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Solar Disinfection of Viruses in Polyethylene Terephthalate Bottles

机译:聚对苯二甲酸乙二醇酯瓶中病毒的日光消毒

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Solar disinfection (SODIS) of drinking water in polyethylene terephthalate (PET) bottles is a simple, efficient point-of-use technique for the inactivation of many bacterial pathogens. In contrast, the efficiency of SODIS against viruses is not well known. In this work, we studied the inactivation of bacteriophages (MS2 and ?X174) and human viruses (echovirus 11 and adenovirus type 2) by SODIS. We conducted experiments in PET bottles exposed to (simulated) sunlight at different temperatures (15, 22, 26, and 40°C) and in water sources of diverse compositions and origins (India and Switzerland). Good inactivation of MS2 (>6-log inactivation after exposure to a total fluence of 1.34 kJ/cm2) was achieved in Swiss tap water at 22°C, while less-efficient inactivation was observed in Indian waters and for echovirus (1.5-log inactivation at the same fluence). The DNA viruses studied, ?X174 and adenovirus, were resistant to SODIS, and the inactivation observed was equivalent to that occurring in the dark. High temperatures enhanced MS2 inactivation substantially; at 40°C, 3-log inactivation was achieved in Swiss tap water after exposure to a fluence of only 0.18 kJ/cm2. Overall, our findings demonstrate that SODIS may reduce the load of single-stranded RNA (ssRNA) viruses, such as echoviruses, particularly at high temperatures and in photoreactive matrices. In contrast, complementary measures may be needed to ensure efficient inactivation during SODIS of DNA viruses resistant to oxidation.
机译:聚对苯二甲酸乙二醇酯(PET)瓶中饮用水的太阳能消毒(SODIS)是一种用于灭活许多细菌病原体的简单,有效的使用点技术。相反,SODIS对抗病毒的效率尚不为人所知。在这项工作中,我们研究了SODIS对噬菌体(MS2和ΔX174)和人类病毒(回声病毒11和2型腺病毒)的灭活作用。我们在暴露于不同温度(15、22、26和40°C)(模拟)日光的PET瓶中以及在成分和来源不同的水源(印度和瑞士)中进行了实验。在22°C的瑞士自来水中实现了MS2的良好失活(在总通量为1.34 kJ / cm2后> 6-log失活),而在印度水域和回声病毒中则观察到效率较低的失活(1.5 log以相同的通量灭活)。所研究的DNA病毒,ΔX174和腺病毒,对SODIS具有抗性,观察到的失活与在黑暗中发生的失活相当。高温大大增强了MS2的灭活;在40°C下,暴露于仅0.18 kJ / cm2的通量后,在瑞士自来水中实现了3-log失活。总体而言,我们的发现表明,SODIS可以减少单链RNA(ssRNA)病毒(例如回声病毒)的负荷,尤其是在高温和光反应性基质中。相反,可能需要采取补充措施以确保在SODIS期间有效抵抗氧化的DNA病毒的有效灭活。

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