| Literature DB >> 30221837 |
Nureddin Ashammakhi1,2,3, Samad Ahadian1,2, Fan Zengjie1,2,4, Kasinan Suthiwanich1,2,5, Farnaz Lorestani1,2,6,7, Gorka Orive8,9,10, Serge Ostrovidov1,2, Ali Khademhosseini1,2,11,12,13,14.
Abstract
Three-dimensionally printed constructs are static and do not recapitulate the dynamic nature of tissues. Four-dimensional (4D) bioprinting has emerged to include conformational changes in printed structures in a predetermined fashion using stimuli-responsive biomaterials and/or cells. The ability to make such dynamic constructs would enable an individual to fabricate tissue structures that can undergo morphological changes. Furthermore, other fields (bioactuation, biorobotics, and biosensing) will benefit from developments in 4D bioprinting. Here, the authors discuss stimuli-responsive biomaterials as potential bioinks for 4D bioprinting. Natural cell forces can also be incorporated into 4D bioprinted structures. The authors introduce mathematical modeling to predict the transition and final state of 4D printed constructs. Different potential applications of 4D bioprinting are also described. Finally, the authors highlight future perspectives for this emerging technology in biomedicine.Entities:
Keywords: 4D bioprinting; additive manufacturing; bioinks; stimuli-responsive biomaterials; tissue engineering
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Year: 2018 PMID: 30221837 PMCID: PMC6433173 DOI: 10.1002/biot.201800148
Source DB: PubMed Journal: Biotechnol J ISSN: 1860-6768 Impact factor: 4.677