Kaushik Nagendra Kumar, Bhartiya Pradeep, Kaushik Neha, Shin Yungoh, Nguyen Linh Nhat, Park Jang Sick, Kim Doyoung, Choi Eun Ha
Department of Electrical and Biological Physics, Plasma Bioscience Research Center, Kwangwoon University, Seoul, 01897, Republic of Korea.
Department of Biotechnology, College of Engineering, The University of Suwon, Hwaseong-si, 18323, Republic of Korea.
Bioact Mater. 2023 Jan;19:569-580. doi: 10.1016/j.bioactmat.2022.05.005. Epub 2022 May 8.
The ongoing pandemic caused by the novel coronavirus, SARS-CoV-2, is influencing global health. Moreover, there is a major threat of future coronaviruses affecting the entire world in a similar, or even more dreadful, manner. Therefore, effective and biocompatible therapeutic options against coronaviruses are urgently needed. To address this challenge, medical specialists require a well-informed and safe approach to treating human coronaviruses (HCoVs). Herein, an environmental friendly approach for viral inactivation, based on plasma technology, was considered. A microwave plasma system was employed for the generation of the high amount of gaseous nitric oxide to prepare nitric oxide enriched plasma-activated water (NO-PAW), the effects of which on coronaviruses, have not been reported to date. To determine these effects, alpha-HCoV-229E was used in an experimental model. We found that NO-PAW treatment effectively inhibited coronavirus infection in host lung cells, visualized by evaluating the cytopathic effect and expression level of spike proteins. Interestingly, NO-PAW showed minimal toxicity towards lung host cells, suggesting its potential for therapeutic application. Moreover, this new approach resulted in viral inactivation and greatly improved the gene levels involved in host antiviral responses. Together, our findings provide evidence of an initiation point for further progress toward the clinical development of antiviral treatments, including such coronaviruses.
由新型冠状病毒SARS-CoV-2引发的持续大流行正在影响全球健康。此外,未来冠状病毒以类似甚至更可怕的方式影响整个世界存在重大威胁。因此,迫切需要针对冠状病毒的有效且生物相容的治疗选择。为应对这一挑战,医学专家需要一种明智且安全的方法来治疗人类冠状病毒(HCoV)。在此,考虑了一种基于等离子体技术的环境友好型病毒灭活方法。采用微波等离子体系统产生大量气态一氧化氮,以制备富含一氧化氮的等离子体活化水(NO-PAW),其对冠状病毒的影响迄今尚未见报道。为确定这些影响,在实验模型中使用了α-HCoV-229E。我们发现,通过评估细胞病变效应和刺突蛋白的表达水平可见,NO-PAW处理有效抑制了宿主肺细胞中的冠状病毒感染。有趣的是,NO-PAW对肺宿主细胞显示出最小的毒性,表明其具有治疗应用潜力。此外,这种新方法导致病毒失活,并极大地提高了宿主抗病毒反应相关的基因水平。总之,我们的研究结果为包括此类冠状病毒在内的抗病毒治疗临床开发的进一步进展提供了一个起始点的证据。