纳米尺度
纳米技术
计算机科学
计算生物学
生物
材料科学
作者
James L. Douthwaite,Damian J. Houde,Eneida Pardo,Mark Moran,Jason R. Baird,Sophia R. Meyer,Babak Mahjour,Qiyuan Zhao,Jay F. Larrow,Yu-Pu Juang,Michael J. Holliday,C.-C. Han,Brian Kelley,David R. Dunstan,Katelyn Billings,Mary M. Mader,Alexander M. Taylor,Jonathan Z. Sexton,Alessandro A. Boezio,Tim Cernak
标识
DOI:10.1021/acs.jmedchem.5c03614
摘要
Modern hit-to-lead optimization winnows down vast chemical spaces of virtual compounds into a selection of potent and selective compounds that can be further profiled with in vitro assays. Today, miniaturized chemical synthesis can be performed in high-throughput, shifting the bottleneck to compound purification. Direct-to-biology (D2B) approaches seek to overcome this hurdle by omitting the purification step and submitting reaction mixtures directly to bioassays. Here, we explore nanoscale hit-to-lead optimization through the multistep synthesis of a library of Cdk2/CycE inhibitors, utilizing ultrahigh-throughput experimentation (ultraHTE) in 1,536-well plates. Library performance is assessed by D2B in functional biochemical, bioaffinity, and X-ray crystallographic assays. A selection of potent lead Cdk2/CycE inhibitors identified by D2B was submitted to a phenotypic cell painting assay, which showed cell cycle arrest at G 0, consistent with Cdk2 inhibition. This miniaturized workflow allows the upper tiers of a typical optimization screening cascade to be performed in a single experiment.
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