Water‐soluble astaxanthin and silver enriched poly(vinyl alcohol)/silk fibroin crosslinking electrospun nanofiber for wound dressing

Author:

Mai Zhuoxian1,Wang Peng2,Gong Chenhao2,Wen Jingyi1,Zheng Wenxu1,Xia Yuanjun3,Ko Frank4,Zhao Hui15,Zhou Wuyi15ORCID

Affiliation:

1. Key Laboratory for Biobased Materials and Energy of Ministry of Education Research Center of Biomass 3D Printing Materials, College of Materials and Energy South China Agricultural University Guangzhou China

2. Graduate School of Guangzhou University of Chinese Medicine Guangzhou China

3. Guangdong Key Lab of Orthopedic Technology and Implant Materials, Department of Orthopaedics, General Hospital of Southern Theater Command of PLA The First School of Clinical Medicine of Southern Medical University Guangzhou China

4. Department of Materials Engineering The University of British Columbia Vancouver British Columbia Canada

5. Department of Pharmaceutical Engineering South China Agricultural University Guangzhou China

Abstract

AbstractThe aim of this work is to fabricate a novel electrospun poly(vinyl alcohol) (PVA)/silk fibroin (SF) nanofibrous membrane containing astaxanthin (ASTA) and silver (Ag) nanoparticles as potential wound dressing. Since ASTA is typically liposoluble, the bioavailability could be greatly enhanced by improving its hydrophilicity. The antioxidant performance of eletrospun membrane is verified by ABTS radical scavenging assays. The beadless fibers could be fabricated at 16 kV when PVA (12, wt%) is blended with SF (6, wt%). In addition, the membrane is carefully chemically crosslinked by comparing the efforts (i.e., mechanical strength and water resistance) of glutaraldehyde dipping and vapor treatment. The morphology of the electrospun membrane is observed by scanning electron microscopy and optical microscope. The formation of Ag nanoparticles, which provides the membranes antibacterial properties, is also confirmed by energy dispersive spectroscopy and inhibition zone test. Meanwhile, the PVA/SF/ASTA/Ag compound membrane is characterized by Fourier transform infrared spectroscopy, x‐ray diffraction, thermo gravimetric analysis, differential thermal analysis, and water contact angle. The releasing of ASTA is also measured, and kinetic data are adjusted by Higuchi models. Finally, the biocompatibility is confirmed by in vitro cell staining experiments and in vivo rat models.

Publisher

Wiley

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