4.7 Article

Characterization of Anisotropic Human Hair Keratin Scaffolds Fabricated via Directed Ice Templating

期刊

MACROMOLECULAR BIOSCIENCE
卷 21, 期 2, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/mabi.202000314

关键词

anisotropic microstructure; biomimetic; human hair keratin; ice templating; soft tissue regeneration

资金

  1. Agency for Science, Technology and Research (A*STAR) [H17/01/a0/008, H17/01/a0/0L9]

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In this study, anisotropic human hair keratin scaffolds with aligned pores were successfully fabricated using a directed ice templating method, which significantly enhanced the tensile strength of the scaffolds. In vitro results demonstrated that these anisotropic scaffolds can support the adhesion, spreading, and proliferation of human dermal fibroblasts, holding promise as templates for soft tissue regeneration.
Human hair keratin (HHK) is successfully exploited as raw materials for 3D scaffolds for soft tissue regeneration owing to its excellent biocompatibility and bioactivity. However, most HHK scaffolds are not able to achieve the anisotropic mechanical properties of soft tissues such as tendons and ligaments due to lack of tunable, well-defined microstructures. In this study, directed ice templating method is used to fabricate anisotropic HHK scaffolds that are characterized by aligned pores (channels) in between keratin layers in the longitudinal plane. In contrast, pores in the transverse plane maintain a homogenous rounded morphology. Channel widths throughout the scaffolds range from approximate to 5 to approximate to 15 mu m and are tunable by varying the freezing temperature. In comparison with HHK scaffolds with random, isotropic pore structures, the tensile strength of anisotropic HHK scaffolds is enhanced significantly by up to fourfolds (approximate to 200 to approximate to 800 kPa) when the tensile load is applied in the direction parallel to the aligned pores. In vitro results demonstrate that the anisotropic HHK scaffolds are able to support human dermal fibroblast adhesion, spreading, and proliferation. The findings suggest that HHK scaffolds with well-defined, aligned microstructure hold promise as templates for soft tissues regeneration by mimicking their anisotropic properties.

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