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人发角蛋白的冷冻凝胶化

Cryogelation of Human Hair Keratins.

作者信息

Chua Huei Min, Zhao Zhitong, Ng Kee Woei

机构信息

School of Materials Science and Engineering, Nanyang Technological University, Singapore, 639798, Singapore.

Center for Nanotechnology and Nanotoxicology, Harvard T.H. Chan School of Public Health, Harvard University, 665 Huntington Avenue, Boston, MA, 02115, USA.

出版信息

Macromol Rapid Commun. 2020 Nov;41(21):e2000254. doi: 10.1002/marc.202000254. Epub 2020 Aug 9.

DOI:10.1002/marc.202000254
PMID:32776404
Abstract

Human hair keratins (HHK) are known for their biocompatibility and potential to regulate cell response, possibly due to the presence of the leucine-aspartic-valine cell adhesion and signaling motifs. Together with the abundance of cysteine residues in HHK, 3D HHK scaffolds are fabricated through cryogelation based on spontaneous disulfide crosslinks and noncovalent interactions. Herein, the molecular mechanism of HHK self-assembly during cryogelation is interrogated and the influence of cryogelation parameters on the properties of the resultant scaffolds is studied. With successive freeze-thaw cycles, the storage modulus (G') of HHK cryogels substantially improves from 116.4 Pa at freeze-thaw cycle 3 (FT3) to 1908.7 Pa at freeze-thaw cycle 10 (FT10). Meanwhile, it is found that complete thiol-capping of HHK samples significantly inhibits cryogel formation as compared to partially or uncapped HHK samples, suggesting the dominant role of disulfide stabilization in cryogelation. Finally, uniaxial compression tests on HHK sponges demonstrate that FT cycling, from 0 to 10, is able to improve the compression modulus of sponges by ≈12-folds. These findings show that macroscale properties of HHK cryogels can be conveniently modulated by physical parameters of cryogelation and that disulfide bonding is the main stabilizing force in HHK cryogels.

摘要

人发角蛋白(HHK)以其生物相容性和调节细胞反应的潜力而闻名,这可能归因于亮氨酸-天冬氨酸-缬氨酸细胞粘附和信号基序的存在。由于HHK中富含半胱氨酸残基,基于自发二硫键交联和非共价相互作用,通过冷冻凝胶化制备了三维HHK支架。在此,研究了冷冻凝胶化过程中HHK自组装的分子机制,并研究了冷冻凝胶化参数对所得支架性能的影响。随着连续的冻融循环,HHK冷冻凝胶的储能模量(G')从冻融循环3(FT3)时的116.4 Pa大幅提高到冻融循环10(FT10)时的1908.7 Pa。同时,发现与部分封端或未封端的HHK样品相比,HHK样品的完全硫醇封端显著抑制冷冻凝胶的形成,这表明二硫键稳定在冷冻凝胶化中起主导作用。最后,对HHK海绵进行的单轴压缩试验表明,从0到10的冻融循环能够使海绵的压缩模量提高约12倍。这些发现表明,HHK冷冻凝胶的宏观性质可以通过冷冻凝胶化的物理参数方便地调节,并且二硫键是HHK冷冻凝胶中的主要稳定力。

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