Astbury Centre for Structural Molecular Biology, University of Leeds, Leeds, LS2 9JT, UK.
School of Chemistry, University of Leeds, Leeds, LS2 9JT, UK.
Chemistry. 2019 May 10;25(27):6831-6839. doi: 10.1002/chem.201900815. Epub 2019 Apr 26.
Historically, chemists have explored chemical space in a highly uneven and unsystematic manner. As an example, the shape diversity of existing fragment sets does not generally reflect that of all theoretically possible fragments. To assess experimentally the added value of increased three dimensionality, a shape-diverse fragment set was designed and collated. The set was assembled by both using commercially available fragments and harnessing unified synthetic approaches to sp -rich molecular scaffolds. The resulting set of 80 fragments was highly three-dimensional, and its shape diversity was significantly enriched by twenty synthesised fragments. The fragment set was screened by high-throughput protein crystallography against Aurora-A kinase, revealing four hits that targeted the binding site of allosteric regulators. In the longer term, it is envisaged that the fragment set could be screened against a range of functionally diverse proteins, allowing the added value of more shape-diverse screening collections to be more fully assessed.
从历史上看,化学家以高度不均匀和无系统的方式探索化学空间。例如,现有片段集的形状多样性通常并不反映所有理论上可能的片段的形状多样性。为了评估增加三维性的附加价值,设计并整理了一个形状多样的片段集。该集通过使用市售片段和利用富 sp 分子支架的统一合成方法来组装。所得的 80 个片段集具有高度的三维性,通过二十个合成片段显著丰富了其形状多样性。该片段集通过高通量蛋白质晶体学筛选 Aurora-A 激酶,揭示了四个针对别构调节剂结合位点的命中。从长远来看,可以设想该片段集可以针对一系列功能多样化的蛋白质进行筛选,从而更全面地评估更具形状多样性的筛选集的附加价值。