Literature DB >> 29057076

Three-dimensional fabrication of cell-laden biodegradable poly(ethylene glycol-co-depsipeptide) hydrogels by visible light stereolithography.

Laura Elomaa1,2, Chi-Chun Pan1,3, Yaser Shanjani1, Andrey Malkovskiy4, Jukka V Seppälä2, Yunzhi Yang1,5,6.   

Abstract

Stereolithography (SLA) holds great promise in fabrication of cell-laden hydrogels with biomimetic complexity for use in tissue engineering and pharmaceutics. However, the availability of biodegradable photocrosslinkable hydrogel polymers for SLA is very limited. In this study, a water-soluble methacrylated poly(ethylene glycol-co-depsipeptide) was synthesized to yield a biodegradable photocrosslinkable macromer for SLA. Structural analysis confirmed the inclusion of biodegradable peptide and ester groups and photocrosslinkable methacrylate groups into the polymer backbone. The new macromer combined with RGDS peptide was used for SLA fabrication of hydrogels in absence and presence of cells. With the increasing light exposure time in SLA, mechanical stiffness of the hydrogels increased from 3 ± 1 kPa to 38 ± 13 kPa. Total mass loss of the samples within 7 days in PBS was 13%-21% and within 24 days 35%-66%. Due to degradation, the mechanical stiffness decreased by one order magnitude within 7-day incubation in PBS. Encapsulated endothelial cells proliferated in the hydrogels during 10-day in vitro cell culturing study. The macromer was further used in SLA to fabricate bifurcating tubular structures as preliminary vessel grafts. The new biodegradable, photocrosslinkable polymer is a significant addition to the very limited material selection currently available for SLA-based fabrication of cell-laden tissue engineering constructs.

Entities:  

Year:  2015        PMID: 29057076      PMCID: PMC5650242          DOI: 10.1039/c5tb01468a

Source DB:  PubMed          Journal:  J Mater Chem B        ISSN: 2050-750X            Impact factor:   6.331


  22 in total

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2.  Rapid prototyping of tissue-engineering constructs, using photopolymerizable hydrogels and stereolithography.

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Journal:  Tissue Eng       Date:  2004 Sep-Oct

3.  Protein adsorption to poly(ethylene oxide) surfaces.

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4.  Defining the role of matrix compliance and proteolysis in three-dimensional cell spreading and remodeling.

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5.  Microfabrication of complex porous tissue engineering scaffolds using 3D projection stereolithography.

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Journal:  Biomaterials       Date:  2012-02-25       Impact factor: 12.479

6.  Stereolithography of three-dimensional bioactive poly(ethylene glycol) constructs with encapsulated cells.

Authors:  Karina Arcaute; Brenda K Mann; Ryan B Wicker
Journal:  Ann Biomed Eng       Date:  2006-08-01       Impact factor: 3.934

7.  The use of poly(ethylene glycol) hydrogels to investigate the impact of ECM chemistry and mechanics on smooth muscle cells.

Authors:  Shelly R Peyton; Christopher B Raub; Vic P Keschrumrus; Andrew J Putnam
Journal:  Biomaterials       Date:  2006-06-09       Impact factor: 12.479

8.  Synthesis and characterization of a novel polydepsipeptide contained tri-block copolymer (mPEG-PLLA-PMMD) as self-assembly micelle delivery system for paclitaxel.

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Journal:  Int J Pharm       Date:  2012-04-01       Impact factor: 5.875

9.  Influence of hydrogel mechanical properties and mesh size on vocal fold fibroblast extracellular matrix production and phenotype.

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10.  Encapsulating chondrocytes in degrading PEG hydrogels with high modulus: engineering gel structural changes to facilitate cartilaginous tissue production.

Authors:  Stephanie J Bryant; Ryan J Bender; Kevin L Durand; Kristi S Anseth
Journal:  Biotechnol Bioeng       Date:  2004-06-30       Impact factor: 4.530

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  13 in total

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Review 2.  3D bioprinting of vascular conduits for pediatric congenital heart repairs.

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3.  Three-dimensional Printing of Multilayered Tissue Engineering Scaffolds.

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Journal:  Biomater Res       Date:  2018-04-06

7.  Precisely printable and biocompatible silk fibroin bioink for digital light processing 3D printing.

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Journal:  Nat Commun       Date:  2018-04-24       Impact factor: 14.919

8.  Vascularized Bone-Mimetic Hydrogel Constructs by 3D Bioprinting to Promote Osteogenesis and Angiogenesis.

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Review 9.  Bioinks and bioprinting technologies to make heterogeneous and biomimetic tissue constructs.

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Review 10.  3D Bioprinting at the Frontier of Regenerative Medicine, Pharmaceutical, and Food Industries.

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