Targeting protein methylation in pancreatic cancer cells results in KRAS signaling imbalance and inhibition of autophagy

被引:4
作者
Montenegro, Maria F. [1 ]
Marti-Diaz, Roman [1 ]
Navarro, Ana [2 ]
Tolivia, Jorge [2 ]
Sanchez-del-Campo, Luis [1 ]
Cabezas-Herrera, Juan [3 ]
Rodriguez-Lopez, Jose Neptuno [1 ]
机构
[1] Univ Murcia, Sch Biol, Dept Biochem & Mol Biol A, Inst Murciano Invest Biosanit IMIB, Murcia, Spain
[2] Univ Oviedo, Dept Morfol & Biol Celular, Grp GECYEN, Inst Invest Sanitaria Principado Asturias ISPA, Oviedo, Asturias, Spain
[3] Univ Hosp Virgen Arrixaca, Mol Therapy & Biomarkers Res Grp, IMIB, Murcia, Spain
关键词
PHOSPHORYLATION; PROLIFERATION; DEGRADATION; HOLOENZYME; SUBUNIT; PATHWAY; RAF; ERK;
D O I
10.1038/s41419-023-06288-9
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Pancreatic cancer cells with mutant KRAS require strong basal autophagy for viability and growth. Here, we observed that some processes that allow the maintenance of basal autophagy in pancreatic cancer cells are controlled by protein methylation. Thus, by maintaining the methylation status of proteins such as PP2A and MRAS, these cells can sustain their autophagic activity. Protein methylation disruption by a hypomethylating treatment (HMT), which depletes cellular S-adenosylmethionine levels while inducing S-adenosylhomocysteine accumulation, resulted in autophagy inhibition and endoplasmic reticulum stress-induced apoptosis in pancreatic cancer cells. We observed that by reducing the membrane localization of MRAS, hypomethylation conditions produced an imbalance in KRAS signaling, resulting in the partial inactivation of ERK and hyperactivation of the PI3K/AKT-mTORC1 pathway. Interestingly, HMT impeded CRAF activation by disrupting the ternary SHOC2 complex (SHOC2/MRAS/PP1), which functions as a CRAF-S259 holophosphatase. The demethylation events that resulted in PP2A inactivation also favored autophagy inhibition by preventing ULK1 activation while restoring the cytoplasmic retention of the MiT/TFE transcription factors. Since autophagy provides pancreatic cancer cells with metabolic plasticity to cope with various metabolic stress conditions, while at the same time promoting their pathogenesis and resistance to KRAS pathway inhibitors, this hypomethylating treatment could represent a therapeutic opportunity for pancreatic adenocarcinomas.
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页数:11
相关论文
共 43 条
[1]   Positive regulation of Raf1-MEK1/2-ERK1/2 signaling by protein serine/threonine phosphatase 2A holoenzymes [J].
Adams, DG ;
Coffee, RL ;
Zhang, H ;
Pelech, S ;
Strack, S ;
Wadzinski, BE .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (52) :42644-42654
[2]   Basal autophagy maintains pancreatic acinar cell homeostasis and protein synthesis and prevents ER stress [J].
Antonucci, Laura ;
Fagman, Johan B. ;
Kim, Ju Youn ;
Todoric, Jelena ;
Gukovsky, Ilya ;
Mackey, Mason ;
Ellisman, Mark H. ;
Karin, Michael .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2015, 112 (45) :E6166-E6174
[3]   MONITORING AUTOPHAGIC DEGRADATION OF P62/SQSTM1 [J].
Bjorkoy, Geir ;
Lamark, Trond ;
Pankiv, Serhiy ;
Overvatn, Aud ;
Brech, Andreas ;
Johansen, Terje .
METHODS IN ENZYMOLOGY: AUTOPHAGY IN MAMMALIAN SYSTEMS, VOL 452, PT B, 2009, 452 :181-197
[4]   c-Raf, but Not B-Raf, Is Essential for Development of K-Ras Oncogene-Driven Non-Small Cell Lung Carcinoma [J].
Blasco, Rafael B. ;
Francoz, Sarah ;
Santamaria, David ;
Canamero, Marta ;
Dubus, Pierre ;
Charron, Jean ;
Baccarini, Manuela ;
Barbacid, Mariano .
