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  5. 3D Printing of Silk Protein Structures by Aqueous Solvent‐Directed Molecular Assembly

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Article
en
2019

3D Printing of Silk Protein Structures by Aqueous Solvent‐Directed Molecular Assembly

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en
2019
Vol 20 (1)
Vol. 20
DOI: 10.1002/mabi.201900191

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David Kaplan
David Kaplan

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Xuan Mu
Yu Wang
Chengchen Guo
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Abstract

Hierarchical molecular assembly is a fundamental strategy for manufacturing protein structures in nature. However, to translate this natural strategy into advanced digital manufacturing like three-dimensional (3D) printing remains a technical challenge. This work presents a 3D printing technique with silk fibroin to address this challenge, by rationally designing an aqueous salt bath capable of directing the hierarchical assembly of the protein molecules. This technique, conducted under aqueous and ambient conditions, results in 3D proteinaceous architectures characterized by intrinsic biocompatibility/biodegradability and robust mechanical features. The versatility of this method is shown in a diversity of 3D shapes and a range of functional components integrated into the 3D prints. The manufacturing capability is exemplified by the single-step construction of perfusable microfluidic chips which eliminates the use of supporting or sacrificial materials. The 3D shaping capability of the protein material can benefit a multitude of biomedical devices, from drug delivery to surgical implants to tissue scaffolds. This work also provides insights into the recapitulation of solvent-directed hierarchical molecular assembly for artificial manufacturing.

How to cite this publication

Xuan Mu, Yu Wang, Chengchen Guo, Yamin Li, Shengjie Ling, Wenwen Huang, Peggy Cebe, Huan‐Hsuan Hsu, Fabio De Ferrari, Xiaocheng Jiang, Qiaobing Xu, Alessandra Balduini, Fiorenzo G. Omenetto, David Kaplan (2019). 3D Printing of Silk Protein Structures by Aqueous Solvent‐Directed Molecular Assembly. , 20(1), DOI: https://doi.org/10.1002/mabi.201900191.

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Publication Details

Type

Article

Year

2019

Authors

14

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1002/mabi.201900191

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