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The Lubricating Properties of Human Whole Saliva

机译:人全唾液的润滑性能

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摘要

We demonstrate the efficient boundary lubricating properties of human whole saliva (HWS) in a soft hydrophobic rubbing contact, consisting of a poly(dimethylsiloxane) (PDMS) ball and a PDMS disk. The influence of applied load, entrainment speed and surface roughness was investigated for mechanically stimulated HWS. Lubrication by HWS results in a boundary friction coefficient of μ ≈ 0.02, two orders of magnitude lower than that obtained for water. Dried saliva on the other hand results in μ ≈ 2-3, illustrating the importance of hydration for efficient salivary lubrication. Increasing the surface roughness increases the friction coefficient for HWS, while it decreases that for water. The boundary lubricating properties of HWS are less sensitive to saliva treatment than are its bulk viscoelastic properties. Centrifugation and ageing of HWS almost completely removes the shear thinning and elastic nature observed for fresh HWS. In contrast, the boundary friction coefficients are hardly affected, which indicates that the high-M{sub}w (supra-)molecular structures in saliva, which are expected to be responsible for its rheology, are not responsible for its boundary lubricating properties. The saliva-coated PDMS surfaces form an ideal model system for ex-vivo investigations into oral lubrication and how the lubricating properties of saliva are influenced by other components like food, beverages, oral care products and pharmaceuticals.
机译:我们证明了在由聚(二甲基硅氧烷)(PDMS)球和PDMS盘组成的柔软疏水摩擦接触中人类全唾液(HWS)的有效边界润滑性能。研究了机械刺激的HWS的施加载荷,夹带速度和表面粗糙度的影响。 HWS润滑产生的边界摩擦系数为μ≈0.02,比水获得的边界摩擦系数低两个数量级。另一方面,唾液干燥会导致μ≈2-3,这说明了水合作用对有效唾液润滑的重要性。增加表面粗糙度会增加HWS的摩擦系数,而会降低水的摩擦系数。 HWS的边界润滑性能与其唾液处理的敏感性不如其整体粘弹性。 HWS的离心和老化几乎完全消除了新鲜HWS的剪切稀化和弹性。相反,几乎不影响边界摩擦系数,这表明唾液中的高分子量(超)分子结构(预期是其流变性)与其边界润滑性能无关。唾液涂层的PDMS表面形成了一个理想的模型系统,可以进行口腔润滑的体外研究,以及唾液的润滑特性如何受到食品,饮料,口腔护理产品和药品等其他成分的影响。

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