| Literature DB >> 36213489 |
Leonard Siebert1,2, Eder Luna-Cerón1, Luis Enrique García-Rivera1, Junsung Oh3, JunHwee Jang3, Diego A Rosas-Gómez1, Mitzi D Pérez-Gómez1, Gregor Maschkowitz4, Helmut Fickenscher4, Daniela Oceguera-Cuevas1, Carmen G Holguín-León1, Batzaya Byambaa5, Mohammad A Hussain6, Eduardo Enciso-Martinez1, Minsung Cho7, Yuhan Lee8, Nebras Sobahi6, Anwarul Hasan9,10, Dennis P Orgill11, Yogendra K Mishra12,2, Rainer Adelung2, Eunjung Lee3, Su Ryon Shin1.
Abstract
Advanced wound scaffolds that integrate active substances to treat chronic wounds have gained significant recent attention. While wound scaffolds and advanced functionalities have previously been incorporated into one medical device, the wirelessly triggered release of active substances has remained the focus of many research endeavors. To combine multiple functions including light-triggered activation, anti-septic, angiogenic, and moisturizing properties, we have developed a 3D printed hydrogel patch encapsulating vascular endothelial growth factor (VEGF) decorated with photoactive and antibacterial tetrapodal zinc oxide (t-ZnO) microparticles. To achieve the smart release of VEGF, t-ZnO was modified by chemical treatment and activated through UV/visible light exposure. This process would also make the surface rough and improve protein adhesion. The elastic modulus and degradation behavior of the composite hydrogels, which must match the wound healing process, were adjusted by changing t-ZnO concentrations. The t-ZnO-laden composite hydrogels can be printed with any desired micropattern to potentially create a modular elution of various growth factors. The VEGF decorated t-ZnO-laden hydrogel patches showed low cytotoxicity and improved angiogenic properties while maintaining antibacterial functions in vitro. In vivo tests showed promising results for the printed wound patches, with less immunogenicity and enhanced wound healing.Entities:
Keywords: 3D Printing; Controlled release; Hydrogel composites; Photoactive; Wound healing; Zinc oxide tetrapod
Year: 2021 PMID: 36213489 PMCID: PMC9536771 DOI: 10.1002/adfm.202007555
Source DB: PubMed Journal: Adv Funct Mater ISSN: 1616-301X Impact factor: 19.924