Covalent Proximity Scanning of a Distal Cysteine to Target PI3Kα

化学 共价键 连接器 电泳剂 半胱氨酸 小分子 生物物理学 组合化学 生物化学 立体化学 有机化学 计算机科学 催化作用 生物 操作系统
作者
Chiara Borsari,Erhan Keleş,Jacob A. McPhail,Alexander Schaefer,Rohitha Sriramaratnam,Wojciech Goch,Thorsten Schaefer,Martina De Pascale,Wojciech Bal,Matthias Gstaiger,John E. Burke,Matthias P. Wymann
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:144 (14): 6326-6342 被引量:26
标识
DOI:10.1021/jacs.1c13568
摘要

Covalent protein kinase inhibitors exploit currently noncatalytic cysteines in the adenosine 5'-triphosphate (ATP)-binding site via electrophiles directly appended to a reversible-inhibitor scaffold. Here, we delineate a path to target solvent-exposed cysteines at a distance >10 Å from an ATP-site-directed core module and produce potent covalent phosphoinositide 3-kinase α (PI3Kα) inhibitors. First, reactive warheads are used to reach out to Cys862 on PI3Kα, and second, enones are replaced with druglike warheads while linkers are optimized. The systematic investigation of intrinsic warhead reactivity (kchem), rate of covalent bond formation and proximity (kinact and reaction space volume Vr), and integration of structure data, kinetic and structural modeling, led to the guided identification of high-quality, covalent chemical probes. A novel stochastic approach provided direct access to the calculation of overall reaction rates as a function of kchem, kinact, Ki, and Vr, which was validated with compounds with varied linker lengths. X-ray crystallography, protein mass spectrometry (MS), and NanoBRET assays confirmed covalent bond formation of the acrylamide warhead and Cys862. In rat liver microsomes, compounds 19 and 22 outperformed the rapidly metabolized CNX-1351, the only known PI3Kα irreversible inhibitor. Washout experiments in cancer cell lines with mutated, constitutively activated PI3Kα showed a long-lasting inhibition of PI3Kα. In SKOV3 cells, compounds 19 and 22 revealed PI3Kβ-dependent signaling, which was sensitive to TGX221. Compounds 19 and 22 thus qualify as specific chemical probes to explore PI3Kα-selective signaling branches. The proposed approach is generally suited to develop covalent tools targeting distal, unexplored Cys residues in biologically active enzymes.
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