功能蛋白在超胸腔基材料中的应用。

Q4 Biochemistry, Genetics and Molecular Biology
Britt Faulk, Amanda Jons, Brandon Look Fong, Maximillian Lara, Andrew R Irion, Sarah E Bondos
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引用次数: 0

摘要

将生物活性(如细胞信号传导或配体识别)添加到生物材料中的能力产生了将多种生物活性包含到单一材料中的潜力。在某些情况下,需要将这些活动定位到生物材料的不同区域,从而创建功能模式。虽然光刻和3D打印已经成为许多材料的有效技术,但在蛋白质组成的材料中,图案仍然是一个挑战,部分原因是这些材料是如何人工组装的。蛋白质纤维通常是由在空气-水界面处聚集的蛋白质膜产生的。本章描述了利用这种聚集过程来图案材料的方法,使用果蝇Hox蛋白Ultrabithorax (Ubx)作为模型自组装蛋白。通过基因融合,Ubx和功能蛋白作为单一多肽产生,既能形成材料,又能执行感兴趣的活性。这个功能保留在最终的材料中。在本章中,我们描述了如何使用多种Ubx融合蛋白,不仅赋予最终材料多种功能,而且在纤维蛋白基材料中创建附加蛋白的宏观尺度模式。这些图案材料包括条纹纤维、双功能面纤维、梯度纤维和核壳纤维。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Patterning Functional Proteins in Ultrabithorax-Based Materials.

The ability to add bioactivities, such as cell signaling or ligand recognition, to biomaterials has generated the potential to include multiple bioactivities into a single material. In some cases, it is desirable to localize these activities to different areas of the biomaterial, creating functional patterns. While photolithography and 3D printing have been effective techniques for patterning functions in many materials, patterning remains a challenge in materials composed of protein, in part due to how these materials are artificially assembled. Protein fibers are often produced from protein films that co-acervate at the air-water interface. This chapter describes methods to leverage this coacervation process to pattern materials, using the Drosophila melanogaster Hox protein Ultrabithorax (Ubx) as a model self-assembling protein. Through gene fusion, Ubx and a functional protein are produced as a single polypeptide, capable of both forming materials and performing the activity of interest. This functionality is retained in the final materials. In this chapter, we describe how to use multiple Ubx fusion proteins to not only imbue the final materials with multiple functions, but also to create macroscale patterns of the appended proteins in fibrous protein-based materials. These patterned materials include striped fibers, bifunctional-faced fibers, gradient fibers, and core-shell fibers.

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来源期刊
Methods in molecular biology
Methods in molecular biology Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
2.00
自引率
0.00%
发文量
3536
期刊介绍: For over 20 years, biological scientists have come to rely on the research protocols and methodologies in the critically acclaimed Methods in Molecular Biology series. The series was the first to introduce the step-by-step protocols approach that has become the standard in all biomedical protocol publishing. Each protocol is provided in readily-reproducible step-by-step fashion, opening with an introductory overview, a list of the materials and reagents needed to complete the experiment, and followed by a detailed procedure that is supported with a helpful notes section offering tips and tricks of the trade as well as troubleshooting advice.
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