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首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Anisotropic cellular forces support mechanical integrity of the Stratum Corneum barrier
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Anisotropic cellular forces support mechanical integrity of the Stratum Corneum barrier

机译:各向异性细胞力支持Stratum Corneum屏障的机械完整性

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The protective function of biological surfaces that are exposed to the exterior of living organisms is the result of a complex arrangement and interaction of cellular components. This is the case for the most external comified layer of skin, the stratum corneum (SC). This layer is made of corneocytes, the elementary 'flat bricks' that are held together through adhesive junctions. Despite the well-known protective role of the SC under high mechanical stresses and rapid cell turnover, the subtleties regarding the adhesion and mechanical interaction among the individual corneocytes are still poorly known. Here, we explore the adhesion of single corneocytes at different depths of the SC, by pulling them using glass microcantilevers, and measuring their detachment forces. We measured their interplanar adhesion between SC layers, and their peripheral adhesion among cells within a SC layer. Both adhesions increased considerably with depth. At the SC surface, with respect to adhesion, the corneocyte population exhibited a strong heterogeneity, where detachment forces differed by more than one order of magnitude for corneocytes located side by side. The measured detachment forces indicated that in the upper-middle layers of SC, the peripheral adhesion was stronger than the interplanar one. We conclude that the stronger peripheral adhesion of comeocytes in the SC favors an efficient barrier which would be able to resist strong stresses.
机译:暴露于生物体外部的生物表面的保护功能是复杂布置和细胞组分的相互作用的结果。这是对最外部的皮肤层,地层基层(SC)是这种情况。该层由Corneocytes制成,基本的“扁平砖”通过粘合结夹在一起。尽管SC在高机械应力和快速细胞周转下具有众所周知的保护作用,但各个角质细胞之间的粘附和机械相互作用的微妙之处仍然是众所周知的。在这里,我们通过使用玻璃微膜剂拉动它们并测量它们的分离力来探讨SC的不同深度的单一角膜细胞的粘附性。我们在SC层之间测量了它们在SC层之间的平坦粘附,以及SC层内的细胞之间的外周粘附。两种粘连随深度都显着增加。在SC表面,相对于粘附性,角膜粒细胞群具有强的异质性,其中脱离力在并排位于侧面位于位于位于侧面的拐角细胞的数量级不同。测量的脱离力表明,在SC的上部层中,外周粘附比平面锥体强。我们得出得出结论,SC中的卵形的较强的外周粘附有利于一种有效的屏障,该屏障将能够抵抗强烈的应力。

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