National Engineering Research Center for Biomaterials, Sichuan University, Chengdu, 610064, People's Republic of China.
Department of Ophthalmology, West China Hospital, Sichuan University, Chengdu, 610041, People's Republic of China.
J Biomed Mater Res B Appl Biomater. 2019 Jul;107(5):1452-1461. doi: 10.1002/jbm.b.34237. Epub 2018 Oct 19.
The keratin-based scaffolds are getting more and more attention in the application of tissue engineering. Though various approaches have been considered to improve the physical properties of these scaffolds, few succeeded in achieving the enhanced properties of the pure keratin scaffolds. Due to the presence of -OH, -NH , >CO, and -SH on the extracted human hair keratin (HHK), the formation of hydrogen bonds and disulfide bridges could be triggered under certain conditions, leading to the self-cross-linking of HHK materials. Herein, a simple and green strategy was introduced, via freeze-thaw cycles of keratin solutions without addition of extraneous reagents, to obtain the mechanically robust HHK scaffolds. The comparative quantitation of residual -SH among the samples treated with 1, 5, and 9 cycles confirmed the oxidation in the thaw process for forming disulfide bonds. So, the equivalent thaw time was applied in this study, and three groups of the treated samples after 1, 5, and 9 cycles with an appropriate extension thaw time were prepared to solely investigate the effects of physical cross-linking networks, primarily by formation of hydrogen bonds, on the properties of the obtained scaffolds. The systematic assessments including swelling behavior, porosity, thermal analysis, compressive measurement, and microstructural observation confirmed that the repetitive freeze-thaw treatment contributed to mechanically robust scaffolds with good porous interconnectivity. The cell culturing experiments further verified that these HHK scaffolds had desirable cytocompatibility, permitting the proper proliferation, attachment, and infiltration. Accordingly, this study provided a simple and efficient method to obtain biocompatible, mechanically robust keratin scaffolds. © 2018 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater 107B: 1452-1461, 2019.
角蛋白基支架在组织工程中的应用越来越受到关注。尽管已经考虑了各种方法来改善这些支架的物理性能,但很少有方法成功地实现了纯角蛋白支架增强的性能。由于提取的人发角蛋白(HHK)上存在-OH、-NH 、>CO 和-SH,在某些条件下可以触发氢键和二硫键的形成,导致 HHK 材料的自交联。本文介绍了一种简单而绿色的策略,即通过角蛋白溶液的冻融循环,无需添加额外的试剂,获得机械强度高的 HHK 支架。对经过 1、5 和 9 个循环处理的样品中残留-SH 的定量比较证实了解冻过程中形成二硫键的氧化。因此,在本研究中应用了等效的解冻时间,并制备了经过 1、5 和 9 个循环处理且适当延长解冻时间的三组样品,仅研究物理交联网络(主要通过氢键形成)对获得的支架性能的影响。包括溶胀行为、孔隙率、热分析、压缩测量和微观结构观察在内的系统评估证实,重复的冻融处理有助于获得具有良好多孔互连性的机械强度高的支架。细胞培养实验进一步验证了这些 HHK 支架具有良好的细胞相容性,允许适当的增殖、附着和渗透。因此,本研究提供了一种简单有效的方法来获得具有生物相容性和机械强度的角蛋白支架。