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Towards a Mechanical Model of Skin: Insights into Stratum Corneum Mechanical Properties from Hierarchical Models of Lipid Organisation

机译:走向皮肤的机械模型:从脂质组织的层次模型中了解角质层的机械特性

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The stratum corneum (SC), the outermost layer of the skin, provides the body with a physiologically essential barrier to unregulated water loss and the influx of exogenous substances. Furthermore, the 10-20 micron thick SC, composed of overlapping protein-rich corneocytes surrounded by a heterogeneous multilamellar lipid matrix, displays tremendous mechanical cohesion and thermal integrity. To understand the contribution of these components to SC mechanical properties requires building a complete mechanical model of the skin. In this study we focus on modelling the hierarchical microstructure of the lipid phase and its relation to mechanical properties using a combination of atomistic and mesoscale simulations. The modelling approaches are parameterised with experimental data from FT-IR spectroscopy, X-ray scattering and, in the case of the mesoscale simulations, with detailed density profiles derived from atomic models. The atomistic models are used to probe the role of specific lipid species in maintaining the thermal and structural stability of the SC extracellular lipid matrix and to investigate the role of hydrogen bonding networks in SC lipid cohesion. Mesoscale models are used to investigate domain formation and lipid bilayer organisation on length and time scales inaccessible with atomistic models. These coarse grained models display transitions between ordered hexagonal gel phases and fluid phases, reproducing the experimentally observed ordering of the hydrophilic and hydrophobic regions.
机译:皮肤最外层的角质层(SC)为人体提供了生理上不可或缺的屏障,可防止失水和外来物质的大量涌入。此外,由异质多层脂质基质包围的重叠的富含蛋白质的角质细胞组成的10-20微米厚的SC显示出巨大的机械内聚力和热完整性。要了解这些成分对SC机械性能的贡献,需要建立皮肤的完整机械模型。在这项研究中,我们集中于使用脂质模拟和中尺度模拟相结合,对脂质相的分层微观结构及其与机械性能的关系进行建模。使用来自FT-IR光谱,X射线散射的实验数据对建模方法进行参数设置,在中尺度模拟的情况下,可以从原子模型获得详细的密度分布。原子模型用于探测特定脂质物种在维持SC细胞外脂质基质的热和结构稳定性中的作用,以及研究氢键网络在SC脂质内聚中的作用。中尺度模型用于研究原子模型无法达到的长度和时间尺度上的域形成和脂质双层组织。这些粗颗粒模型显示了有序六边形凝胶相和流体相之间的过渡,重现了实验观察到的亲水和疏水区域的顺序。

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