CEA, CNRS, IBS, Univ. Grenoble Alpes, Grenoble, France.
Institute for Biophysics and Physical Biochemistry, University of Regensburg, Regensburg, Germany.
Chemistry. 2024 Jun 20;30(35):e202400304. doi: 10.1002/chem.202400304. Epub 2024 May 28.
In this work, we experimentally investigate the potency of high pressure to drive a protein toward an excited state where an inhibitor targeted for this state can bind. Ras proteins are small GTPases cycling between active GTP-bound and inactive GDP-bound states. Various states of GTP-bound Ras in active conformation coexist in solution, amongst them, state 2 which binds to effectors, and state 1, weakly populated at ambient conditions, which has a low affinity for effectors. Zn-cyclen is an allosteric inhibitor of Ras protein, designed to bind specifically to the state 1. In H-Ras(wt).Mg.GppNHp crystals soaked with Zn-cyclen, no binding could be observed, as expected in the state 2 conformation which is the dominant state at ambient pressure. Interestingly, Zn-cyclen binding is observed at 500 MPa pressure, close to the nucleotide, in Ras protein that is driven by pressure to a state 1 conformer. The unknown binding mode of Zn-cyclen to H-Ras can thus be fully characterized in atomic details. As a more general conjunction from our study, high pressure x-ray crystallography turns out to be a powerful method to induce transitions allowing drug binding in proteins that are in low-populated conformations at ambient conditions, enabling the design of specific inhibitors.
在这项工作中,我们通过实验研究了高压将蛋白质推向其活性状态的能力,在此状态下,针对该状态的抑制剂可以结合。Ras 蛋白是小 GTP 酶,在活性 GTP 结合和非活性 GDP 结合状态之间循环。在溶液中,各种活性构象的 GTP 结合 Ras 状态共存,其中包括与效应物结合的状态 2 和在环境条件下低丰度的、与效应物亲和力低的状态 1。Zn-cyclen 是 Ras 蛋白的别构抑制剂,专门设计用于结合状态 1。在 H-Ras(wt).Mg.GppNHp 晶体中浸泡 Zn-cyclen 时,如预期的那样,在环境压力下占主导地位的状态 2 构象中没有观察到结合,因为在该构象中没有观察到结合。有趣的是,在接近核苷酸的 500 MPa 压力下,观察到 Zn-cyclen 与 Ras 蛋白的结合,该蛋白在压力作用下驱动至状态 1 构象。因此,可以在原子细节上充分描述 Zn-cyclen 与 H-Ras 的未知结合模式。作为我们研究的更普遍的结论,高压 X 射线晶体学被证明是一种强大的方法,可以诱导在环境条件下处于低丰度构象的蛋白质发生转变,从而允许药物结合,从而设计出特异性抑制剂。