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Piezoelectric g-C3N4/rGO heterojunction remodels the periodontitis immune microenvironment to promote neurovascular–bone coupled osseointegration

化学 免疫系统 牙周炎 压电 骨整合 炎症 异质结 纳米技术 细胞生物学 聚集放线菌 生物物理学 成骨细胞 免疫
作者
Dan Li,Zhen Ai,Jinyang Lv,Yijun Zheng,Chao Zhang
出处
期刊:Materials today bio [Elsevier BV]
卷期号:39: 103498-103498
标识
DOI:10.1016/j.mtbio.2026.103498
摘要

Dental implant restoration is required for tooth loss caused by periodontitis; however, the success rate of implantation in periodontitis patients is significantly lower than that in healthy individuals. On the one hand, biofilm colonization compromises early osseointegration of the implant; on the other hand, the chronic inflammatory microenvironment associated with periodontitis undermines long-term implant stability. Therefore, there is an urgent need for a strategy that integrates both antibacterial and osteogenic microenvironment-modulating functions to promote early osseointegration and long-term stability of dental implants. Herein, a two-dimensional nano-heterostructure was fabricated using g-C 3 N 4 and rGO to construct a piezoelectric conductive hydrogel (CN/rGO) for implant restoration in periodontitis patients. Upon ultrasound stimulation, the CN/rGO hydrogel generates a piezoelectric field around the implant: in the early stage, it exerts antibacterial effects to promote initial osseointegration; over the long term, it modulates the immune microenvironment, thereby facilitating neurovascular regeneration and enhancing sustained osseointegration. Notably, inhibition of the JAK-STAT signaling pathway plays a pivotal role in CN/rGO-mediated macrophage phenotype regulation and reversal of the inflammatory microenvironment. This combined strategy of early piezoelectric antibacterial activity and long-term osteogenic microenvironment modulation holds significant implications for promoting early osseointegration and long-term stability of implants in periodontitis patients. The piezoelectric heterostructure-based design proposed in this study promotes neurovascular-guided bone regeneration around implants under inflammatory conditions, offering a feasible approach for improving implant success rates in periodontitis patients, preventing peri-implantitis, and enhancing the full-cycle service performance of dental implants.
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