Implanted Magnetoelectric Bionic Cartilage Hydrogel
Abstract
Abstract Enhancing defective cartilage repair by creating a bionic cartilage hydrogel supplemented with in situ electromagnetic stimulation, replicating endogenous electromagnetic effects, remains challenging. To achieve this, a unique three‐phase solvent system is designed to prepare a magnetoelectric bionic cartilage hydrogel incorporating piezoelectric poly(3‐hydroxybutyric acid‐3‐hydroxyvaleric acid) (PHBV) and magnetostrictive triiron tetraoxide nanoparticles (Fe 3 O 4 NPs) into sodium alginate (SA) hydrogel to form a dual‐network, semi‐crosslinked chain entanglement structure. The synthesized hydrogel features similar composition, structure, and mechanical properties to natural cartilage. In addition, after the implantation of cartilage, the motion‐driven magnetoelectric‐coupled cyclic transformation model is triggered by gentle joint forces, initiating a piezoelectric response that leads to magnetoelectric‐coupled cyclic transformation. The freely excitable and cyclically enhanced electromagnetic stimulation it can provide, by simulating and amplifying endogenous electromagnetic effects, obtains induced defective cartilage repair efficacy superior to piezoelectric or magnetic stimulation alone.
Article Details
Authors (7)
Jiachen Liang
Key Laboratory of Dental Maxillofacial Reconstruction and Biological Intelligence Manufacturing School of Stomatology Lanzhou University Lanzhou Gansu Province P. R. China
Xinyue Huang
Kaiqi Qin
Key Laboratory of Dental Maxillofacial Reconstruction and Biological Intelligence Manufacturing School of Stomatology Lanzhou University Lanzhou Gansu Province P. R. China
Hui Wei
Jiaxin Yang
MOE Key Laboratory of Cluster Science, Beijing Key Laboratory of Photoelectric/Electrophotonic Conversion Materials, School of Chemistry and Chemical
Bin Liu
Zengjie Fan
Jiangsu Key Laboratory of Materials and Technologies for Energy Storage College of Materials Science and Technology Nanjing University of Aeronautics and Astronautics Nanjing 211106 China