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通过分子动力学模拟理解水介质中糖胺聚糖-白细胞介素 8 复合物的构象性质和氢键作用。

Understanding Conformational Properties and Role of Hydrogen Bonds in Glycosaminoglycans-Interleukin8 Complexes in Aqueous Medium by Molecular Dynamics Simulation.

机构信息

Molecular Simulation Laboratory, Department of Chemistry, National Institute of Technology, 769008, Rourkela, India.

出版信息

Chemphyschem. 2023 Feb 14;24(4):e202200440. doi: 10.1002/cphc.202200440. Epub 2022 Nov 16.

DOI:10.1002/cphc.202200440
PMID:36239153
Abstract

Atomistic molecular dynamics simulations were performed under ambient conditions to explore the conformational features and binding affinities of hexameric glycosaminoglycans (GAGs) with chemokine Interleukin8 (IL8) in an aqueous medium. We tried to understand the role of hydrogen bonds (HBs) involving conserved water in mediating the interactions. The Luzar-Chandler model was adopted to study the kinetics of HB breaking and formation concerning different water-mediated HBs. The conformational flexibilities of bound GAGs are due to the flexible glycosidic linkages than the occasional/rare ring pucker conformation. The free energy landscape constructed with ϕ, and ψ, depicted that different conformational minima associated with the glycosidic linkage flexibility of the GAGs in bound states are separated by energy barriers. The binding affinities of IL8 towards GAGs are favored through the electrostatic and non-polar solvation interactions. 4-different types of conserved water were explored in the solvent-mediated binding of GAGs with IL8. The average lifetime of the IL8-GAG direct HB pairs was ∼ten times less than the IL8-GAG-shared water HBs. This is due to the rapid establishment of HB breaking and reformation kinetics involving water of a shared layer. We find that despite the highly negatively charged surface of GAGs, the IL8 surface populated by non-cationic amino acids could serve as a promising binding site in addition to the cationic surface of the protein.

摘要

在环境条件下进行了原子分子动力学模拟,以探索六聚体糖胺聚糖 (GAG) 在水介质中与趋化因子白细胞介素 8 (IL8) 的构象特征和结合亲和力。我们试图了解涉及保守水的氢键 (HB) 在介导相互作用中的作用。采用卢扎尔-钱德勒模型研究了不同水介导 HB 中 HB 断裂和形成的动力学。结合 GAG 的构象灵活性归因于糖苷键的灵活性,而不是偶尔/罕见的环褶皱构象。与结合状态下 GAG 的糖苷键灵活性相关的不同构象最小势能的自由能景观由 ϕ 和 ψ 构建,这些构象最小势能由能量势垒隔开。IL8 与 GAG 之间的结合亲和力通过静电和非极性溶剂化相互作用得到促进。在 GAG 与 IL8 的溶剂介导结合中探索了 4 种不同类型的保守水。IL8-GAG 直接 HB 对的平均寿命比 IL8-GAG 共享水 HB 短约 10 倍。这是由于涉及共享层水的 HB 断裂和重新形成动力学的快速建立。我们发现,尽管 GAG 具有高度负电荷表面,但 IL8 表面上存在的非阳离子氨基酸除了蛋白质的阳离子表面外,也可以作为有希望的结合位点。

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