CANCER CELL, 2011, 19 (05) :652-663
[5]   Combination of ERK and autophagy inhibition as a treatment approach for pancreatic cancer [J].
Bryant, Kirsten L. ;
Stalnecker, Clint A. ;
Zeitouni, Daniel ;
Klomp, Jennifer E. ;
Peng, Sen ;
Tikunov, Andrey P. ;
Gunda, Venugopal ;
Pierobon, Mariaelena ;
Waters, Andrew M. ;
George, Samuel D. ;
Tomar, Garima ;
Papke, Bjorn ;
Hobbs, G. Aaron ;
Yan, Liang ;
Hayes, Tikvah K. ;
Diehl, J. Nathaniel ;
Goode, Gennifer D. ;
Chaika, Nina V. ;
Wang, Yingxue ;
Zhang, Guo-Fang ;
Witkiewicz, Agnieszka K. ;
Knudsen, Erik S. ;
Petricoin, Emanuel F., III ;
Singh, Pankaj K. ;
Macdonald, Jeffrey M. ;
Tran, Nhan L. ;
Lyssiotis, Costas A. ;
Ying, Haoqiang ;
Kimmelman, Alec C. ;
Cox, Adrienne D. ;
Der, Channing J. .
NATURE MEDICINE, 2019, 25 (04) :628-+
[6]   Persister state-directed transitioning and vulnerability in melanoma [J].
Chauvistre, Heike ;
Shannan, Batool ;
Daignault-Mill, Sheena M. ;
Ju, Robert J. ;
Picard, Daniel ;
Egetemaier, Stefanie ;
Varaljai, Renata ;
Gibhardt, Christine S. ;
Sechi, Antonio ;
Kaschani, Farnusch ;
Keminer, Oliver ;
Stehbens, Samantha J. ;
Liu, Qin ;
Yin, Xiangfan ;
Jeyakumar, Kirujan ;
Vogel, Felix C. E. ;
Krepler, Clemens ;
Rebecca, Vito W. ;
Kubat, Linda ;
Lueong, Smiths S. ;
Forster, Jan ;
Horn, Susanne ;
Remke, Marc ;
Ehrmann, Michael ;
Paschen, Annette ;
Becker, Juergen C. ;
Helfrich, Iris ;
Rauh, Daniel ;
Kaiser, Markus ;
Gul, Sheraz ;
Herlyn, Meenhard ;
Bogeski, Ivan ;
Rodriguez-Lopez, Jose Neptuno ;
Haass, Nikolas K. ;
Schadendorf, Dirk ;
Roesch, Alexander .
NATURE COMMUNICATIONS, 2022, 13 (01)
[7]   SHOC2 complex-driven RAF dimerization selectively contributes to ERK pathway dynamics [J].
del Rio, Isabel Boned ;
Young, Lucy C. ;
Sari, Sibel ;
Jones, Greg G. ;
Ringham-Terry, Benjamin ;
Hartig, Nicole ;
Rejnowicz, Ewa ;
Lei, Winnie ;
Bhamra, Amandeep ;
Surinova, Silvia ;
Rodriguez-Viciana, Pablo .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2019, 116 (27) :13330-13339
[8]   The Emerging Roles of mTORC1 in Macromanaging Autophagy [J].
Dossou, Akpedje S. ;
Basu, Alakananda .
CANCERS, 2019, 11 (10)
[9]   Targeting the MAPK Pathway in KRAS-Driven Tumors [J].
Drosten, Matthias ;
Barbacid, Mariano .
CANCER CELL, 2020, 37 (04) :543-550
[10]   ULK1 phosphorylation of striatin activates protein phosphatase 2A and autophagy [J].
Hu, Zehan ;
Sankar, Devanarayanan Siva ;
Vu, Bich ;
Leytens, Alexandre ;
Vionnet, Christine ;
Wu, Wenxian ;
Stumpe, Michael ;
Martinez-Martinez, Esther ;
Stork, Bjoern ;
Dengjel, Joern .
CELL REPORTS, 2021, 36 (13)