Barbhuiya Najmul Haque, Singh Swatantra P, Makovitzki Arik, Narkhede Pradnya, Oren Ziv, Adar Yaakov, Lupu Edith, Cherry Lilach, Monash Arik, Arnusch Christopher J
Environmental Science and Engineering Department (ESED), Indian Institute of Technology Bombay, Mumbai 400076, India.
Centre for Research in Nanotechnology & Science (CRNTS), Indian Institute of Technology Bombay, Mumbai 400076, India.
Materials (Basel). 2021 Jun 9;14(12):3179. doi: 10.3390/ma14123179.
Interest in the pathogenesis, detection, and prevention of viral infections has increased broadly in many fields of research over the past year. The development of water treatment technology to combat viral infection by inactivation or disinfection might play a key role in infection prevention in places where drinking water sources are biologically contaminated. Laser-induced graphene (LIG) has antimicrobial and antifouling surface effects mainly because of its electrochemical properties and texture, and LIG-based water filters have been used for the inactivation of bacteria. However, the antiviral activity of LIG-based filters has not yet been explored. Here we show that LIG filters also have antiviral effects by applying electrical potential during filtration of the model prototypic poxvirus . This antiviral activity of the LIG filters was compared with its antibacterial activity, which showed that higher voltages were required for the inactivation of viruses compared to that of bacteria. The generation of reactive oxygen species, along with surface electrical effects, played a role in the mechanism of virus inactivation. This new property of LIG highlights its potential for use in water and wastewater treatment for the electrochemical disinfection of various pathogenic microorganisms, including bacteria and viruses.
在过去一年里,许多研究领域对病毒感染的发病机制、检测和预防的关注度都大幅提高。开发通过灭活或消毒来对抗病毒感染的水处理技术,可能在饮用水源受到生物污染的地区的感染预防中发挥关键作用。激光诱导石墨烯(LIG)具有抗菌和防污表面效应,主要是由于其电化学性质和质地,基于LIG的水过滤器已被用于细菌的灭活。然而,基于LIG的过滤器的抗病毒活性尚未得到探索。在这里,我们表明,在对模型原型痘病毒进行过滤时施加电势,LIG过滤器也具有抗病毒作用。将LIG过滤器的这种抗病毒活性与其抗菌活性进行了比较,结果表明,与细菌相比,灭活病毒需要更高的电压。活性氧的产生以及表面电效应在病毒灭活机制中发挥了作用。LIG的这一新特性突出了其在水和废水处理中用于对包括细菌和病毒在内的各种致病微生物进行电化学消毒的潜力。