Physically cross-linked chitosan/dextrin cryogels entrapping Thymus vulgaris essential oil with enhanced mechanical, antioxidant and antifungal properties
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DINU, Maria Valentina, GRĂDINARU, Adina-Catinca, LAZAR, Maria Marinela, DINU, Ionel Adrian, RASCHIP, Irina Elena, CIOCARLAN, Nina, APROTOSOAIE, Ana-Clara. Physically cross-linked chitosan/dextrin cryogels entrapping Thymus vulgaris essential oil with enhanced mechanical, antioxidant and antifungal properties. In: International Journal of Biological Macromolecules, 2021, nr. 184, pp. 898-908. ISSN 0141-8130. DOI: https://doi.org/10.1016/j.ijbiomac.2021.06.068
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International Journal of Biological Macromolecules
Numărul 184 / 2021 / ISSN 0141-8130 /ISSNe 1879-0003

Physically cross-linked chitosan/dextrin cryogels entrapping Thymus vulgaris essential oil with enhanced mechanical, antioxidant and antifungal properties

DOI:https://doi.org/10.1016/j.ijbiomac.2021.06.068

Pag. 898-908

Dinu Maria Valentina1, Grădinaru Adina-Catinca2, Lazar Maria Marinela1, Dinu Ionel Adrian13, Raschip Irina Elena1, Ciocarlan Nina4, Aprotosoaie Ana-Clara2
 
1 “Petru Poni” Institute of Macromolecular Chemistry,
2 University of Medicine and Pharmacy “Grigore T. Popa”, Iasi,
3 University of Basel,
4 National Botanical Garden (Institute) "Alexandru Ciubotaru"
 
 
Disponibil în IBN: 12 iulie 2021


Rezumat

Herein, we entrapped Thymus vulgaris essential oil (EO) within the physically cross-linked sponge-like architecture of cryogels by ice template-assisted freeze-drying. Their 3D cryogenically-structured network was built through hydrogen bonding formed by blending two naturally-derived polysaccharides, chitosan and dextrin. The embedment of EOs within the cryogel matrix generates porous films with an increased elasticity that allows their fast shape recovery after full compression. Thus, the swollen EOs-loaded cryogel films exhibited an elastic modulus of 3.00 MPa, which is more than 40 times higher than that of polysaccharide films without EOs (an elastic modulus of only 0.07 MPa). In addition, the encapsulation of bioactive compounds endows the bio-based films with both antioxidant and antifungal properties, showing a radical scavenging activity of 65% and a zone inhibition diameter of 40 mm for Candida parapsilosis fungi. Our results recommend the entrapment of EOs into bio-based cryogel carriers as a straightforward approach to provide ‘green’ polysaccharide-based films having both improved physicochemical properties and remarkable antifungal activity. 

Cuvinte-cheie
biological properties, chitosan, Dextrin, Physically cross-linked cryogels, Shape recovery ability, Thyme essential oil