School of Stomatology, Nanchang University, Nanchang, 330006, People's Republic of China.
School of Chemistry and Chemical Engineering, Nanchang University, Nanchang, Jiangxi Province, 330031, People's Republic of China.
Int J Nanomedicine. 2023 May 9;18:2371-2388. doi: 10.2147/IJN.S402410. eCollection 2023.
The critical challenge for periodontitis therapy is thoroughly eliminating the dental plaque biofilm, particularly penetrating the deep periodontal tissue. Regular therapeutic strategies are insufficient to penetrate the plaque without disturbing the commensal microflora of the oral cavity. Here, we constructed a FeO magnetic nanoparticle loading minocycline (FPM NPs) to penetrate the biofilm physically and effectively eliminate periodontal biofilm.
In order to penetrate and remove the biofilm effectively, FeO magnetic nanoparticles were modified with minocycline using a co-precipitation method. The particle size and dispersion of the nanoparticles were characterized by transmission electron microscopy, scanning electron microscopy, and dynamic light scattering. The antibacterial effects were examined to verify the magnetic targeting of FPM NPs. Confocal laser scanning microscopy was employed to check the effect of FPM + MF and develop the best FPM NPs treatment strategy. Additionally, the therapeutic effect of FPM NPs was investigated in periodontitis rat models. The expression of IL-1β, IL-6, and TNF-α in periodontal tissues was measured by qRT-PCR and Western blot.
The multifunctional nanoparticles exhibited intense anti-biofilm activity and good biocompatibility. The magnetic forces could pull FMP NPs against the biofilm mass and kill bacteria deep in the biofilms both in vivo and in vitro. The integrity of the bacterial biofilm is disrupted under the motivation of the magnetic field, allowing for improved drug penetration and antibacterial performance. The periodontal inflammation recovered well after FPM NPs treatment in rat models. Furthermore, FPM NPs could be monitored in real-time and have magnetic targeting potentials.
FPM NPs exhibit good chemical stability and biocompatibility. The novel nanoparticle presents a new approach for treating periodontitis and provides experimental support for using magnetic-targeted nanoparticles in clinic applications.
牙周炎治疗的关键挑战是彻底清除牙菌斑生物膜,尤其是穿透深层牙周组织。常规治疗策略不足以穿透斑块而不干扰口腔共生微生物菌群。在这里,我们构建了负载米诺环素的 FeO 磁性纳米颗粒(FPM NPs),以物理穿透并有效消除牙周生物膜。
为了有效地穿透和去除生物膜,我们使用共沉淀法将米诺环素修饰到 FeO 磁性纳米颗粒上。通过透射电子显微镜、扫描电子显微镜和动态光散射对纳米颗粒的粒径和分散性进行了表征。为了验证 FPM NPs 的磁靶向性,我们检测了其抗菌效果。共聚焦激光扫描显微镜用于检查 FPM + MF 的效果,并制定最佳的 FPM NPs 治疗策略。此外,我们还在牙周炎大鼠模型中研究了 FPM NPs 的治疗效果。通过 qRT-PCR 和 Western blot 测量牙周组织中 IL-1β、IL-6 和 TNF-α 的表达。
多功能纳米颗粒表现出强烈的抗生物膜活性和良好的生物相容性。磁场的磁力可以将 FMP NPs 拉向生物膜,并在体内和体外杀死生物膜深处的细菌。在磁场的激励下,细菌生物膜的完整性被破坏,从而提高了药物的穿透性和抗菌性能。在大鼠模型中,FPM NPs 治疗后牙周炎得到了很好的恢复。此外,FPM NPs 可以实时监测,并具有磁靶向潜力。
FPM NPs 表现出良好的化学稳定性和生物相容性。这种新型纳米颗粒为治疗牙周炎提供了一种新方法,并为将磁性靶向纳米颗粒应用于临床提供了实验支持。