan, Scott ;
Sougnez, Carrie ;
Onofrio, Robert C. ;
Liefeld, Ted ;
MacConaill, Laura ;
Winckler, Wendy ;
Reich, Michael ;
Li, Nanxin ;
Mesirov, Jill P. ;
Gabriel, Stacey B. ;
Getz, Gad ;
Ardlie, Kristin ;
Chan, Vivien ;
Myer, Vic E. .
NATURE, 2012, 483 (7391) :603-607
[4]   Autophagy at the crossroads of metabolism and cellular defense [J].
Begun, Jakob ;
Xavier, Ramnik J. .
CURRENT OPINION IN GASTROENTEROLOGY, 2013, 29 (06) :588-596
[5]   Mitochondrial membrane permeabilization is a critical step of lysosome-initiated apoptosis induced by hydroxychloroquine [J].
Boya, P ;
Gonzalez-Polo, RA ;
Poncet, D ;
Andreau, K ;
Vieira, HLA ;
Roumier, T ;
Perfettini, JL ;
Kroemer, G .
ONCOGENE, 2003, 22 (25) :3927-3936
[6]   Autophagy and senescence in cancer-associated fibroblasts metabolically supports tumor growth and metastasis, via glycolysis and ketone production [J].
Capparelli, Claudia ;
Guido, Carmela ;
Whitaker-Menezes, Diana ;
Bonuccelli, Gloria ;
Balliet, Renee ;
Pestell, Timothy G. ;
Goldberg, Allison F. ;
Pestell, Richard G. ;
Howell, Anthony ;
Sneddon, Sharon ;
Birbe, Ruth ;
Tsirigos, Aristotelis ;
Martinez-Outschoorn, Ubaldo ;
Sotgia, Federica ;
Lisanti, Michael P. .
CELL CYCLE, 2012, 11 (12) :2285-2302
[7]   Autophagy regulator BECN1 suppresses mammary tumorigenesis driven by WNT1 activation and following parity [J].
Cicchini, Michelle ;
Chakrabarti, Rumela ;
Kongara, Sameera ;
Price, Sandy ;
Nahar, Ritu ;
Lozy, Fred ;
Zhong, Hua ;
Vazquez, Alexei ;
Kang, Yibin ;
Karantza, Vassiliki .
AUTOPHAGY, 2014, 10 (11) :2036-2052
[8]   Drugging the undruggable RAS: Mission Possible? [J].
Cox, Adrienne D. ;
Fesik, Stephen W. ;
Kimmelman, Alec C. ;
Luo, Ji ;
Der, Channing J. .
NATURE REVIEWS DRUG DISCOVERY, 2014, 13 (11) :828-851
[9]   Autophagy promotes tumor cell survival and restricts necrosis, inflammation, and tumorigenesis [J].
Degenhardt, Kurt ;
Mathew, Robin ;
Beaudoin, Brian ;
Bray, Kevin ;
Anderson, Diana ;
Chen, Guanghua ;
Mukherjee, Chandreyee ;
Shi, Yufang ;
Gelinas, Celine ;
Fan, Yongjun ;
Nelson, Deirdre A. ;
Jin, Shengkan ;
White, Eileen .
CANCER CELL, 2006, 10 (01) :51-64
[10]   Selective VPS34 inhibitor blocks autophagy and uncovers a role for NCOA4 in ferritin degradation and iron homeostasis in vivo [J].
Dowdle, William E. ;
Nyfeler, Beat ;
Nagel, Jane ;
Elling, Robert A. ;
Liu, Shanming ;
Triantafellow, Ellen ;
Menon, Suchithra ;
Wang, Zuncai ;
Honda, Ayako ;
Pardee, Gwynn ;
Cantwell, John ;
Luu, Catherine ;
Cornella-Taracido, Ivan ;
Harrington, Edmund ;
Fekkes, Peter ;
Lei, Hong ;
Fang, Qing ;
Digan, Mary Ellen ;
Burdick, Debra ;
Powers, Andrew F. ;
Helliwell, Stephen B. ;
D'Aquin, Simon ;
Bastien, Julie ;
Wang, Henry ;
Wiederschain, Dmitri ;
Kuerth, Jenny ;
Bergman, Philip ;
Schwalb, David ;
Thomas, Jason ;
Ugwonali, Savuth ;
Harbinski, Fred ;
Tallarico, John ;
Wilson, Christopher J. ;
Myer, Vic E. ;
Porter, Jeffery A. ;
Bussiere, Dirksen E. ;
Finan, Peter M. ;
Labow, Mark A. ;
Mao, Xiaohong ;
Hamann, Lawrence G. ;
Manning, Brendan D. ;
Valdez, Reginald A. ;
Nicholson, Thomas ;
Schirle, Markus ;
Knapp, Mark S. ;
Keaney, Erin P. ;
Murphy, Leon O. .
NATURE CELL BIOLOGY, 2014, 16 (11) :1069-+