Dual blockade of the lipid kinase PIP4Ks and mitotic pathways leads to cancer-selective lethality

Mayumi Kitagawa(Duke-NUS Medical School), Pei-Ju Liao(Duke-NUS Medical School), Kyung Hee Lee(Duke-NUS Medical School), Jasmine C. Wong(Duke-NUS Medical School), See Cheng Shang(National University of Singapore), Noriaki Minami(Keio University), Oltea Sampetrean(Keio University), Hideyuki Saya(Keio University), Lingyun Dai(Nanyang Technological University), Nayana Prabhu(Nanyang Technological University), Ka Diam Go(Nanyang Technological University), Radoslaw M. Sobota(Agency for Science, Technology and Research), Andreas Larsson(Nanyang Technological University), P. Nordlund(Agency for Science, Technology and Research), Frank McCormick(UCSF Helen Diller Family Comprehensive Cancer Center), Sujoy Ghosh(North Carolina Central University), David Epstein(Duke-NUS Medical School), Brian Dymock(National University of Singapore), Sang Hyun Lee(Duke-NUS Medical School)
Nature Communications
December 13, 2017
Cited by 80Open Access
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Abstract

Achieving robust cancer-specific lethality is the ultimate clinical goal. Here, we identify a compound with dual-inhibitory properties, named a131, that selectively kills cancer cells, while protecting normal cells. Through an unbiased CETSA screen, we identify the PIP4K lipid kinases as the target of a131. Ablation of the PIP4Ks generates a phenocopy of the pharmacological effects of PIP4K inhibition by a131. Notably, PIP4Ks inhibition by a131 causes reversible growth arrest in normal cells by transcriptionally upregulating PIK3IP1, a suppressor of the PI3K/Akt/mTOR pathway. Strikingly, Ras activation overrides a131-induced PIK3IP1 upregulation and activates the PI3K/Akt/mTOR pathway. Consequently, Ras-transformed cells override a131-induced growth arrest and enter mitosis where a131's ability to de-cluster supernumerary centrosomes in cancer cells eliminates Ras-activated cells through mitotic catastrophe. Our discovery of drugs with a dual-inhibitory mechanism provides a unique pharmacological strategy against cancer and evidence of cross-activation between the Ras/Raf/MEK/ERK and PI3K/AKT/mTOR pathways via a Ras˧PIK3IP1˧PI3K signaling network.


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