Polat Ece, Kang Kyungsu
Natural Product Informatics Research Center, Korea Institute of Science and Technology, Gangneung 25451, Gangwon-do, Korea.
Division of Bio-Medical Science Technology, KIST School, University of Science and Technology (UST), Gangneung 25451, Gangwon-do, Korea.
Biomedicines. 2021 May 21;9(6):584. doi: 10.3390/biomedicines9060584.
Health problems and reduced treatment effectiveness due to antimicrobial resistance have become important global problems and are important factors that negatively affect life expectancy. Antimicrobial photodynamic therapy (APDT) is constantly evolving and can minimize this antimicrobial resistance problem. Reactive oxygen species produced when nontoxic photosensitizers are exposed to light are the main functional components of APDT responsible for microbial destruction; therefore, APDT has a broad spectrum of target pathogens, such as bacteria, fungi, and viruses. Various photosensitizers, including natural extracts, compounds, and their synthetic derivatives, are being investigated. The main limitations, such as weak antimicrobial activity against Gram-negative bacteria, solubility, specificity, and cost, encourage the exploration of new photosensitizer candidates. Many additional methods, such as cell surface engineering, cotreatment with membrane-damaging agents, nanotechnology, computational simulation, and sonodynamic therapy, are also being investigated to develop novel APDT methods with improved properties. In this review, we summarize APDT research, focusing on natural photosensitizers used in in vitro and in vivo experimental models. In addition, we describe the limitations observed for natural photosensitizers and the methods developed to counter those limitations with emerging technologies.
由于抗菌药物耐药性导致的健康问题和治疗效果降低已成为重要的全球性问题,并且是对预期寿命产生负面影响的重要因素。抗菌光动力疗法(APDT)正在不断发展,并且可以将这种抗菌药物耐药性问题降至最低。无毒光敏剂暴露于光时产生的活性氧是APDT中负责破坏微生物的主要功能成分;因此,APDT具有广泛的目标病原体,如细菌、真菌和病毒。正在研究各种光敏剂,包括天然提取物、化合物及其合成衍生物。主要局限性,如对革兰氏阴性菌的抗菌活性较弱、溶解性、特异性和成本等,促使人们探索新的光敏剂候选物。许多其他方法,如细胞表面工程、与膜损伤剂联合治疗、纳米技术、计算模拟和声动力疗法等,也正在被研究以开发具有改进特性的新型APDT方法。在本综述中,我们总结了APDT研究,重点关注用于体外和体内实验模型的天然光敏剂。此外,我们描述了天然光敏剂观察到的局限性以及利用新兴技术克服这些局限性所开发的方法。