Molecular simulation on the interaction between trehalose and asymmetric lipid bilayer mimicking the membrane of human red blood cells

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-05-02 DOI:10.1016/j.cryobiol.2024.104898
Yu Cao, Cai Gao, Lei Yang, Pei Zhou, Dongfang Sun
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Abstract

Trehalose is widely acknowledged for its ability to stabilize plasma membranes during dehydration. However, the exact mechanism by which trehalose interacts with lipid bilayers remains presently unclear. In this study, we conducted atomistic molecular dynamic simulations on asymmetric model bilayers that mimic the membrane of human red blood cells at various trehalose and water contents. We considered three different hydration levels mimicking the full hydration to desiccation scenarios. Results indicate that the asymmetric distribution of lipids did not significantly influence the computed structural characteristics at full and low hydration. At dehydration, however, the order parameter obtained from the symmetric bilayer is significantly higher compared to those obtained from asymmetric ones. Analysis of hydrogen bonds revealed that the protective ability of trehalose is well described by the water replacement hypothesis at full and low hydration, while at dehydration other interaction mechanisms associated with trehalose exclusion from the bilayer may involve. In addition, we found that trehalose exclusion is not attributed to sugar saturation but rather to the reduction in hydration levels. It can be concluded that the protective effect of trehalose is not only related to the hydration level of the bilayer, but also closely tied to the asymmetric distribution of lipids within each leaflet.

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三卤糖与模拟人类红细胞膜的不对称脂质双分子层之间相互作用的分子模拟。
人们普遍认为妥尔糖能够在脱水过程中稳定质膜。然而,目前还不清楚树胶糖与脂质双分子层相互作用的确切机制。在本研究中,我们对模拟人类红细胞膜的不对称模型双分子层进行了原子分子动力学模拟,模拟了不同的三卤糖和水含量。我们考虑了三种不同的水合水平,模拟了从完全水合到干燥的情况。结果表明,在完全水合和低水合时,脂质的不对称分布对计算的结构特征没有显著影响。但在脱水时,对称双分子层的阶次参数明显高于不对称双分子层。氢键分析表明,在完全水合和低水合状态下,水置换假说很好地描述了三卤糖的保护能力,而在脱水状态下,可能涉及与三卤糖从双分子层中排除有关的其他相互作用机制。此外,我们还发现曲哈洛糖的排斥作用并不是由于糖饱和,而是由于水合水平的降低。由此可以得出结论,三卤糖的保护作用不仅与双分子层的水合水平有关,还与每个小叶内脂类的不对称分布密切相关。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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