Piezoelectric Bioactive Glasses Composite Promotes Angiogenesis by the Synergistic Effect of Wireless Electrical Stimulation and Active Ions

Author:

Li Changhao12,Zhang Siyu3,Yao Yichen1,Wang Yanlan1,Xiao Cairong2,Yang Bo1,Huang Jingyan1,Li Weichang1,Ning Chengyun2,Zhai Jinxia2,Yu Peng2,Wang Yan1ORCID

Affiliation:

1. Hospital of Stomatology Guanghua School of Stomatology Guangdong Provincial Key Laboratory of Stomatology Sun Yat‐sen University Guangzhou 510055 China

2. School of Material Science and Engineering National Engineering Research Center for Tissue Restoration and Reconstruction Metallic Materials Surface Functionalization Engineering Research Center of Guangdong Province South China University of Technology Guangzhou 510641 China

3. School of Environment and Energy South China University of Technology Guangzhou 510006 China

Abstract

AbstractInsufficient angiogenesis frequently occurs after the implantation of orthopedic materials, which greatly increases the risk of bone defect reconstruction failure. Therefore, the development of bone implant with improved angiogenic properties is of great importance. Mimicking the extracellular matrix clues provides a more direct and effective strategy to modulate angiogenesis. Herein, inspired by the bioelectrical characteristics of the bone microenvironment, a piezoelectric bioactive glasses composite (P‐KNN/BG) based on the incorporation of polarized potassium sodium niobate is constructed, which could effectively promote angiogenesis. It is found that P‐KNN/BG has exceptional wireless electrical stimulation performance and sustained active ions release. In vitro cell experiments reveal that P‐KNN/BG enhances endothelial cell adhesion, migration, and differentiation via activating the eNOS/NO signaling pathway, which might be contributed to cell membrane hyperpolarization induced by wireless electrical stimulation increase the influx of active ions into the cells. In vivo chick chorioallantoic membrane experiment demonstrates that P‐KNN/BG shows excellent pro‐angiogenic capacity and biocompatibility. This work broadens the current understanding of bioactive materials with bionic electrical properties, which brings new insights into the clinical treatment of bone defect repair.

Funder

National Natural Science Foundation of China

Guangzhou Municipal Science and Technology Project

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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