Q1 · MEDICINE
Article
Author: Gray, Nathanael S ; Chen, Ting ; Choi, Jihyun ; Paweletz, Cloud P ; Long, Henry W ; Camargo, Fernando D ; Wong, Kwok-Kin ; Cejas, Paloma ; Xu, Man ; Zhang, Tinghu ; Bertram, Arrien A ; Portell, Andrew ; Ebert, Benjamin L ; Tillgren, Michelle L ; Haq, Rizwan ; Liu, Yao ; Boettcher, Steffen ; Li, Shuai ; Shin, Bo Hee ; Kirschmeier, Paul T ; Gokhale, Prafulla C ; Awad, Mark M ; Kurppa, Kari J ; Xie, Yingtian ; Vajdi, Amir ; Gao, Yang ; Thai, Tran ; Beroukhim, Rameen ; Mushajiang, Mierzhati ; Barbie, David A ; Jänne, Pasi A ; Knelson, Erik H ; Fan, Mengyang ; To, Ciric ; Bahcall, Magda ; Shalhout, Sophia ; Marto, Jarrod A ; Wilkens, Margaret K ; Lim, Klothilda ; Wang, Haiyun ; Ficarro, Scott B ; Lizotte, Patrick H ; Bandopadhayay, Pratiti ; Haikala, Heidi M
Eradicating tumor dormancy that develops following epidermal growth factor receptor (EGFR) tyrosine kinase inhibitor (TKI) treatment of EGFR-mutant non-small cell lung cancer, is an attractive therapeutic strategy but the mechanisms governing this process are poorly understood. Blockade of ERK1/2 reactivation following EGFR TKI treatment by combined EGFR/MEK inhibition uncovers cells that survive by entering a senescence-like dormant state characterized by high YAP/TEAD activity. YAP/TEAD engage the epithelial-to-mesenchymal transition transcription factor SLUG to directly repress pro-apoptotic BMF, limiting drug-induced apoptosis. Pharmacological co-inhibition of YAP and TEAD, or genetic deletion of YAP1, all deplete dormant cells by enhancing EGFR/MEK inhibition-induced apoptosis. Enhancing the initial efficacy of targeted therapies could ultimately lead to prolonged treatment responses in cancer patients.