光敏剂介导的光动力抗菌化疗增强疗效的研究进展

IF 0.9 4区 化学 Q4 CHEMISTRY, MULTIDISCIPLINARY
Benard M. Isaiah, Edith K Amuhaya, Clare I. Muhanji
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引用次数: 0

摘要

近几十年来,由于抗菌素耐药性现象,与病原微生物的斗争遇到了严重挫折。因此,传统抗菌剂对微生物的效力已经减弱,因此需要制定创新战略,以应对正在出现的全球卫生危机。填补这一空白的一种有希望的疗法是光动力抗菌化疗,它利用光敏剂、光和氧的联合作用来破坏微生物。这种方式可以使多种病原体失活,包括细菌、真菌、原生动物和病毒。光动力抗菌素化疗更令人感兴趣的是在不鼓励选择耐药基因的情况下摧毁耐药菌株的能力,从而极大地有助于对抗抗菌素耐药性。不同ps的微生物灭活效果不同。因此,正在采取各种结构调整办法来改进它们各自的活动。本文综述了近年来在光动力抗菌化疗中提高PSs有效性和疗效的研究进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advances in efficacy enhancement of photosensitizer-mediated photodynamic antimicrobial chemotherapy
The fight against pathogenic microorganisms has in recent decades been met with fierce setbacks owing to the antimicrobial resistance phenomenon. Conventional antimicrobials have thus weakened in their effectiveness against microbes, calling for the development of innovative strategies to combat the emerging global health crisis. A promising therapy for filling this gap is photodynamic antimicrobial chemotherapy which destroys microorganisms by making use of the combined action of a photosensitizer, light, and oxygen. The modality inactivates a wide range of pathogens, including bacteria, fungi, protozoa, and viruses. Of greater interest in photodynamic antimicrobial chemotherapy is the ability to destroy resistant strains of microbes without encouraging selection for resistance genes, thus immensely contributing to the fight against antimicrobial resistance. Different PSs vary in their microbial inactivation efficacies. Therefore, various structural modification approaches are being adopted to improve their respective activities. In this paper, recent studies focusing on strategies employed to improve the effectiveness and efficacies of PSs used in photodynamic antimicrobial chemotherapy are reviewed.
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来源期刊
CiteScore
2.10
自引率
20.00%
发文量
62
审稿时长
1 months
期刊介绍: The Journal of Porphyrins and Phthalocyanines (JPP) covers research in the chemistry, physics, biology and technology of porphyrins, phthalocyanines and related macrocycles. Research papers, review articles and short communications deal with the synthesis, spectroscopy, processing and applications of these compounds.
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