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天然和单一位点突变人β防御素-1 肽的比较模拟研究。

Comparative simulation studies of native and single-site mutant human beta-defensin-1 peptides.

机构信息

Department of Chemistry, University of Massachusetts Lowell, Lowell, MA 01854, USA.

出版信息

J Biomol Struct Dyn. 2013;31(2):174-94. doi: 10.1080/07391102.2012.698381. Epub 2012 Jul 25.

Abstract

Human defensins play important roles in a broad range of biological functions, such as microbial defense and immunity. Yet, little is known about their molecular properties, i.e. secondary structure stability, structural variability, important side chain interactions, surface charge distribution, and resistance to thermal fluctuations, and how these properties are related to their functions. To assess these factors, we studied the native human β-defensin-1 monomer and dimer as well as several single-site mutants using molecular dynamics simulations. The results showed that disulfide bonds are important determinants in maintaining the defensins' structural integrity, as no structural transitions were observed at 300 K and only minor structural unfolding was detected upon heating to 500 K. The α-helix was less thermally stable than the core β-sheet structure held together by hydrogen bonds and hydrophobic interactions. The monomer α-helix stability was directly correlated, whereas the end-to-end distance was inversely correlated to the experimentally measured β-defensin-1 chemotactic activity, in the order: mutant 2 (Gln24Glu) > mutant 3 (Lys31Ala) = wild type > mutant 1 (Asn4Ala). The structural stability of the β-defensin-1 dimer species exhibited an inverse correlation to their chemotactic activity. In dimers formed by mutants 2 and 3, we observed sliding of one monomer upon the surface of the other in the absence of unbinding. This dynamic sliding feature may enhance the molecular oligomerization of β-defensin-1 peptides contributing to their antibacterial activity. It could also help these peptides orient correctly in the CC chemokine receptor 6 binding site, thereby initiating their chemotactic activity. In agreement with this notion, the remarkable sliding behavior was observed only for the mutants with the highest chemotactic activity.

摘要

人防御素在广泛的生物学功能中发挥着重要作用,例如微生物防御和免疫。然而,人们对它们的分子特性知之甚少,例如二级结构稳定性、结构变异性、重要侧链相互作用、表面电荷分布和对热波动的抗性,以及这些特性如何与其功能相关。为了评估这些因素,我们使用分子动力学模拟研究了天然人β-防御素-1 单体和二聚体以及几个单点突变体。结果表明,二硫键是维持防御素结构完整性的重要决定因素,因为在 300 K 下没有观察到结构转变,并且在加热至 500 K 时仅检测到轻微的结构展开。α-螺旋的热稳定性不如氢键和疏水相互作用保持在一起的核心β-折叠结构。单体α-螺旋的稳定性与实验测量的β-防御素-1 趋化活性直接相关,而末端到末端的距离与β-防御素-1 趋化活性呈反比关系,顺序为:突变体 2(Gln24Glu)>突变体 3(Lys31Ala)=野生型>突变体 1(Asn4Ala)。β-防御素-1 二聚体物种的结构稳定性与其趋化活性呈反比关系。在由突变体 2 和 3 形成的二聚体中,我们观察到在没有解联的情况下,一个单体在另一个单体表面上滑动。这种动态滑动特征可能会增强β-防御素-1 肽的分子寡聚化,从而增强其抗菌活性。它还可以帮助这些肽在 CC 趋化因子受体 6 结合位点正确定向,从而启动其趋化活性。这一观点与以下观点一致,即只有具有最高趋化活性的突变体才观察到显著的滑动行为。

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