| Literature DB >> 30906853 |
Shida Miao1, Haitao Cui1, Margaret Nowicki1, Lang Xia1, Xuan Zhou1, Se-Jun Lee1, Wei Zhu1, Kausik Sarkar1, Zhiyong Zhang2, Lijie Grace Zhang1.
Abstract
4D printing represents one of the most advanced fabrication techniques for prospective applications in tissue engineering, biomedical devices, and soft robotics, among others. In this study, a novel multiresponsive architecture is developed through stereolithography-based 4D printing, where a universal concept of stress-induced shape transformation is applied to achieve the 4D reprogramming. The light-induced graded internal stress followed by a subsequent solvent-induced relaxation, driving an autonomous and reversible change of the programmed configuration after printing, is employed and investigated in depth and details. Moreover, the fabricated construct possesses shape memory property, offering a characteristic of multiple shape change. Using this novel multiple responsive 4D technique, a proof-of-concept smart nerve guidance conduit is demonstrated on a graphene hybrid 4D construct providing outstanding multifunctional characteristics for nerve regeneration including physical guidance, chemical cues, dynamic self-entubulation, and seamless integration. By employing this fabrication technique, creating multiresponsive smart architectures, as well as demonstrating application potential, this work paves the way for truly initiation of 4D printing in various high-value research fields.Entities:
Keywords: 4D bioprinting; multiresponsive; shape memory; smart biomaterials; tissue engineering
Year: 2018 PMID: 30906853 PMCID: PMC6430203 DOI: 10.1002/adbi.201800101
Source DB: PubMed Journal: Adv Biosyst