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Vortex-induced injectable silk fibroin hydrogels.

机译:涡流诱导注射丝素蛋白水凝胶。

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A novel, to our knowledge, technique was developed to control the rate of beta-sheet formation and resulting hydrogelation kinetics of aqueous, native silk solutions. Circular dichroism spectroscopy indicated that vortexing aqueous solutions of silkworm silk lead to a transition from an overall protein structure that is initially rich in random coil to one that is rich in beta-sheet content. Dynamic oscillatory rheology experiments collected under the same assembly conditions as the circular dichroism experiments indicated that the increase in beta-sheet content due to intramolecular conformational changes and intermolecular self-assembly of the silk fibroin was directly correlated with the subsequent changes in viscoelastic properties due to hydrogelation. Vortexing low-viscosity silk solutions lead to orders-of-magnitude increase in the complex shear modulus, G*, and formation of rigid hydrogels (G* approximately 70 kPa for 5.2 wt % protein concentration). Vortex-induced, beta-sheet-rich silk hydrogels consisted of permanent, physical, intermolecular crosslinks. The hydrogelation kinetics could be controlled easily (from minutes to hours) by changing the vortex time, assembly temperature and/or protein concentration, providing a useful timeframe for cell encapsulation. The stiffness of preformed hydrogels recovered quickly, immediately after injection through a needle, enabling the potential use of these systems for injectable cell delivery scaffolds.
机译:据我们所知,开发了一种新颖的技术来控制β-折叠形成速率和天然丝绸溶液的水凝胶动力学。圆二色性光谱表明,蚕丝水溶液的涡旋导致从最初富含随机卷曲的整体蛋白质结构过渡到富含β-折叠含量的蛋白质结构。在与圆二色性实验相同的组装条件下收集的动态振荡流变学实验表明,由于丝纤蛋白的分子内构象变化和分子间自组装,β-折叠含量的增加与随后的粘弹性的变化直接相关。水凝胶化。涡旋低粘度丝溶液会导致复数剪切模量G *数量级增加,并形成刚性水凝胶(对于5.2 wt%的蛋白质浓度,G *约为70 kPa)。涡旋诱导的富含β-折叠的丝绸水凝胶由永久的,物理的,分子间的交联组成。通过改变涡旋时间,组装温度和/或蛋白质浓度,可以轻松控制水凝胶动力学(从数分钟到数小时),从而为细胞封装提供了有用的时间框架。通过针头注射后,预制的水凝胶的刚度很快恢复,从而使这些系统可用于可注射的细胞递送支架。

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