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Mechanical Training-Driven Structural Remodeling: A Rational Route for Outstanding Highly Hydrated Silk Materials.
Shu, Ting; Lv, Zhuochen; Chen, Chun-Teh; Gu, Grace X; Ren, Jing; Cao, Leitao; Pei, Ying; Ling, Shengjie; Kaplan, David L.
Afiliação
  • Shu T; School of Physical Science and Technology, ShanghaiTech University, 393 Middle Huaxia Road, Shanghai, 201210, China.
  • Lv Z; School of Physical Science and Technology, ShanghaiTech University, 393 Middle Huaxia Road, Shanghai, 201210, China.
  • Chen CT; Department of Materials Science and Engineering, University of California, Berkeley, CA, 94720, USA.
  • Gu GX; Department of Mechanical Engineering, University of California, Berkeley, CA, 94720, USA.
  • Ren J; School of Physical Science and Technology, ShanghaiTech University, 393 Middle Huaxia Road, Shanghai, 201210, China.
  • Cao L; School of Physical Science and Technology, ShanghaiTech University, 393 Middle Huaxia Road, Shanghai, 201210, China.
  • Pei Y; School of Materials Science and Engineering, Zhengzhou University, Zhengzhou, 450001, China.
  • Ling S; School of Physical Science and Technology, ShanghaiTech University, 393 Middle Huaxia Road, Shanghai, 201210, China.
  • Kaplan DL; Department of Biomedical Engineering, Tufts University, Medford, MA, 02155, USA.
Small ; 17(33): e2102660, 2021 08.
Article em En | MEDLINE | ID: mdl-34288406
ABSTRACT
Highly hydrated silk materials (HHSMs) have been the focus of extensive research due to their usefulness in tissue engineering, regenerative medicine, and soft devices, among other fields. However, HHSMs have weak mechanical properties that limit their practical applications. Inspired by the mechanical training-driven structural remodeling strategy (MTDSRS) in biological tissues, herein, engineered MTDSRS is developed for self-reinforcement of HHSMs to improve their inherent mechanical properties and broaden potential utility. The MTDSRS consists of repetitive mechanical training and solvent-induced conformation transitions. Solvent-induced conformation transition enables the formation of ß-sheet physical crosslinks among the proteins, while the repetitive mechanical loading allows the rearrangement of physically crosslinked proteins along the loading direction. Such synergistic effects produce strong and stiff mechanically trained-HHSMs (MT-HHSMs). The fracture strength and Young's modulus of the resultant MT-HHSMs (water content of 43 ± 4%) reach 4.7 ± 0.9 and 21.3 ± 2.1 MPa, respectively, which are 8-fold stronger and 13-fold stiffer than those of the as-prepared HHSMs, as well as superior to most previously reported HHSMs with comparable water content. In addition, the animal silk-like highly oriented molecular crosslinking network structure also provides MT-HHSMs with fascinating physical and functional features, such as stress-birefringence responsibility, humidity-induced actuation, and repeatable self-folding deformation.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Seda / Fibroínas Limite: Animals Idioma: En Ano de publicação: 2021 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Seda / Fibroínas Limite: Animals Idioma: En Ano de publicação: 2021 Tipo de documento: Article