Kao European Research Laboratories , KAO Germany GmbH , Pfungstaedter Str. 98-100 , D-64297 Darmstadt , Germany.
J Phys Chem B. 2019 May 30;123(21):4505-4511. doi: 10.1021/acs.jpcb.9b01690. Epub 2019 May 16.
We propose a simple mechano-chemical model for the dependence of Young's modulus of α-keratin fibers on the hydrogen and disulfide bonds existing in the matrix and evaluate the relative change in bonding following an oxidative chemical treatment. Atomic force microscopy nanoindentation of longitudinal and cross sections of the fiber showed that, although the oxidative treatment breaks a significant amount of disulfide bonds, it introduces compensatory hydrogen bonds that maintain fiber elasticity at values comparable with those of the untreated fiber under dry conditions. The striking influence of humidity on the hydrogen bonding in keratin fibers is also evaluated. The hydrogen bonds are labeled as "type 1" and "type 2" hydrogen bonds; newly formed hydrogen bonds, type 2, are more labile than those native (type 1) to the matrix. Examining their contribution to Young's modulus of the matrix allowed for quantifying the loss of disulfide bonds, and the result matched the decrease in cystine, measured by amino-acid analysis, caused by the oxidative treatment.
我们提出了一个简单的机械化学模型,用于研究α-角蛋白纤维的杨氏模量与基质中存在的氢键和二硫键之间的关系,并评估了氧化化学处理后键合的相对变化。纤维的纵向和横截面的原子力显微镜纳米压痕表明,尽管氧化处理会破坏大量的二硫键,但它会引入补偿性氢键,从而使纤维在干燥条件下的弹性保持在与未处理纤维相当的值。我们还评估了湿度对角蛋白纤维中氢键的显著影响。氢键被标记为“类型 1”和“类型 2”氢键;新形成的氢键(类型 2)比基质中原有的氢键(类型 1)更容易断裂。研究它们对基质杨氏模量的贡献,可以定量测量二硫键的损失,结果与氧化处理导致的胱氨酸(通过氨基酸分析测量)减少量相匹配。