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Time-dependent synergism of five-component mixture systems of aminoglycoside antibiotics to Vibrio qinghaiensis sp.-Q67 induced by a key component

机译:氨基糖苷类抗生素的五组分混合体系的时间依赖协同作用对钥匙组分诱导的Qinghaiensis Sp.-Q67的vibrio

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摘要

A large number of antibiotics are entering the aquatic environment accompanying human and animal excreta, which will threaten the survival of aquatic organisms and even human health. It has been found that binary mixtures of aminoglycoside (AG) exhibit additive action and can be evaluated well by a classical model, concentration addition (CA) in our past study. Therefore, to investigate the toxicity interaction within multi-component mixtures of AG antibiotics, five antibiotics, kanamycin sulfate (KAN), neomycin sulfate (NEO), tobramycin (TOB), streptomycin sulfate (STS), and gentamicin sulfate (GEN), were selected to construct five-component mixture systems by a uniform design ray method. The toxic effects (luminescence inhibition) of single antibiotic and five-antibiotic mixture systems towards a photobacterium Vibrio qinghaiensis sp.-Q67 (V. qinghaiensis) in different exposure time (0.25, 2, 4, 8, and 12 h) were determined by the time-dependent microplate toxicity analysis method. The concentration-effect data were fitted by a nonlinear least square method, toxicity interaction within mixture systems was analyzed by a CA model, and the interaction intensity was characterized by deviation from the CA model (dCA). Besides, the toxicity mechanism of five antibiotics and their five-component mixtures to V. qinghaiensis was analyzed by electron microscopy. The results show that toxicity of five antibiotics and their five-component mixture systems to V. qinghaiensis is time-dependent and has strong long-term toxicity. Different from binary AG antibiotic mixture systems, five-antibiotic mixture systems exhibit obviously time-dependent synergism. In addition, toxicity of the five-antibiotic mixtures can be 1.4 times higher than that of the mixtures without synergisms at the same concentration level. According to dCA, synergism intensity (dCA) curves of rays move slowly from the high concentration region to the medium or lower one and the maximum dCA values also increase, decrease, or first increase, then decrease with the lengthening of exposure time. The inhibition activity and synergism intensity of mixture rays have good correlation with the concentration ratios of STS, the key component for synergism. The cell morphology of V. qinghaiensis indicates the strong toxicity of five antibiotics and their mixture rays is not due to the destruction of cell structure, but the inhibition of the light-emitting activity of the photobacterium.
机译:大量抗生素正在进入伴随人和动物的水生环境,这将威胁到水生生物的生存甚至人类健康。已经发现,氨基糖苷类(AG)的二元混合物表现出添加剂作用,并且可以通过经典模型,浓度添加(CA)在我们过去的研究中进行良好评估。因此,为了研究Ag抗生素的多组分混合物内的毒性相互作用,五种抗生素,卡那霉素硫酸盐(KAN),新霉素(NeoMycin硫酸盐(NeO),染发蛋白(TOB),链霉素硫酸盐(STS)和庆大霉素(Gen)是选择通过均匀设计射线法构造五组分混合系统。单抗生素和五种抗生素混合体系朝向光杆菌的毒性作用(发光抑制)在不同的暴露时间(0.25,2,4,8和12h)中的光杆菌Qingaeensis Sp.-Q67(V.Qingaeensis)时间依赖性微孔板毒性分析方法。通过非线性最小二乘法拟合浓度效应数据,通过CA模型分析混合体系中的毒性相互作用,并且通过与Ca型(DCA)偏离偏离相互作用强度。此外,通过电子显微镜分析了五种抗生素及其五分组分混合物的毒性机制及其五分组分混合物。结果表明,五种抗生素及其五组分混合体系的毒性为五抗紫外线是时间依赖性的,具有强烈的长期毒性。不同于二元AG抗生素混合物系统,五种抗生素混合物系统具有明显的时间依赖性协同作用。此外,五种抗生素混合物的毒性可以比在相同浓度水平的情况下比混合物高1.4倍。根据DCA,光线的协同强度(DCA)曲线从高浓度区域缓慢移动到介质或下一个,并且最大DCA值也增加,减少或首先增加,然后随着暴露时间的延长而降低。抑制活性和混合射线的协同强度与STS的浓度比具有良好的相关性,该协同作用的关键组分。 V.青春人的细胞形态表明五种抗生素的强烈毒性,它们的混合射线不是由于细胞结构的破坏,而是抑制光杆菌的发光活性。

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  • 来源
    《RSC Advances》 |2020年第21期|共8页
  • 作者单位

    Anhui Jianzhu Univ Coll Environm &

    Energy Engn Key Lab Water Pollut Control &

    Wastewater Resourc Hefei 230601 Peoples R China;

    Anhui Jianzhu Univ Coll Environm &

    Energy Engn Key Lab Water Pollut Control &

    Wastewater Resourc Hefei 230601 Peoples R China;

    Anhui Jianzhu Univ Coll Environm &

    Energy Engn Key Lab Water Pollut Control &

    Wastewater Resourc Hefei 230601 Peoples R China;

    Anhui Jianzhu Univ Coll Environm &

    Energy Engn Key Lab Water Pollut Control &

    Wastewater Resourc Hefei 230601 Peoples R China;

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  • 正文语种 eng
  • 中图分类 化学;
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