4.8 Article

Nano-fishnet formation of silk controlled by Arginine density

期刊

ACTA BIOMATERIALIA
卷 128, 期 -, 页码 201-208

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.actbio.2021.04.001

关键词

Spider silk; Molecular dynamics simulation; Nano-fishnet structure; Fiber design

资金

  1. National Research Foundation of Korea (NRF) [NRF-2019R1A2C1086103, NRF-2020R1I1A1A01073771]
  2. Ministry of Science, ICT & Future Planning
  3. Technology Innovation Program - Ministry of Trade, Industry & Energy (MOTIE, Korea) [20012422]
  4. Korea Evaluation Institute of Industrial Technology (KEIT) [20012422] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

Silk fibers are known for their exceptional mechanical properties, such as being over 7 times tougher than Kevlar 49 Fibre. A large portion of the superior properties of silk comes from its naturally formed nano-fishnet structures, which can be controlled by humidity and Arginine density. Understanding and manipulating these nano-fishnet structures could lead to advancements in protein and synthetic fiber design.
Silk fiber is renowned for its superb mechanical properties, such as over 7 times the toughness of Kevlar 49 Fibre. As the spider silk is tougher than any man-made fiber, there is a lot to be learned from spider silk. Recently, it has been reported that a large portion of the properties of silk is from naturally formed nano-fishnet structures of silk, but neither its formation mechanism nor its formation condition has been explained. Here, we show how the formation and disappearance of nano-fishnet of silk is determined by humidity, and how the humidity-dependency of nano-fishnet formation can be overcome by changing density of Arginine through sequence mutation. We demonstrate that the nano-fishnet-structured silk ex-hibits higher strength and toughness than its counterparts. This information on controllable nano-fishnet formation of silk is expected to pave the way for development of protein and synthetic fiber design. Statement of significance Silk fibers are a very interesting material in that it exhibits superb mechanical properties such as 7 times the toughness of Kevlar 49 Fibre, despite being only composed of proteins. Therefore, it is important that we understand the principle of its high mechanical properties so that it may be applied in designing syn-thetic fibers. Recently, it has been reported that a large portion of its mechanical property comes from its nano-fishnet structures, but no detailed explanation on the condition or mechanism of formation. Through molecular dynamic simulations, we simulated the nano-fishnet formation of silk and analyzed the condition and mechanism behind it, and showed how the formation of nano-fishnet structures could be controlled by changing the density of Arginine residues. Our study provides information on fiber en-hancement mechanism that could be applied to synthetic and protein fiber design. (c) 2021 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved. Silk fibers are a very interesting material in that it exhibits superb mechanical properties such as 7 times the toughness of Kevlar 49 Fibre, despite being only composed of proteins. Therefore, it is important that we understand the principle of its high mechanical properties so that it may be applied in designing synthetic fibers. Recently, it has been reported that a large portion of its mechanical property comes from its nano-fishnet structures, but no detailed explanation on the condition or mechanism of formation. Through molecular dynamic simulations, we simulated the nano-fishnet formation of silk and analyzed the condition and mechanism behind it, and showed how the formation of nano-fishnet structures could be controlled by changing the density of Arginine residues. Our study provides information on fiber enhancement mechanism that could be applied to synthetic and protein fiber design.

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