School of Dentistry, Stomatological Hospital, Tianjin Medical University, Tianjin 300070, P. R. China.
Tianjin Key Laboratory of Oral Soft and Hard Tissues Restoration and Regeneration, Tianjin 300070, P. R. China.
ACS Nano. 2024 Sep 10;18(36):24968-24983. doi: 10.1021/acsnano.4c05859. Epub 2024 Aug 28.
The dental implant market has experienced explosive growth, owing to the widespread acceptance of implants as the core of oral rehabilitation. Clinically, achieving simultaneous anti-infective effects and rapid osseointegration is a crucial but challenging task for implants. The demand for implants with long-term broad-spectrum antibacterial and immune-osteogenic properties is growing. Existing methods are limited by a lack of safety, efficiency, short-lasting anti-infective ability, and inadequate consideration of the immunomodulatory effects on osteogenesis. Herein, a ZnO/black TiO heterojunction surface structure was designed as a near-infrared (NIR) light-responsive nanofilm immobilized on a titanium (Ti) implant surface. This nanofilm introduces abundant oxygen vacancies and heterojunctions, which enhance the photothermal and photoelectric abilities of Ti implants under NIR illumination by narrowing the band gap and improving interfacial charge transfer. The "photo-thermo-electric" implant exhibits excellent broad-spectrum antibacterial efficacy against three dental pathogenic bacteria (, , and , >99.4%) by destroying the bacterial membrane and increasing the production of intracellular reactive oxygen species. Additionally, the implant can effectively eliminate mature multispecies biofilms and kill bacteria inside the biofilms under NIR irradiation. Meanwhile, this implant can also induce the pro-regenerative transformation of macrophages and promote osteoblast proliferation and differentiation. Moreover, results confirmed the superior antibacterial and osteoimmunomodulatory properties of this dental implant. RNA sequencing revealed that the underlying osteogenic mechanisms involve activation of the Wnt/β-catenin signaling pathway and bone development. Overall, this versatile "photo-thermo-electric" platform endows implants with anti-infection and bone integration performance simultaneously, which holds great potential for dental implants.
种植牙市场发展迅猛,这主要是因为种植牙已被广泛接受为口腔修复的核心。在临床上,实现抗感染和快速骨整合的双重效果是种植牙的关键挑战。人们对具有长期广谱抗菌和免疫成骨性能的种植牙的需求日益增长。现有的方法存在安全性、效率、抗感染能力持续时间短以及对成骨的免疫调节作用考虑不足等局限性。本研究设计了一种 ZnO/黑 TiO 异质结表面结构,作为一种近红外(NIR)光响应的纳米薄膜固定在钛(Ti)种植体表面。这种纳米薄膜引入了丰富的氧空位和异质结,通过缩小带隙和提高界面电荷转移来增强 Ti 种植体在 NIR 照射下的光热和光电能力。“光热-电”种植体通过破坏细菌膜和增加细胞内活性氧的产生,对三种口腔致病菌(、、和 >99.4%)表现出优异的广谱抗菌功效。此外,该种植体还可以在 NIR 照射下有效消除成熟的多菌种生物膜并杀死生物膜内的细菌。同时,该种植体还可以诱导巨噬细胞的促再生转化,促进成骨细胞的增殖和分化。此外,RNA 测序结果证实了该种植牙的优异抗菌和骨免疫调节性能。研究表明,其成骨的潜在机制涉及 Wnt/β-catenin 信号通路的激活和骨发育。总的来说,这种多功能的“光热-电”平台赋予了种植牙抗感染和骨整合的双重性能,为种植牙的发展提供了广阔的前景。