| Literature DB >> 28636337 |
Andrea Merlettini1, Matteo Gigli2, Martina Ramella3, Chiara Gualandi1,4, Michelina Soccio2, Francesca Boccafoschi3, Andrea Munari2, Nadia Lotti2, Maria Letizia Focarete1,4.
Abstract
A biodegradable and biocompatible electrospun scaffold with shape memory behavior in the physiological temperature range is here presented. It was obtained starting from a specifically designed, biobased PLLA-based triblock copolymer, where the central block is poly(propylene azelate-co-propylene sebacate) (P(PAz60PSeb40)) random copolymer. Shape memory properties are determined by the contemporary presence of the low melting crystals of the P(PAz60PSeb40) block, acting as switching segment, and of the high melting crystal phase of PLLA blocks, acting as physical network. It is demonstrated that a straightforward annealing process applied to the crystal phase of the switching element gives the possibility to tune the shape recovery temperature from about 25 to 50 °C, without the need of varying the copolymer's chemical structure. The thermal annealing approach here presented can be thus considered a powerful strategy for "ad hoc" programming the same material for applications requiring different recovery temperatures. Fibroblast culture experiments demonstrated scaffold biocompatibility.Entities:
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Year: 2017 PMID: 28636337 DOI: 10.1021/acs.biomac.7b00644
Source DB: PubMed Journal: Biomacromolecules ISSN: 1525-7797 Impact factor: 6.988