Department of Pharmacology, Yale School of Medicine, New Haven, CT 06520.
Department of Chemistry, Yale University, New Haven, CT 06520.
Proc Natl Acad Sci U S A. 2021 May 25;118(21). doi: 10.1073/pnas.2002486118.
Most human cancer cells harbor loss-of-function mutations in the p53 tumor suppressor gene. Genetic experiments have shown that phosphatidylinositol 5-phosphate 4-kinase α and β (PI5P4Kα and PI5P4Kβ) are essential for the development of late-onset tumors in mice with germline p53 deletion, but the mechanism underlying this acquired dependence remains unclear. PI5P4K has been previously implicated in metabolic regulation. Here, we show that inhibition of PI5P4Kα/β kinase activity by a potent and selective small-molecule probe disrupts cell energy homeostasis, causing AMPK activation and mTORC1 inhibition in a variety of cell types. Feedback through the S6K/insulin receptor substrate (IRS) loop contributes to insulin hypersensitivity and enhanced PI3K signaling in terminally differentiated myotubes. Most significantly, the energy stress induced by PI5P4Kαβ inhibition is selectively toxic toward p53-null tumor cells. The chemical probe, and the structural basis for its exquisite specificity, provide a promising platform for further development, which may lead to a novel class of diabetes and cancer drugs.
大多数人类癌细胞都存在抑癌基因 p53 的功能丧失性突变。遗传实验表明,磷脂酰肌醇 5-磷酸 4-激酶 α 和 β(PI5P4Kα 和 PI5P4Kβ)对于胚系 p53 缺失的小鼠晚期肿瘤的发展是必需的,但这种获得性依赖性的机制尚不清楚。PI5P4K 先前与代谢调节有关。在这里,我们表明,通过一种有效且选择性的小分子探针抑制 PI5P4Kα/β 激酶活性会破坏细胞能量稳态,导致各种细胞类型中 AMPK 的激活和 mTORC1 的抑制。通过 S6K/胰岛素受体底物(IRS)环的反馈作用有助于终末分化肌管中的胰岛素超敏性和增强的 PI3K 信号传导。最重要的是,PI5P4Kαβ 抑制诱导的能量应激对 p53 缺失的肿瘤细胞具有选择性毒性。该化学探针及其对其优异特异性的结构基础为进一步开发提供了一个有前途的平台,这可能会导致一类新型的糖尿病和癌症药物。