Ghosal Krishanu
Research & Development Laboratory Shalimar Paints Limited Nashik Maharashtra 422403 India.
The Wolfson Faculty of Chemical Engineering Technion-Israel Institute of Technology Haifa 3200003 Israel.
Part Part Syst Charact. 2023 Jan;40(1):2200154. doi: 10.1002/ppsc.202200154. Epub 2022 Nov 18.
In the current situation of the global coronavirus disease 2019 (COVID-19) pandemic, there is a worldwide demand for the protection of regular handling surfaces from viral transmission to restrict the spread of COVID-19 infection. To tackle this challenge, researchers and scientists are continuously working on novel antiviral nanocoatings to make various substrates capable of arresting the spread of such pathogens. These nanocoatings systems include metal/metal oxide nanoparticles, electrospun antiviral polymer nanofibers, antiviral polymer nanoparticles, graphene family nanomaterials, and etched nanostructures. The antiviral mechanism of these systems involves depletion of the spike glycoprotein that anchors to surfaces by the nanocoating and makes the spike glycoprotein and viral nucleotides inactive; however, the nature of the interaction between the spike proteins and virus depends on the type of nanostructure and a surface charge over the coating surface. In this article, the current scenario of COVID-19 and how it can be tackled using antiviral nanocoatings from the further transmission of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), along with their different mode of action, are discussed. Additionally, it is also highlighted different types of nanocoatings developed for various substrates to encounter transmission of SARS-CoV-2, future research areas along with the current challenges related to it, and how these challenges can be resolved.
在2019年全球冠状病毒病(COVID-19)大流行的当前形势下,全球都需要保护常规操作表面免受病毒传播,以限制COVID-19感染的传播。为应对这一挑战,研究人员和科学家们不断致力于开发新型抗病毒纳米涂层,以使各种基材能够阻止此类病原体的传播。这些纳米涂层系统包括金属/金属氧化物纳米颗粒、电纺抗病毒聚合物纳米纤维、抗病毒聚合物纳米颗粒、石墨烯家族纳米材料和蚀刻纳米结构。这些系统的抗病毒机制包括通过纳米涂层耗尽锚定在表面的刺突糖蛋白,使刺突糖蛋白和病毒核苷酸失活;然而,刺突蛋白与病毒之间相互作用的性质取决于纳米结构的类型以及涂层表面的表面电荷。本文讨论了COVID-19的当前情况,以及如何使用抗病毒纳米涂层来防止严重急性呼吸综合征冠状病毒2(SARS-CoV-2)的进一步传播,以及它们不同的作用方式。此外,还强调了为各种基材开发的不同类型的纳米涂层,以应对SARS-CoV-2的传播、未来的研究领域以及与之相关的当前挑战,以及如何解决这些挑战。