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Engineered Magneto-Piezoelectric Nanoparticles-Enhanced Scaffolds Disrupt Biofilms and Activate Oxidative Phosphorylation in Icam1+ Macrophages for Infectious Bone Defect Regeneration

ACS Nano. 2024-12; 
Hao Wu , Changcheng Chen , Jiangfeng Li , Dongmei Yu , Xun Wu , Hai Huang , Zhen Tang , Qi Wu , Shichao Yan , Ning Wang , Mo Wang , Feilong Wei , Yunlong Yu , Duan Wang , Mengting Shi , Xusong Yue , Pengfei Cao , Zenghui Zheng , Xiaokang Li , Baolin Guo , Lei Shi , Zheng Guo
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Proteins, Expression, Isolation and Analysis A total of 30 μg protein form each sample was subjected to SDS-PAGE electrophoresis (SurePAGETM, GenScript, Nanjing) and transferred to PVDF membrane (Merck Millipore, MA). Get A Quote

Abstract

Infectious bone defects pose significant clinical challenges due to persistent infection and impaired bone healing. Icam1+ macrophages were identified as crucial and previously unrecognized regulators in the repair of bone defects, where impaired oxidative phosphorylation within this macrophage subset represents a significant barrier to effective bone regeneration. To address this challenge, dual-responsive iron-doped barium titanate (BFTO) nanoparticles were synthesized with magnetic and ultrasonic properties. These nanoparticles were further loaded with the anti-inflammatory agent curcumin and coated with engineered mesenchymal stem cell membranes (EMM) modified with γ3 peptide, creating BFTO-Cur@EMM nanopar... More

Keywords

Icam1+ macrophages; antibacterial; bone regeneration; infectious bone defects; magneto-piezoelectric; oxidative phosphorylation.