Phosphorylation of BRAF by AMPK Impairs BRAF-KSR1 Association and Cell Proliferation
MOLECULAR CELL
Authors: Shen, Che-Hung; Yuan, Ping; Perez-Lorenzo, Rolando; Zhang, Yaqing; Lee, Sze Xian; Ou, Yang; Asara, John M.; Cantley, Lewis C.; Zheng, Bin
Abstract
BRAF is an oncogenic protein kinase that drives cell growth and proliferation through the MEK-ERK signaling pathway. BRAF inhibitors have demonstrated antitumor efficacy in melanoma therapy but have also been found to be associated with the development of cutaneous squamous cell carcinomas (cSCCs) in certain patients. Here, we report that BRAF is phosphorylated at Ser729 by AMP-activated protein kinase (AMPK), a critical energy sensor. This phosphorylation promotes the association of BRAF with 14-3-3 proteins and disrupts its interaction with the KSR1 scaffolding protein, leading to attenuation of the MEK-ERK signaling. We also show that phosphorylation of BRAF by AMPK impairs keratinocyte cell proliferation and cell-cycle progression. Furthermore, AMPK activation attenuates BRAF inhibitor-induced ERK hyperactivation in keratinocytes and epidermal hyperplasia in mouse skin. Our findings reveal a mechanism for regulating BRAF signaling in response to energy stress and suggest a strategy for preventing the development of cSCCs associated with BRAF-targeted therapy.
RETRACTED: Pharmacologic Inactivation of Kinase Suppressor of Ras1 Sensitizes Epidermal Growth Factor Receptor and Oncogenic Ras-Dependent Tumors to Ionizing Radiation Treatment (Retracted article. See vol. 15, pg. 343, 2016)
MOLECULAR CANCER THERAPEUTICS
Authors: Xiao, Hongyan; Zhang, Qingbei; Shen, Jikun; Bindokas, Vytas; Xing, H. Rosie
Abstract
Selective enhancement of tumor response to radiation therapy is a highly attractive objective, but it has not been met clinically. Gain-of-function Ras (gf) signaling via hyperactivation of receptor tyrosine kinases, such as the epidermal growth factor receptor (EGFR), or via oncogenic mutation of Ras is shown to confer radioresistance and requires the engagement of the Raf/MEK/ERK pathway. However, upstream mediators of such interaction in cancer cells that could be targeted for radiosensitization have not been identified and characterized. Here, we provide original observations both in vitro and in vivo that kinase suppressor of Ras1 (KSR1) is a new target for reversing gf Ras-mediated radioresistance. We employed EGFR-dependent A431 squamous cell carcinoma (SCC) and genetically defined the molecular function of KSR1 in irradiation-induced Raf/MEK/ERK activation. In vitro KSR1 inactivation via genetic inhibition of its expression or kinase function abrogated ionizing radiation-induced activation of the Raf/MEK/ERK2 cascade, enhanced the cytotoxic effect of radiation, and achieved radiosensitization associated with inhibition of DNA damage repair and enhancement of clonogenic death. In vivo pharmacologic inactivation of KSR1 by KSR1 AS-ODN infusion leads to radiosensitization in EGFR-dependent A431 SCC and in oncogenic K-Ras-driven A549 human non-small cell lung carcinoma. These observations collectively establish KSR1 as a novel target for radiosensitization and show the feasibility of using KSR1 AS-ODN as a radiosensitizer for treating gf Ras-dependent human malignancies. Identification of such mediators of gf Ras signaling in response to irradiation holds promises for improving the therapeutic efficacy of radiation therapy and our ability to eradicate tumor. Mol Cancer Ther; 9(10); 2724-36. (C) 2010 AACR.