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Photoreactive elastin-like proteins for use as versatile bioactive materials and surface coatings

机译:光反应性的弹性蛋白样蛋白用作通用的生物活性材料和表面涂层

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摘要

Photocrosslinkable, protein-engineered biomaterials combine a rapid, controllable, cytocompatible crosslinking method with a modular design strategy to create a new family of bioactive materials. These materials have a wide range of biomedical applications, including the development of bioactive implant coatings, drug delivery vehicles, and tissue engineering scaffolds. We present the successful functionalization of a bioactive elastin-like protein with photoreactive diazirine moieties. Scalable synthesis is achieved using a standard recombinant protein expression host followed by site-specific modification of lysine residues with a heterobifunctional N-hydroxysuccinimide ester-diazirine crosslinker. The resulting biomaterial is demonstrated to be processable by spin coating, drop casting, soft lithographic patterning, and mold casting to fabricate a variety of two- and three-dimensional photocrosslinked biomaterials with length scales spanning the nanometer to millimeter range. Protein thin films proved to be highly stable over a three-week period. Cell-adhesive functional domains incorporated into the engineered protein materials were shown to remain active post-photo-processing. Human adipose-derived stem cells achieved faster rates of cell adhesion and larger spread areas on thin films of the engineered protein compared to control substrates. The ease and scalability of material production, processing versatility, and modular bioactive functionality make this recombinantly engineered protein an ideal candidate for the development of novel biomaterial coatings, films, and scaffolds.
机译:可光交联,蛋白质工程化的生物材料结合了快速,可控,可与细胞相容的交联方法和模块化设计策略,从而创建了一系列新的生物活性材料。这些材料具有广泛的生物医学应用,包括生物活性植入物涂层,药物输送载体和组织工程支架的开发。我们介绍了具有光反应性二嗪嗪部分的生物活性弹性蛋白样蛋白的成功功能化。使用标准重组蛋白表达宿主,然后使用异双功能N-羟基琥珀酰亚胺酯-重氮基交联剂对赖氨酸残基进行位点特异性修饰,即可实现可扩展的合成。证明所得的生物材料可通过旋涂,滴铸,软光刻图案化和铸模加工来加工,以制造长度范围跨越纳米至毫米范围的各种二维和三维光致交联生物材料。蛋白薄膜在三周的时间内被证明是高度稳定的。结合到工程化蛋白材料中的细胞粘附功能域显示出在光冲洗后仍保持活性。与对照底物相比,人类脂肪干细胞在工程蛋白薄膜上实现了更快的细胞粘附速率和更大的扩散面积。材料生产的简便性和可扩展性,加工的多功能性以及模块化的生物活性功能使这种重组工程化的蛋白成为开发新型生物材料涂层,薄膜和支架的理想人选。

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