TY - JOUR
T1 - Enhancement of Osseointegration via Endogenous Electric Field by Regulating the Charge Microenvironments around Implants
AU - Xu, Fangfang
AU - Zhao, Guangbin
AU - Gong, Yuxin
AU - Liang, Xiang
AU - Yu, Ming
AU - Cui, Hao
AU - Xie, Linyang
AU - Zhu, Nan
AU - Zhu, Xuan
AU - Shao, Xiaoxi
AU - Qi, Kun
AU - Lu, Bingheng
AU - Tu, Junbo
AU - Na, Sijia
N1 - Publisher Copyright:
© 2025 The Author(s). Advanced Healthcare Materials published by Wiley-VCH GmbH.
PY - 2025/3/3
Y1 - 2025/3/3
N2 - The regulation of the charged microenvironment around implants is an effective way to promote osseointegration. Although homeostasis of the charged microenvironment plays an integral role in tissues, current research is externally invasive and unsuitable for clinical applications. In this study, functional materials with different surface potential differences are prepared by changing the spatial layout of Ta and Ag on the surface of a Ti-6Al-4V alloy (TC4). This naturally formed an endogenous electric field (EEF) with a negatively charged cell membrane after in vivo implantation and promoted osseointegration at the interface between the bone and implant through the upregulation of Ca2+ concentration and activation of subsequent pathways. Interestingly, the promotion of stem cell differentiation, regulation of the direction of immune cell polarization, and antibacterial efficacy are determined by the free charge contained in the implant, rather than by the magnitude of the surface potential difference. This functional implant represents a unique strategy for regulating the charged microenvironment around the implant and enhancing osseointegration, thereby providing ideas and technical approaches for the clinical development of novel implant materials.
AB - The regulation of the charged microenvironment around implants is an effective way to promote osseointegration. Although homeostasis of the charged microenvironment plays an integral role in tissues, current research is externally invasive and unsuitable for clinical applications. In this study, functional materials with different surface potential differences are prepared by changing the spatial layout of Ta and Ag on the surface of a Ti-6Al-4V alloy (TC4). This naturally formed an endogenous electric field (EEF) with a negatively charged cell membrane after in vivo implantation and promoted osseointegration at the interface between the bone and implant through the upregulation of Ca2+ concentration and activation of subsequent pathways. Interestingly, the promotion of stem cell differentiation, regulation of the direction of immune cell polarization, and antibacterial efficacy are determined by the free charge contained in the implant, rather than by the magnitude of the surface potential difference. This functional implant represents a unique strategy for regulating the charged microenvironment around the implant and enhancing osseointegration, thereby providing ideas and technical approaches for the clinical development of novel implant materials.
KW - charge microenvironment
KW - endogenous electric field
KW - osseointegration
KW - stem cell differentiation
UR - https://www.scopus.com/pages/publications/85214418235
U2 - 10.1002/adhm.202403388
DO - 10.1002/adhm.202403388
M3 - 文章
C2 - 39757756
AN - SCOPUS:85214418235
SN - 2192-2640
VL - 14
JO - Advanced Healthcare Materials
JF - Advanced Healthcare Materials
IS - 6
M1 - 2403388
ER -