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Water-responsive 4D printing based on self-assembly of hydrophobic protein “Zein” for the control of degradation rate and drug release

Four-dimensional (4D) printing is a promising technology that provides solutions for compelling needs in various fields. Most of the reported 4D printed systems are based on the temporal shape transformation of printed subjects. Induction of temporal heterogenicity in functions in addition to shape...

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Autores principales: Zhang, Yubei, Raza, Ali, Xue, Ya-Qi, Yang, Ganggang, Hayat, Uzma, Yu, Jingwen, Liu, Chang, Wang, Hua-Jie, Wang, Jin-Ye
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9708924/
https://www.ncbi.nlm.nih.gov/pubmed/36474653
http://dx.doi.org/10.1016/j.bioactmat.2022.11.009
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author Zhang, Yubei
Raza, Ali
Xue, Ya-Qi
Yang, Ganggang
Hayat, Uzma
Yu, Jingwen
Liu, Chang
Wang, Hua-Jie
Wang, Jin-Ye
author_facet Zhang, Yubei
Raza, Ali
Xue, Ya-Qi
Yang, Ganggang
Hayat, Uzma
Yu, Jingwen
Liu, Chang
Wang, Hua-Jie
Wang, Jin-Ye
author_sort Zhang, Yubei
collection PubMed
description Four-dimensional (4D) printing is a promising technology that provides solutions for compelling needs in various fields. Most of the reported 4D printed systems are based on the temporal shape transformation of printed subjects. Induction of temporal heterogenicity in functions in addition to shape may extend the scope of 4D printing. Herein, we report a 4D printing approach using plant protein (zein) gel inspired by the amyloid fibrils formation mechanism. The printing of zein gel in a specialized layered-Carbopol supporting bath with different water concentrations in an ethanol-water mixture modulates hydrophobic and hydrogen bonding that causes temporal changes in functions. The part of the construct printed in a supporting bath with higher water content exhibits higher drug loading, faster drug release and degradation than those printed in the supporting bath with lower water content. Tri-segment conduit and butterfly-shaped construct with two asymmetrical wings are printed using this system to evaluate biomedical function as nerve conduit and drug delivery system. 4D printed conduits are also effective as a drug-eluting urethral stent in the porcine model. Overall, this study extends the concept of 4D printing beyond shape transformation and presents an approach of fabricating specialized baths for 4D printing that can also be extended to other materials to obtain 4D printed medical devices with translational potential.
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spelling pubmed-97089242022-12-05 Water-responsive 4D printing based on self-assembly of hydrophobic protein “Zein” for the control of degradation rate and drug release Zhang, Yubei Raza, Ali Xue, Ya-Qi Yang, Ganggang Hayat, Uzma Yu, Jingwen Liu, Chang Wang, Hua-Jie Wang, Jin-Ye Bioact Mater Article Four-dimensional (4D) printing is a promising technology that provides solutions for compelling needs in various fields. Most of the reported 4D printed systems are based on the temporal shape transformation of printed subjects. Induction of temporal heterogenicity in functions in addition to shape may extend the scope of 4D printing. Herein, we report a 4D printing approach using plant protein (zein) gel inspired by the amyloid fibrils formation mechanism. The printing of zein gel in a specialized layered-Carbopol supporting bath with different water concentrations in an ethanol-water mixture modulates hydrophobic and hydrogen bonding that causes temporal changes in functions. The part of the construct printed in a supporting bath with higher water content exhibits higher drug loading, faster drug release and degradation than those printed in the supporting bath with lower water content. Tri-segment conduit and butterfly-shaped construct with two asymmetrical wings are printed using this system to evaluate biomedical function as nerve conduit and drug delivery system. 4D printed conduits are also effective as a drug-eluting urethral stent in the porcine model. Overall, this study extends the concept of 4D printing beyond shape transformation and presents an approach of fabricating specialized baths for 4D printing that can also be extended to other materials to obtain 4D printed medical devices with translational potential. KeAi Publishing 2022-11-25 /pmc/articles/PMC9708924/ /pubmed/36474653 http://dx.doi.org/10.1016/j.bioactmat.2022.11.009 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Zhang, Yubei
Raza, Ali
Xue, Ya-Qi
Yang, Ganggang
Hayat, Uzma
Yu, Jingwen
Liu, Chang
Wang, Hua-Jie
Wang, Jin-Ye
Water-responsive 4D printing based on self-assembly of hydrophobic protein “Zein” for the control of degradation rate and drug release
title Water-responsive 4D printing based on self-assembly of hydrophobic protein “Zein” for the control of degradation rate and drug release
title_full Water-responsive 4D printing based on self-assembly of hydrophobic protein “Zein” for the control of degradation rate and drug release
title_fullStr Water-responsive 4D printing based on self-assembly of hydrophobic protein “Zein” for the control of degradation rate and drug release
title_full_unstemmed Water-responsive 4D printing based on self-assembly of hydrophobic protein “Zein” for the control of degradation rate and drug release
title_short Water-responsive 4D printing based on self-assembly of hydrophobic protein “Zein” for the control of degradation rate and drug release
title_sort water-responsive 4d printing based on self-assembly of hydrophobic protein “zein” for the control of degradation rate and drug release
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9708924/
https://www.ncbi.nlm.nih.gov/pubmed/36474653
http://dx.doi.org/10.1016/j.bioactmat.2022.11.009
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