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本文引用的文献

1
Unraveling a mechanism of honey antibacterial action: polyphenol/H₂O₂-induced oxidative effect on bacterial cell growth and on DNA degradation.揭示蜂蜜抗菌作用机制:多酚/H₂O₂对细菌细胞生长和DNA降解的氧化作用。
Food Chem. 2012 Jul 15;133(2):329-36. doi: 10.1016/j.foodchem.2012.01.035. Epub 2012 Jan 24.
2
Anodic formation of anatase TiO2 nanotubes with rod-formed walls for photocatalysis and field emitters.用于光催化和场发射的具有棒状壁的锐钛矿 TiO2 纳米管的阳极形成。
Phys Chem Chem Phys. 2012 Dec 21;14(47):16371-6. doi: 10.1039/c2cp43168h. Epub 2012 Nov 6.
3
Paradoxical potentiation of methylene blue-mediated antimicrobial photodynamic inactivation by sodium azide: role of ambient oxygen and azide radicals.叠氮钠通过环境氧和叠氮自由基增强亚甲蓝介导的抗菌光动力灭活的矛盾性:作用机制研究。
Free Radic Biol Med. 2012 Dec 1;53(11):2062-71. doi: 10.1016/j.freeradbiomed.2012.09.006. Epub 2012 Oct 6.
4
Biomedical evaluation of a novel nitrogen oxides releasing wound dressing.新型氮氧化物释放型创伤敷料的生物医学评价。
J Mater Sci Mater Med. 2012 Dec;23(12):3097-106. doi: 10.1007/s10856-012-4766-4. Epub 2012 Sep 22.
5
Eradication of Pseudomonas aeruginosa biofilms by atmospheric pressure non-thermal plasma.大气压非热等离子体清除铜绿假单胞菌生物膜。
PLoS One. 2012;7(8):e44289. doi: 10.1371/journal.pone.0044289. Epub 2012 Aug 31.
6
Antibacterial and antioxidant potency of floral honeys from different botanical and geographical origins.不同植物学和地理来源的花蜜的抗菌和抗氧化效力。
Molecules. 2012 Sep 4;17(9):10540-9. doi: 10.3390/molecules170910540.
7
The immunopathogenic role of reactive oxygen species in Alzheimer disease.活性氧在阿尔茨海默病中的免疫致病作用。
Iran J Allergy Asthma Immunol. 2012 Sep;11(3):203-16.
8
Photocatalytic and antimicrobial properties of surgical implant coatings of titanium dioxide deposited though cathodic arc evaporation.通过阴极电弧蒸发沉积的二氧化钛手术植入物涂层的光催化和抗菌性能。
Biotechnol Lett. 2012 Dec;34(12):2299-305. doi: 10.1007/s10529-012-1040-2. Epub 2012 Sep 1.
9
Comparative photodynamic inactivation of antibiotic resistant bacteria by first and second generation cationic photosensitizers.第一代和第二代阳离子型光动力敏化剂对耐抗生素细菌的光动力灭活比较。
Photochem Photobiol Sci. 2012 Dec;11(12):1905-13. doi: 10.1039/c2pp25113b.
10
Feasibility study on quantitative measurements of singlet oxygen generation using singlet oxygen sensor green.使用单线态氧传感器绿定量测量单线态氧生成的可行性研究。
J Fluoresc. 2013 Jan;23(1):41-7. doi: 10.1007/s10895-012-1114-5. Epub 2012 Aug 23.

以活性氧为中心的抗菌策略——杀菌抗生素、光动力疗法等。

Antimicrobial strategies centered around reactive oxygen species--bactericidal antibiotics, photodynamic therapy, and beyond.

机构信息

The Wellman Center for Photomedicine, Massachusetts General Hospital, Boston, MA, USA; Department of Dermatology, Harvard Medical School, Boston, MA, USA.

出版信息

FEMS Microbiol Rev. 2013 Nov;37(6):955-89. doi: 10.1111/1574-6976.12026. Epub 2013 Jul 25.

DOI:10.1111/1574-6976.12026
PMID:23802986
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3791156/
Abstract

Reactive oxygen species (ROS) can attack a diverse range of targets to exert antimicrobial activity, which accounts for their versatility in mediating host defense against a broad range of pathogens. Most ROS are formed by the partial reduction in molecular oxygen. Four major ROS are recognized comprising superoxide (O2•-), hydrogen peroxide (H2O2), hydroxyl radical (•OH), and singlet oxygen ((1)O2), but they display very different kinetics and levels of activity. The effects of O2•- and H2O2 are less acute than those of •OH and (1)O2, because the former are much less reactive and can be detoxified by endogenous antioxidants (both enzymatic and nonenzymatic) that are induced by oxidative stress. In contrast, no enzyme can detoxify •OH or (1)O2, making them extremely toxic and acutely lethal. The present review will highlight the various methods of ROS formation and their mechanism of action. Antioxidant defenses against ROS in microbial cells and the use of ROS by antimicrobial host defense systems are covered. Antimicrobial approaches primarily utilizing ROS comprise both bactericidal antibiotics and nonpharmacological methods such as photodynamic therapy, titanium dioxide photocatalysis, cold plasma, and medicinal honey. A brief final section covers reactive nitrogen species and related therapeutics, such as acidified nitrite and nitric oxide-releasing nanoparticles.

摘要

活性氧 (ROS) 可以攻击多种靶标以发挥抗菌活性,这使其在介导宿主防御广泛的病原体方面具有多功能性。大多数 ROS 是由分子氧的部分还原形成的。目前公认的四种主要 ROS 包括超氧阴离子 (O2•-)、过氧化氢 (H2O2)、羟自由基 (•OH) 和单线态氧 ((1)O2),但它们表现出非常不同的动力学和活性水平。O2•-和 H2O2 的作用不如 •OH 和 (1)O2 剧烈,因为前者的反应性要低得多,可以被氧化应激诱导的内源性抗氧化剂(包括酶和非酶)解毒。相比之下,没有酶可以解毒 •OH 或 (1)O2,这使得它们具有极强的毒性和急性致死性。本综述将重点介绍 ROS 形成的各种方法及其作用机制。涵盖了微生物细胞中针对 ROS 的抗氧化防御机制以及宿主防御系统利用 ROS 的情况。主要利用 ROS 的抗菌方法包括杀菌抗生素和非药物方法,如光动力疗法、二氧化钛光催化、冷等离子体和药用蜂蜜。最后一小节简要介绍了活性氮物种和相关治疗方法,如酸化亚硝酸盐和释放一氧化氮的纳米颗粒。