Inhibition of acetyl-CoA carboxylase suppresses fatty acid synthesis and tumor growth of non-small-cell lung cancer in preclinical models
NATURE MEDICINE
Authors: Svensson, Robert U.; Parker, Seth J.; Eichner, Lillian J.; Kolar, Matthew J.; Wallace, Martina; Brun, Sonja N.; Lombardo, Portia S.; Van Nostrand, Jeanine L.; Hutchins, Amanda; Vera, Lilliana; Gerken, Laurie; Greenwood, Jeremy; Bhat, Sathesh; Harriman, Geraldine; Westlin, William F.; Harwood, H. James, Jr.; Saghatelian, Alan; Kapeller, Rosana; Metallo, Christian M.; Shaw, Reuben J.
Abstract
Continuous de novo fatty acid synthesis is a common feature of cancer that is required to meet the biosynthetic demands of a growing tumor. This process is controlled by the rate-limiting enzyme acetyl-CoA carboxylase (ACC), an attractive but traditionally intractable drug target. Here we provide genetic and pharmacological evidence that in preclinical models ACC is required to maintain the de novo fatty acid synthesis needed for growth and viability of non-small-cell lung cancer (NSCLC) cells. We describe the ability of ND-646-an allosteric inhibitor of the ACC enzymes ACC1 and ACC2 that prevents ACC subunit dimerization to suppress fatty acid synthesis in vitro and in vivo. Chronic ND-646 treatment of xenograft and genetically engineered mouse models of NSCLC inhibited tumor growth. When administered as a single agent or in combination with the standard-of-care drug carboplatin, ND-646 markedly suppressed lung tumor growth in the Kras;Trp53(-/-) (also known as KRAS p53) and Kras;Stk11(-/-) (also known as KRAS Lkb1) mouse models of NSCLC. These findings demonstrate that ACC mediates a metabolic liability of NSCLC and that ACC inhibition by ND-646 is detrimental to NSCLC growth, supporting further examination of the use of ACC inhibitors in oncology.
LKB1 is a DNA damage response protein that regulates cellular sensitivity to PARP inhibitors
ONCOTARGET
Authors: Wang, Yi-Shu; Chen, Jianfeng; Cui, Fengmei; Wang, Huibo; Wang, Shuai; Hang, Wei; Zeng, Qinghua; Quan, Cheng-Shi; Zhai, Ying-Xian; Wang, Jian-Wei; Shen, Xiang-Feng; Jian, Yong-Ping; Zhao, Rui-Xun; Werle, Kaitlin D.; Cui, Rutao; Liang, Jiyong; Li, Yu-Lin; Xu, Zhi-Xiang
Abstract
Liver kinase B1 (LKB1) functions as a tumor suppressor encoded by STK11, a gene that mutated in Peutz-Jeghers syndrome and in sporadic cancers. Previous studies showed that LKB1 participates in IR- and ROS-induced DNA damage response (DDR). However, the impact of LKB1 mutations on targeted cancer therapy remains unknown. Herein, we demonstrated that LKB1 formed DNA damage-induced nuclear foci and co-localized with ataxia telangiectasia mutated kinase (ATM), gamma-H2AX, and breast cancer susceptibility 1 (BRCA1). ATM mediated LKB1 phosphorylation at Thr 363 following the exposure of cells to ionizing radiation (IR). LKB1 interacted with BRCA1, a downstream effector in DDR that is recruited to sites of DNA damage and functions directly in homologous recombination (HR) DNA repair. LKB1 deficient cells exhibited delayed DNA repair due to insufficient HR. Notably, LKB1 deficiency sensitized cells to poly (ADP-ribose) polymerase (PARP) inhibitors. Thus, we have demonstrated a novel function of LKB1 in DNA damage response. Cancer cells lacking LKB1 are more susceptible to DNA damage-based therapy and, in particular, to drugs that further impair DNA repair, such as PARP inhibitors.