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Visible light crosslinkable human hair keratin hydrogels

机译:可见光可交联的人发角蛋白水凝胶

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摘要

Keratins extracted from human hair have emerged as a promising biomaterial for various biomedical applications, partly due to their wide availability, low cost, minimal immune response, and the potential to engineer autologous tissue constructs. However, the fabrication of keratin‐based scaffolds typically relies on limited crosslinking mechanisms, such as via physical interactions or disulfide bond formation, which are time‐consuming and result in relatively poor mechanical strength and stability. Here, we report the preparation of photocrosslinkable keratin‐polyethylene glycol (PEG) hydrogels via the thiol‐norbornene “click” reaction, which can be formed within one minute upon irradiation of visible light. The resulting keratin‐PEG hydrogels showed highly tunable mechanical properties of up to 45 kPa in compressive modulus, and long‐term stability in buffer solutions and cell culture media. These keratin‐based hydrogels were tested as cell culture substrates in both two‐dimensional surface seeding and three‐dimensional cell encapsulation, demonstrating excellent cytocompatibility to support the attachment, spreading, and proliferation of fibroblast cells. Moreover, the photocrosslinking mechanism makes keratin‐based hydrogel suitable for various microfabrication techniques, such as micropatterning and wet spinning, to fabricate cell‐laden tissue constructs with different architectures. We believe that the unique features of this photocrosslinkable human hair keratin hydrogel promise new opportunities for their future biomedical applications.
机译:从人毛中提取的角蛋白已成为各种生物医学应用的有前途的生物材料,部分原因是它们的广泛可用性,低成本,最小的免疫反应以及对自体组织构建体进行改造的潜力。但是,基于角蛋白的支架的制造通常依赖于有限的交联机制,例如通过物理相互作用或形成二硫键,这很费时,并且导致相对较差的机械强度和稳定性。在这里,我们报道了通过硫醇-降冰片烯“点击”反应制备光可交联的角蛋白-聚乙二醇(PEG)水凝胶的过程,该反应可在可见光照射后一分钟内形成。所得的角蛋白PEG水凝胶的压缩模量显示出高达45 kPa的高度可调节的机械性能,并在缓冲溶液和细胞培养基中具有长期稳定性。这些基于角蛋白的水凝胶已在二维表面接种和三维细胞封装中作为细胞培养底物进行了测试,证明了优异的细胞相容性,可支持成纤维细胞的附着,扩散和增殖。此外,光交联机制使基于角蛋白的水凝胶适用于各种微加工技术,例如微图案和湿法纺丝,以制造具有不同结构的充满细胞的组织构造。我们相信,这种可光交联的人类头发角蛋白水凝胶的独特功能有望为其未来的生物医学应用带来新的机遇。

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