Division of Biology and Chemistry, Paul Scherrer Institut, 5232, Villigen, Switzerland.
Institute of Physical and Theoretical Chemistry, Goethe University, Frankfurt am Main, Germany.
Nat Commun. 2023 Feb 17;14(1):903. doi: 10.1038/s41467-023-36481-5.
The binding and release of ligands from their protein targets is central to fundamental biological processes as well as to drug discovery. Photopharmacology introduces chemical triggers that allow the changing of ligand affinities and thus biological activity by light. Insight into the molecular mechanisms of photopharmacology is largely missing because the relevant transitions during the light-triggered reaction cannot be resolved by conventional structural biology. Using time-resolved serial crystallography at a synchrotron and X-ray free-electron laser, we capture the release of the anti-cancer compound azo-combretastatin A4 and the resulting conformational changes in tubulin. Nine structural snapshots from 1 ns to 100 ms complemented by simulations show how cis-to-trans isomerization of the azobenzene bond leads to a switch in ligand affinity, opening of an exit channel, and collapse of the binding pocket upon ligand release. The resulting global backbone rearrangements are related to the action mechanism of microtubule-destabilizing drugs.
配体与其蛋白质靶标的结合和释放是基础生物过程以及药物发现的核心。光药理学引入了化学触发物,通过光允许改变配体亲和力,从而改变生物活性。由于在光触发反应过程中相关的转变无法通过传统的结构生物学来解决,因此对光药理学的分子机制的了解还很缺乏。我们使用同步加速器和 X 射线自由电子激光的时间分辨连续晶体学,捕获抗癌化合物偶氮 - 考布他汀 A4 的释放以及微管蛋白中由此产生的构象变化。从 1ns 到 100ms 的 9 个结构快照,以及模拟结果表明,顺式-反式偶氮苯键的异构化如何导致配体亲和力的开关、出口通道的打开以及配体释放时结合口袋的坍塌。由此产生的全局骨架重排与微管去稳定药物的作用机制有关。