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低温等离子体作用下细菌DNA损伤的空间依赖性:单细胞水平评估

Spatial Dependence of DNA Damage in Bacteria due to Low-Temperature Plasma Application as Assessed at the Single Cell Level.

作者信息

Privat-Maldonado Angela, O'Connell Deborah, Welch Emma, Vann Roddy, van der Woude Marjan W

机构信息

Centre for Immunology and Infection, Department of Biology and Hull York Medical School, University of York, York, U.K.

York Plasma Institute, Department of Physics, University of York, York, U.K.

出版信息

Sci Rep. 2016 Oct 19;6:35646. doi: 10.1038/srep35646.

Abstract

Low temperature plasmas (LTPs) generate a cocktail of reactive nitrogen and oxygen species (RNOS) with bactericidal activity. The RNOS however are spatially unevenly distributed in the plasma. Here we test the hypothesis that this distribution will affect the mechanisms underpinning plasma bactericidal activity focussing on the level of DNA damage in situ. For the first time, a quantitative, single cell approach was applied to assess the level of DNA damage in bacteria as a function of the radial distance from the centre of the plasma jet. Salmonella enterica on a solid, dry surface was treated with two types of LTP: an atmospheric-pressure dielectric barrier discharge plasma jet (charged and neutral species) and a radio-frequency atmospheric-pressure plasma jet (neutral species). In both cases, there was an inverse correlation between the degree of DNA damage and the radial distance from the centre of the plasma, with the highest DNA damage occurring directly under the plasma. This trend was also observed with Staphylococcus aureus. LTP-generated UV radiation was eliminated as a contributing factor. Thus valuable mechanistic information can be obtained from assays on biological material, which can inform the development of LTP as a complementary or alternative therapy for (topical) bacterial infections.

摘要

低温等离子体(LTPs)会产生具有杀菌活性的活性氮和氧物质(RNOS)混合物。然而,RNOS在等离子体中空间分布不均匀。在此,我们检验这一假设:这种分布会影响等离子体杀菌活性的潜在机制,重点关注原位DNA损伤水平。首次采用定量单细胞方法评估细菌中的DNA损伤水平,该水平是距等离子体射流中心径向距离的函数。在固体干燥表面上的肠炎沙门氏菌用两种类型的LTP进行处理:大气压介质阻挡放电等离子体射流(带电和中性物质)和射频大气压等离子体射流(中性物质)。在这两种情况下,DNA损伤程度与距等离子体中心的径向距离呈负相关,等离子体正下方的DNA损伤最为严重。金黄色葡萄球菌也观察到了这种趋势。排除了LTP产生的紫外线辐射作为一个影响因素。因此,从对生物材料的检测中可以获得有价值的机制信息,这可为将LTP开发为(局部)细菌感染的补充或替代疗法提供参考。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/45eb/5069486/5b47fe2e0755/srep35646-f2.jpg

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