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Solid-State Crosslinkable, Shape-Memory Polyesters Serving Tissue Engineering

delete2023-02-17
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OA
AI
J
Jasper Delaey
L
Laurens Parmentier
L
Lincy Pyl
J
Joost Brancart
P
Peter Adriaensens
A
Agnes Dobos
P
Peter Dubruel
S
Sandra Van Vlierberghe *
DOI:10.1002/marc.202200955delete
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Abstract

Abstract

En 中文
Acrylate-endcapped urethane-based precursors constituting a poly(D,L-lactide)/poly(epsilon-caprolactone) (PDLLA/PCL) random copolymer backbone are synthesized with linear and star-shaped architectures and various molar masses. It is shown that the glass transition and thus the actuation temperature could be tuned by varying the monomer content (0-8 wt% epsilon-caprolactone, T-g,T-crosslinked = 10-42 degrees C) in the polymers. The resulting polymers are analyzed for their physico-chemical properties and viscoelastic behavior (G '(max) = 9.6-750 kPa). The obtained polymers are subsequently crosslinked and their shape-memory properties are found to be excellent (R-r = 88-100%, R-f = 78-99.5%). Moreover, their potential toward processing via various additive manufacturing techniques (digital light processing, two-photon polymerization and direct powder extrusion) is evidenced with retention of their shape-memory effect. Additionally, all polymers are found to be biocompatible in direct contact in vitro cell assays using primary human foreskin fibroblasts (HFFs) through MTS assay (up to approximate to 100% metabolic activity relative to TCP) and live/dead staining (>70% viability).
Keywords:
additive manufacturing
digital light processing
polyesters
polyurethanes
shape-memory
two-photon polymerization

Journal

Macromolecular Rapid Communications cover
Macromolecular Rapid Communications
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4.3
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8.5K
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1.6W

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Ghent University
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Vrije Universiteit Brussel
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Hasselt University
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