Gkeka Paraskevi, Papafotika Alexandra, Christoforidis Savvas, Cournia Zoe
Biomedical Research Foundation, Academy of Athens , 4 Soranou Ephessiou, 11527 Athens, Greece.
J Phys Chem B. 2015 Jan 22;119(3):1002-16. doi: 10.1021/jp506423e. Epub 2014 Dec 3.
Allosteric modulators offer a novel approach for kinase inhibition because they target less conserved binding sites compared to the active site; thus, higher selectivity may be obtained. PIK-108, a known pan phosphoinositide 3-kinase (PI3K) inhibitor, was recently detected to occupy a non-ATP binding site in the PI3Kα C-lobe. This newly identified pocket is located close to residue 1047, which is frequently mutated in human cancers (H1047R). In order to assess the interactions, stability, and any possible allosteric effects of this inhibitor on PI3Kα, extensive molecular dynamics (MD) simulations in aqueous solution were performed for the wild type (WT) human, WT murine, and H1047R human mutant PI3Kα proteins with PIK-108 placed in both catalytic and non-ATP sites. We verify the existence of the second binding site in the vicinity of the hotspot H1047R PI3Kα mutation through binding site identification and MD simulations. PIK-108 remains stable in both sites in all three variants throughout the course of the simulations. We demonstrate that the pose and interactions of PIK-108 in the catalytic site are similar in the murine WT and human mutant forms, while they are significantly different in the case of human WT PI3Kα protein. PIK-108 binding in the non-ATP pocket also differs significantly among the three variants. Finally, we examine whether the non-ATP binding site is implicated in PI3Kα allostery in terms of its communication with the active site using principal component analysis and perform in vitro experiments to verify our hypotheses.
变构调节剂为激酶抑制提供了一种新方法,因为与活性位点相比,它们靶向的是保守性较低的结合位点;因此,可以获得更高的选择性。PIK-108是一种已知的泛磷酸肌醇3激酶(PI3K)抑制剂,最近被检测到占据PI3Kα C叶中的一个非ATP结合位点。这个新发现的口袋靠近第1047位残基,该残基在人类癌症中经常发生突变(H1047R)。为了评估这种抑制剂对PI3Kα的相互作用、稳定性以及任何可能的变构效应,我们对野生型(WT)人类、WT小鼠和H1047R人类突变型PI3Kα蛋白在水溶液中进行了广泛的分子动力学(MD)模拟,PIK-108分别置于催化位点和非ATP位点。我们通过结合位点鉴定和MD模拟验证了热点H1047R PI3Kα突变附近第二个结合位点的存在。在整个模拟过程中,PIK-108在所有三个变体的两个位点都保持稳定。我们证明,PIK-108在催化位点的构象和相互作用在小鼠WT和人类突变体形式中相似,而在人类WT PI3Kα蛋白中则有显著差异。PIK-108在非ATP口袋中的结合在三个变体之间也有显著差异。最后,我们使用主成分分析研究非ATP结合位点是否通过与活性位点的通信参与PI3Kα变构,并进行体外实验验证我们的假设。