Mansoor Samman, Kayık Gülru, Durdagi Serdar, Sensoy Ozge
School of Engineering and Natural Sciences, Department of Biomedical Engineering and Bioinformatics, Istanbul Medipol University, Istanbul 34810, Turkey.
Computational Biology and Molecular Simulations Laboratory, Department of Biophysics, School of Medicine, Bahcesehir University, Istanbul, Turkey.
Comput Struct Biotechnol J. 2022 Feb 4;20:925-936. doi: 10.1016/j.csbj.2022.01.016. eCollection 2022.
Development of effective bivalent ligands has become the focus of intensive research toward modulation of G protein-coupled receptor (GPCR) oligomers, particularly in the field of GPCR pharmacology. Experimental studies have shown that they increased binding affinity and signaling potency compared to their monovalent counterparts, yet underlying molecular mechanism remains elusive. To address this, we performed accelerated molecular dynamics simulations on bivalent-ligand bound Adenosine 2A receptor (AR) dimer in the context of a modeled tetramer, which consists of AR and dopamine 2 receptor (DR) homodimers and their cognate G proteins. Our results demonstrate that bivalent ligand impacted interactions between pharmacophore groups and ligand binding residues, thus modulating allosteric communication network and water channel formed within the receptor. Moreover, it also strengthens contacts between receptor and G protein, by modulating the volume of ligand binding pocket and intracellular domain of the receptor. Importantly, we showed that impact evoked by the bivalent ligand on AR dimer was also transmitted to DR, which is part of the neighboring DR dimer. To the best of our knowledge, this is the first study that provides a mechanistic insight into the impact of a bivalent ligand on dynamics of a GPCR oligomer. Consequently, this will pave the way for development of effective ligands for modulation of GPCR oligomers and hence treatment of crucial diseases such as Parkinson's disease and cancer.
开发有效的二价配体已成为针对G蛋白偶联受体(GPCR)寡聚体调控进行深入研究的重点,尤其是在GPCR药理学领域。实验研究表明,与单价配体相比,它们提高了结合亲和力和信号传导效力,但其潜在的分子机制仍不清楚。为了解决这个问题,我们在一个由A2A受体(AR)和多巴胺2受体(DR)同型二聚体及其同源G蛋白组成的模拟四聚体环境中,对结合了二价配体的A2A受体二聚体进行了加速分子动力学模拟。我们的结果表明,二价配体影响药效基团与配体结合残基之间的相互作用,从而调节受体内形成的变构通讯网络和水通道。此外,它还通过调节受体配体结合口袋和细胞内结构域的体积,加强受体与G蛋白之间的接触。重要的是,我们发现二价配体对AR二聚体产生的影响也传递到了作为相邻DR二聚体一部分的DR上。据我们所知,这是第一项对二价配体对GPCR寡聚体动力学影响提供机制性见解的研究。因此,这将为开发用于调控GPCR寡聚体的有效配体以及治疗帕金森病和癌症等关键疾病铺平道路。