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Synthesis of a Photocurable Acrylated Poly(ethylene Glycol)--poly(xylitol Sebacate) Copolymers Hydrogel 3D Printing Ink for Tissue Engineering

Overview
Journal RSC Adv
Specialty Chemistry
Date 2022 May 6
PMID 35515220
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Abstract

Photocurable hydrogel scaffolds for tissue engineering must have excellent biocompatibility, tunable mechanical characteristics, and be biodegradable at a controllable rate. Hydrogels developed as ink for 3D printing require several other properties such as optimal viscosity and shorter photocrosslinking time to ensure continuous extrusion and to avoid untimely collapse of the printed structure. Here, a novel photocurable hydrogel made of acrylated poly(ethylene glycol)--poly(xylitol sebacate) (PEXS-A) is developed for tissue engineering and 3D printing applications. Synthesis of PEXS-A hydrogel with equilibrated water content above 90% is achieved a quick and facile photopolymerization process. Changing the acrylation ratio of the PEXS-A hydrogel has an impact on its crosslinking density, mechanical properties and degradation rate, thus highlighting PEXS-A tunability. PEXS-A could be employed as ink as demonstrated by the 3D printing of a 30-layers cubic grid with high structural integrity. Furthermore, 3T3 fibroblast cells encapsulated into PEXS-A during photocrosslinking maintain a viability of 93.76% after seven days, which showed the good biocompatibility of this novel hydrogel. These results indicate that PEXS-A hydrogel could have multiple applications including as 3D printing ink and as tissue engineering scaffold.

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References
1.
Bodle J, Hanson A, Loboa E . Adipose-derived stem cells in functional bone tissue engineering: lessons from bone mechanobiology. Tissue Eng Part B Rev. 2011; 17(3):195-211. PMC: 3098956. DOI: 10.1089/ten.TEB.2010.0738. View

2.
Krishna L, Jayabalan M . Synthesis and characterization of biodegradable poly (ethylene glycol) and poly (caprolactone diol) end capped poly (propylene fumarate) cross linked amphiphilic hydrogel as tissue engineering scaffold material. J Mater Sci Mater Med. 2008; 20 Suppl 1:S115-22. DOI: 10.1007/s10856-008-3493-3. View

3.
Niemeyer G . The polyethylene glycols. J Am Pharm Assoc Am Pharm Assoc (Baltim). 2010; 8(4):194-6. DOI: 10.1016/s0095-9561(16)31220-8. View

4.
Nijst C, Bruggeman J, Karp J, Ferreira L, Zumbuehl A, Bettinger C . Synthesis and characterization of photocurable elastomers from poly(glycerol-co-sebacate). Biomacromolecules. 2007; 8(10):3067-73. PMC: 2662850. DOI: 10.1021/bm070423u. View

5.
Daniele M, Adams A, Naciri J, North S, Ligler F . Interpenetrating networks based on gelatin methacrylamide and PEG formed using concurrent thiol click chemistries for hydrogel tissue engineering scaffolds. Biomaterials. 2013; 35(6):1845-56. DOI: 10.1016/j.biomaterials.2013.11.009. View