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通过丝质块状材料的定向组装将功能编程到机械形式中。

Programming function into mechanical forms by directed assembly of silk bulk materials.

作者信息

Marelli Benedetto, Patel Nereus, Duggan Thomas, Perotto Giovanni, Shirman Elijah, Li Chunmei, Kaplan David L, Omenetto Fiorenzo G

机构信息

Silklab, Department of Biomedical Engineering, Tufts University, Medford, MA 02155.

Department of Chemical Engineering, Tufts University, Medford, MA 02155.

出版信息

Proc Natl Acad Sci U S A. 2017 Jan 17;114(3):451-456. doi: 10.1073/pnas.1612063114. Epub 2016 Dec 27.

Abstract

We report simple, water-based fabrication methods based on protein self-assembly to generate 3D silk fibroin bulk materials that can be easily hybridized with water-soluble molecules to obtain multiple solid formats with predesigned functions. Controlling self-assembly leads to robust, machinable formats that exhibit thermoplastic behavior consenting material reshaping at the nanoscale, microscale, and macroscale. We illustrate the versatility of the approach by realizing demonstrator devices where large silk monoliths can be generated, polished, and reshaped into functional mechanical components that can be nanopatterned, embed optical function, heated on demand in response to infrared light, or can visualize mechanical failure through colorimetric chemistries embedded in the assembled (bulk) protein matrix. Finally, we show an enzyme-loaded solid mechanical part, illustrating the ability to incorporate biological function within the bulk material with possible utility for sustained release in robust, programmably shapeable mechanical formats.

摘要

我们报告了基于蛋白质自组装的简单水基制造方法,以生成三维丝素蛋白块状材料,这种材料可以很容易地与水溶性分子杂交,从而获得具有预先设计功能的多种固体形式。控制自组装可产生坚固、可加工的形式,这些形式表现出热塑性行为,允许在纳米尺度、微米尺度和宏观尺度上对材料进行重塑。我们通过实现演示装置来说明该方法的多功能性,在这些装置中,可以生成大型丝素蛋白整体材料,将其抛光并重塑为功能性机械部件,这些部件可以进行纳米图案化、嵌入光学功能、响应红外光按需加热,或者可以通过嵌入组装(块状)蛋白质基质中的比色化学来可视化机械故障。最后,我们展示了一个负载酶的固体机械部件,说明了在块状材料中纳入生物功能的能力,这对于以坚固、可编程可成型的机械形式进行持续释放可能具有实用性。

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