Department of Genetics, Eötvös Loránd University , Pázmány Péter sétány 1/C, 1117 Budapest, Hungary.
MTA NAP-B Molecular Neuroendocrinology Group, Institute of Physiology, Szentágothai Research Center, Center for Neuroscience, University of Pécs , Szigeti út 12, 7624 Pécs, Hungary.
J Chem Inf Model. 2016 Jan 25;56(1):148-58. doi: 10.1021/acs.jcim.5b00638. Epub 2016 Jan 8.
Interfacial hydration strongly influences interactions between biomolecules. For example, drug-target complexes are often stabilized by hydration networks formed between hydrophilic residues and water molecules at the interface. Exhaustive exploration of hydration networks is challenging for experimental as well as theoretical methods due to high mobility of participating water molecules. In the present study, we introduced a tool for determination of the complete, void-free hydration structures of molecular interfaces. The tool was applied to 31 complexes including histone proteins, a HIV-1 protease, a G-protein-signaling modulator, and peptide ligands of various lengths. The complexes contained 344 experimentally determined water positions used for validation, and excellent agreement with these was obtained. High-level cooperation between interfacial water molecules was detected by a new approach based on the decomposition of hydration networks into static and dynamic network regions (subnets). Besides providing hydration structures at the atomic level, our results uncovered hitherto hidden networking fundaments of integrity and stability of complex biomolecular interfaces filling an important gap in the toolkit of drug design and structural biochemistry. The presence of continuous, static regions of the interfacial hydration network was found necessary also for stable complexes of histone proteins participating in chromatin assembly and epigenetic regulation.
界面水合作用强烈影响生物分子之间的相互作用。例如,亲水残基与界面处水分子之间形成的水合网络常常稳定药物-靶标复合物。由于参与水分子的高迁移率,实验和理论方法都难以全面探索水合网络。在本研究中,我们引入了一种用于确定分子界面完整无空隙水合结构的工具。该工具应用于 31 个复合物,包括组蛋白、HIV-1 蛋白酶、G 蛋白信号转导调节剂和各种长度的肽配体。复合物包含 344 个经实验确定的用于验证的水分子位置,并且与这些位置的吻合度非常好。通过一种新的基于将水合网络分解为静态和动态网络区域(子网)的方法,检测到界面水分子之间的高级别合作。除了在原子水平上提供水合结构外,我们的结果还揭示了复杂生物分子界面完整性和稳定性的隐藏网络基础,填补了药物设计和结构生物化学工具包中的重要空白。参与染色质组装和表观遗传调控的组蛋白稳定复合物也需要存在连续的界面水合网络静态区域。