工具箱
药物发现
片段(逻辑)
微尺度化学
药效团
工作流程
化学
生化工程
组合化学
计算机科学
纳米技术
工程类
数据库
材料科学
数学
立体化学
程序设计语言
数学教育
生物化学
作者
Chloe Townley,Davide Branduardi,Gianni Chessari,Benjamin D. Cons,Charlotte M. Griffiths‐Jones,R. C. Hall,Christopher N. Johnson,Yuji Ochi,Stuart Whibley,Rachel Grainger
摘要
Miniaturised high-throughput experimentation (HTE) is widely employed in industrial and academic laboratories for rapid reaction optimisation using material-limited, multifactorial reaction condition screening. In fragment-based drug discovery (FBDD), common toolbox reactions such as the Suzuki-Miyaura and Buchwald-Hartwig cross couplings can be hampered by the fragment's intrinsic heteroatom-rich pharmacophore which is required for ligand-protein binding. At Astex, we are using microscale HTE to speed up reaction optimisation and prevent target down-prioritisation. By identifying catalyst/base/solvent combinations which tolerate unprotected heteroatoms we can rapidly optimise key cross-couplings and expedite route design by avoiding superfluous protecting group manipulations. However, HTE requires extensive upfront training, and this modern automated synthesis technique largely differs to the way organic chemists are traditionally trained. To make HTE accessible to all our synthetic chemists we have developed a semi-automated workflow enabled by pre-made 96-well screening kits, rapid analytical methods and in-house software development, which is empowering chemists at Astex to run HTE screens independently with minimal training.
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