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Cryo-Imaging of Hydrogels Supermolecular Structure

机译:水凝胶超分子结构的低温成像

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Gelatin, derived from collagen, has both the mechanical properties required for tissue growth, as well the functional domains required for cell binding. In its natural state, gelatin derives its properties from a network of structured, intertwined, triple helical chains, which is stabilized by hydrogen bonds at temperatures below 37?°C. The mechanical properties of such a structure can be further controlled by additional enzymatic cross-linking. But, in contrast to simple polymer systems, the response to an imposed deformation is here determined by two competing factors: the establishment of the cross-linked mesh vs. the self-assembly of the fibrils into larger and stronger hierarchical structures. Therefore, properties deduced from the response to measurements such as rheology or swelling, are a combination of these two very different factors, hence a modeling is impossible unless more precise knowledge regarding the internal structure is available. The cryogenic-temperature scanning electron microscopy (cryo-SEM) was adopted to image the fully hydrated gelatin network in which distinct chain folding was observed at low densities, while cross-linked networks were observed at higher densities. Based on these images, a theoretical model which results in good agreement between the mesh sizes of both networks and their mechanical properties was developed.
机译:源自胶原的明胶既具有组织生长所需的机械性能,又具有细胞结合所需的功能域。在其自然状态下,明胶的特性来自结构化的,相互缠绕的三重螺旋链,该链通过氢键在低于37°C的温度下稳定。这种结构的机械性能可以通过另外的酶促交联来进一步控制。但是,与简单的聚合物系统相比,此处对变形的响应由两个竞争因素决定:交联网孔的建立与原纤维自组装成更大,更强的分层结构的比较。因此,由对测量的响应(例如流变学或溶胀)得出的特性是这两个非常不同的因素的组合,因此除非有关于内部结构的更精确的知识,否则无法进行建模。采用低温扫描电子显微镜(cryo-SEM)对完全水合的明胶网络成像,其中在低密度下观察到明显的链折叠,而在高密度下观察到交联网络。根据这些图像,建立了一个理论模型,可以使两个网络的网眼尺寸与其机械性能达到良好的一致性。

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