PhD Program in Dental Biomedical Sciences, University of Maryland School of Dentistry, Baltimore, Maryland, USA.
Department of Restorative Dental Sciences, College of Dentistry, Imam Abdulrahman Bin Faisal University, Dammam, Saudi Arabia.
Photobiomodul Photomed Laser Surg. 2020 Aug;38(8):481-496. doi: 10.1089/photob.2020.4815. Epub 2020 Jul 21.
This review clusters the growing field of nano-based platforms for antimicrobial photodynamic therapy (aPDT) targeting pathogenic oral biofilms and increase interactions between dental researchers and investigators in many related fields. Clinically relevant disinfection of dental tissues is difficult to achieve with aPDT alone. It has been found that limited penetrability into soft and hard dental tissues, diffusion of the photosensitizers, and the small light absorption coefficient are contributing factors. As a result, the effectiveness of aPDT is reduced applications. To overcome limitations, nanotechnology has been implied to enhance the penetration and delivery of photosensitizers to target microorganisms and increase the bactericidal effect. The current literature was screened for the various platforms composed of photosensitizers functionalized with nanoparticles and their enhanced performance against oral pathogenic biofilms. The evidence-based findings from the up-to-date literature were promising to control the onset and the progression of dental biofilm-triggered diseases such as dental caries, endodontic infections, and periodontal diseases. The antimicrobial effects of aPDT with nano-based platforms on oral bacterial disinfection will help to advance the design of combination strategies that increase the rate of complete and durable clinical response in oral infections. There is enthusiasm about the potential of nano-based platforms to treat currently out of the reach pathogenic oral biofilms. Much of the potential exists because these nano-based platforms use unique mechanisms of action that allow us to overcome the challenging of intra-oral and hard-tissue disinfection.
本综述将纳米平台在抗菌光动力疗法(aPDT)方面的研究进展进行了归类,其靶向目标是致病口腔生物膜,并增进了口腔领域研究人员和调查人员之间的交流。单独应用 aPDT 对临床相关的牙齿组织进行消毒是很困难的。研究发现,光敏剂的有限穿透性、扩散性以及较小的光吸收系数都是导致其效果受限的因素。因此,aPDT 的应用受到了限制。为了克服这些限制,纳米技术已被应用于增强光敏剂对目标微生物的穿透性和传递性,从而提高杀菌效果。本研究对各种基于纳米颗粒的光敏剂功能化平台及其在对抗口腔致病生物膜方面的增强性能进行了筛选。最新文献中的循证发现有望控制由牙菌斑引发的龋齿、牙髓感染和牙周病等疾病的发生和发展。基于纳米技术的光动力疗法平台在口腔细菌消毒方面的抗菌效果,有助于推进联合策略的设计,提高口腔感染的完全和持久临床疗效。基于纳米技术的平台具有治疗目前难以触及的致病口腔生物膜的潜力,这引起了人们的关注。这些纳米平台之所以具有很大的潜力,是因为它们采用了独特的作用机制,使我们能够克服口腔内和硬组织消毒的挑战。