解旋酶
核酸外切酶
基因组不稳定性
酶
化学
小分子
共价键
DNA
生物化学
药物发现
DNA修复
高通量筛选
DNA损伤
生物
分子生物学
基因
有机化学
核糖核酸
DNA聚合酶
作者
Mackenzie J. Parker,Hyelee Lee,Shihua Yao,Sean Irwin,Sun‐Il Hwang,Kylie Belanger,Sofia W. de Maré,Richard R. Surgenor,Lu Yan,Patricia Gee,Shravan Morla,Xiaoling Puyang,Peng Hsiao,Hao Zeng,Ping Zhu,Manav Korpal,Paul J. Dransfield,David M. Bolduc,Nicholas A. Larsen
出处
期刊:Biochemistry
[American Chemical Society]
日期:2023-07-05
卷期号:62 (14): 2147-2160
被引量:10
标识
DOI:10.1021/acs.biochem.2c00599
摘要
Werner syndrome protein (WRN) is a multifunctional enzyme with helicase, ATPase, and exonuclease activities that are necessary for numerous DNA-related transactions in the human cell. Recent studies identified WRN as a synthetic lethal target in cancers characterized by genomic microsatellite instability resulting from defects in DNA mismatch repair pathways. WRN's helicase activity is essential for the viability of these high microsatellite instability (MSI-H) cancers and thus presents a therapeutic opportunity. To this end, we developed a multiplexed high-throughput screening assay that monitors exonuclease, ATPase, and helicase activities of full-length WRN. This screening campaign led to the discovery of 2-sulfonyl/sulfonamide pyrimidine derivatives as novel covalent inhibitors of WRN helicase activity. The compounds are specific for WRN versus other human RecQ family members and show competitive behavior with ATP. Examination of these novel chemical probes established the sulfonamide NH group as a key driver of compound potency. One of the leading compounds, H3B-960, showed consistent activities in a range of assays (IC50 = 22 nM, KD = 40 nM, KI = 32 nM), and the most potent compound identified, H3B-968, has inhibitory activity IC50 ∼ 10 nM. These kinetic properties trend toward other known covalent druglike molecules. Our work provides a new avenue for screening WRN for inhibitors that may be adaptable to different therapeutic modalities such as targeted protein degradation, as well as a proof of concept for the inhibition of WRN helicase activity by covalent molecules.
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