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Viscoelastic properties of collagen: synchrotron radiation investigations and structural model.

机译:胶原的粘弹性:同步辐射研究和结构模型。

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摘要

Collagen type I is the most abundant structural protein in tendon, skin and bone, and largely determines the mechanical behaviour of these connective tissues. To obtain a better understanding of the relationship between structure and mechanical properties, tensile tests and synchrotron X-ray scattering have been carried out simultaneously, correlating the mechanical behaviour with changes in the microstructure. Because intermolecular cross-links are thought to have a great influence on the mechanical behaviour of collagen, we also carried out experiments using cross-link-deficient tail-tendon collagen from rats fed with beta-APN, in addition to normal controls. The load-elongation curve of tendon collagen has a characteristic shape with, initially, an increasing slope, corresponding to an increasing stiffness, followed by yielding and then fracture. Cross-link-deficient collagen produces a quite different curve with a marked plateau appearing in some cases, where the length of the tendon increases at constant stress. With the use of in situ X-ray diffraction, it was possible to measure simultaneously the elongation of the collagen fibrils inside the tendon and of the tendon as a whole. The overall strain of the tendon was always larger than the strain in the individual fibrils, which demonstrates that some deformation is taking place in the matrix between fibrils. Moreover, the ratio of fibril strain to tendon strain was dependent on the applied strain rate. When the speed of deformation was increased, this ratio increased in normal collagen but generally decreased in cross-link-deficient collagen, correlating to the appearance of a plateau in the force-elongation curve indicating creep. We proposed a simple structural model, which describes the tendon at a hierarchical level, where fibrils and interfibrillar matrix act as coupled viscoelastic systems. All qualitative features of the strain-rate dependence of both normal and cross-link-deficient collagen can be reproduced within this model. This complements earlier models that considered the next smallest level of hierarchy, describing the deformation of collagen fibrils in terms of changes in their molecular packing.
机译:I型胶原蛋白是肌腱,皮肤和骨骼中最丰富的结构蛋白,在很大程度上决定了这些结缔组织的机械行为。为了更好地理解结构与机械性能之间的关系,同时进行了拉伸试验和同步加速器X射线散射,将机械性能与微观结构的变化相关联。因为分子间的交联被认为对胶原的机械性能有很大的影响,所以除了正常对照组外,我们还使用来自饲喂β-APN的大鼠的交联缺陷的尾部腱胶原进行了实验。肌腱胶原蛋白的载荷-伸长曲线具有特征形状,该特征形状首先具有增加的斜率,对应于增加的刚度,然后屈服然后断裂。缺乏交联的胶原蛋白会产生截然不同的曲线,在某些情况下会出现明显的平台,其中肌腱的长度在恒定应力下会增加。通过原位X射线衍射,可以同时测量肌腱内部的胶原纤维的伸长率和整个肌腱的伸长率。肌腱的总应变始终大于单个原纤维的应变,这表明原纤维之间的基质中发生了一些变形。此外,原纤维应变与肌腱应变的比率取决于所施加的应变速率。当变形速度增加时,正常胶原蛋白中该比率增加,而交联缺陷型胶原蛋白中该比率通常降低,这与指示蠕变的力-伸长曲线中的平台出现有关。我们提出了一个简单的结构模型,该模型在层次上描述了肌腱,其中原纤维和原纤维间基质充当了耦合的粘弹性系统。正常和交联缺陷型胶原蛋白的应变率依赖性的所有定性特征都可以在该模型中再现。这补充了考虑下一个最小层次结构的早期模型,该模型根据分子堆积的变化来描述胶原原纤维的变形。

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