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通过时间分辨 X 射线散射进行化学筛选以发现别构探针。

Chemical screening by time-resolved X-ray scattering to discover allosteric probes.

机构信息

Department of Molecular and Cellular Oncology, The University of Texas MD Anderson Cancer Center, Houston, TX, USA.

MBIB Division, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.

出版信息

Nat Chem Biol. 2024 Sep;20(9):1199-1209. doi: 10.1038/s41589-024-01609-1. Epub 2024 Apr 26.

Abstract

Drug discovery relies on efficient identification of small-molecule leads and their interactions with macromolecular targets. However, understanding how chemotypes impact mechanistically important conformational states often remains secondary among high-throughput discovery methods. Here, we present a conformational discovery pipeline integrating time-resolved, high-throughput small-angle X-ray scattering (TR-HT-SAXS) and classic fragment screening applied to allosteric states of the mitochondrial import oxidoreductase apoptosis-inducing factor (AIF). By monitoring oxidized and X-ray-reduced AIF states, TR-HT-SAXS leverages structure and kinetics to generate a multidimensional screening dataset that identifies fragment chemotypes allosterically stimulating AIF dimerization. Fragment-induced dimerization rates, quantified with time-resolved SAXS similarity analysis (k), capture structure-activity relationships (SAR) across the top-ranked 4-aminoquinoline chemotype. Crystallized AIF-aminoquinoline complexes validate TR-SAXS-guided SAR, supporting this conformational chemotype for optimization. AIF-aminoquinoline structures and mutational analysis reveal active site F482 as an underappreciated allosteric stabilizer of AIF dimerization. This conformational discovery pipeline illustrates TR-HT-SAXS as an effective technology for targeting chemical leads to important macromolecular states.

摘要

药物发现依赖于有效识别小分子先导物及其与大分子靶标的相互作用。然而,在高通量发现方法中,了解化学型如何在机制上影响重要的构象状态往往仍然是次要的。在这里,我们提出了一个构象发现管道,该管道集成了时间分辨、高通量小角 X 射线散射(TR-HT-SAXS)和经典片段筛选,应用于线粒体输入氧化还原酶凋亡诱导因子(AIF)的变构状态。通过监测氧化和 X 射线还原的 AIF 状态,TR-HT-SAXS 利用结构和动力学生成多维筛选数据集,该数据集可识别变构刺激 AIF 二聚化的片段化学型。使用时间分辨 SAXS 相似性分析(k)定量片段诱导的二聚化速率,可捕获排名靠前的 4-氨基喹啉化学型的结构活性关系(SAR)。结晶 AIF-氨基喹啉复合物验证了 TR-SAXS 指导的 SAR,支持该构象化学型进行优化。AIF-氨基喹啉结构和突变分析表明,活性位点 F482 是 AIF 二聚化的一个未被充分认识的变构稳定剂。该构象发现管道说明了 TR-HT-SAXS 是一种有效的技术,可将化学先导物靶向重要的大分子状态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a360/11358040/763ed7b60599/41589_2024_1609_Fig1_HTML.jpg

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