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通过过滤可扩展生产基因工程纳米纤维宏观材料。

Scalable Production of Genetically Engineered Nanofibrous Macroscopic Materials via Filtration.

作者信息

Dorval Courchesne Noémie-Manuelle, Duraj-Thatte Anna, Tay Pei Kun R, Nguyen Peter Q, Joshi Neel S

机构信息

Wyss Institute for Biologically Inspired Engineering, Harvard University, Boston, Massachusetts 02115, United States.

School of Engineering and Applied Sciences, Harvard University, Cambridge, Massachusetts 02138, United States.

出版信息

ACS Biomater Sci Eng. 2017 May 8;3(5):733-741. doi: 10.1021/acsbiomaterials.6b00437. Epub 2016 Oct 26.

Abstract

As interest in using proteins to assemble functional, biocompatible, and environmentally friendly materials is growing, developing scalable protocols for producing recombinant proteins with customized functions coupled to straightforward fabrication processes is becoming crucial. Here, we use bacteria to produce amyloid protein nanofibers that are key constituents of the biofilm extracellular matrix and show that protein nanofiber aggregates can be purified using a fast and easily accessible vacuum filtration procedure. With their extreme resistance to heat, detergents, solvents, and denaturing agents, engineered curli nanofibers remain functional throughout the rigorous processing and can be used to assemble macroscopic materials directly from broth culture. As a demonstration, we show that engineered curli nanofibers can be fabricated into self-standing films while maintaining the functionality of various fused domains that confer new specific binding activity to the material. We also demonstrate that purified curli fibers can be disassembled, reassembled into thin films, and recycled for further materials processing. Our scalable approach, which combines established purification techniques for amyloid fibers, is applicable to a new class of recombinant amyloid proteins whose sequence can be easily tailored for diverse applications through genetic engineering.

摘要

随着利用蛋白质组装功能性、生物相容性和环境友好型材料的兴趣日益浓厚,开发可扩展的方案以生产具有定制功能并与直接制造工艺相结合的重组蛋白变得至关重要。在此,我们利用细菌生产作为生物膜细胞外基质关键成分的淀粉样蛋白纳米纤维,并表明蛋白质纳米纤维聚集体可以通过快速且易于操作的真空过滤程序进行纯化。工程化的卷曲纳米纤维对热、洗涤剂、溶剂和变性剂具有极强的抗性,在严格的加工过程中仍保持功能,并可直接用于从肉汤培养物中组装宏观材料。作为示例,我们展示了工程化的卷曲纳米纤维可以制成自立膜,同时保持赋予材料新的特异性结合活性的各种融合结构域的功能。我们还证明了纯化的卷曲纤维可以被拆解、重新组装成薄膜,并循环用于进一步的材料加工。我们的可扩展方法结合了已确立的淀粉样纤维纯化技术,适用于一类新的重组淀粉样蛋白,其序列可通过基因工程轻松定制以用于各种应用。

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