Biomass‐derived washable composites for accelerating the healing of infected wounds

Author:

Jiao Fuhang1ORCID,Zhao Wei12,Zhao Wenbo1,Wang Yong1,Deng Yuan1,Chang Shulong1,Sun Junlu1,Lou Qing1,Wang Lijun1,Shan Chong‐Xin1,Xiao Ying34,Dong Lin1ORCID

Affiliation:

1. Henan Key Laboratory of Diamond Optoelectronic Materials and Devices Key Laboratory of Materials Physics Ministry of Education School of Physics and Microelectronics Zhengzhou University Zhengzhou China

2. Henan Key Laboratory of Ion‐beam Bioengineering School of Physics and Microelectronics Zhengzhou University Zhengzhou China

3. Department of Ophthalmology Shandong Provincial Hospital Affiliated to Shandong First Medical University Jinan China

4. Shiley Eye Institute University of California San Diego La Jolla California USA

Abstract

AbstractAdvanced sustainable biomedical materials are urgently needed for clinical applications; however, developing biomedical materials with exceptional mechanical and bactericidal properties as well as removable functionalities to reduce unintended secondary injury remains a challenge. Here, we report a biomass‐derived composite consisting of water‐soluble fish gelatin (FG) and antibacterial ZnO@silk fibroin (ZSF) microspheres for potential application as the wound dressing. The ZSF microspheres are embedded in a FG matrix to realize the stretchable, antibacterial, and removable ZSF/FG composites. By introducing glycerin as the plasticizer, ZSF/FG composites deliver a tensile strength of 4.5 MPa and stretchability of 550%. Acting as both the germicide and hydrophile components, ZSF microspheres endow the composites with excellent antibacterial capacity and water solubility. To prevent secondary injury, the ZSF/FG composites can be easily removed from the wounds by simply exposing them to excess water. Additionally, the ZSF/FG composites exhibit favorable biocompatibility and sustain high cell viability of over 100%. The full‐thickness skin wound model on infected mice demonstrated an efficient rate of wound closure and a reduced inflammatory response. The ZSF/FG composite shows promise to hasten the healing of infected wounds and is expected a promising candidate as wound dressing for clinical therapy.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shandong Province

Publisher

Wiley

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