Toyota Central R&D Labs., Inc., 41-1 Yokomichi, Nagakute, Aichi 480-1192, Japan.
ACS Appl Mater Interfaces. 2023 Apr 26;15(16):20398-20409. doi: 10.1021/acsami.3c01400. Epub 2023 Mar 22.
Antiviral coatings that inactivate a broad spectrum of viruses are important in combating the evolution and emergence of viruses. In this study, nano-columnar Cu thin films have been proposed, inspired by cicada wings (which exhibit mechano-bactericidal activity). Nano-columnar thin films of Cu and its oxides were fabricated by the sputtering method, and their antiviral activities were evaluated against envelope-type bacteriophage Φ6 and non-envelope-type bacteriophage Qβ. Among all of the fabricated films, Cu thin films showed the highest antiviral activity. The infectious activity of the bacteriophages was reduced by 5 orders of magnitude within 30 min by the Cu thin films, by 3 orders of magnitude by the CuO thin films, and by less than 1 order of magnitude by the CuO thin films. After exposure to ambient air for 1 month, the antiviral activity of the CuO thin film decreased by 1 order of magnitude; the Cu thin films consistently maintained a higher antiviral activity than the CuO thin films. Subsequently, the surface oxidation states of the thin films were analyzed by X-ray photoelectron spectroscopy; Cu thin films exhibited slower oxidation to the CuO than CuO thin films. This oxidation resistance could be a characteristic property of nanostructured Cu fabricated by the sputtering method. Finally, the antiviral activity of the nano-columnar Cu thin films against infectious viruses in humans was demonstrated by the binding inhibition of the SARS-CoV-2 spike protein to the angiotensin-converting enzyme 2 receptor within 10 min.
抗病毒涂层可以灭活广谱病毒,对于防治病毒的进化和出现非常重要。在这项研究中,受蝉翼(具有机械杀菌活性)启发,提出了纳米柱状 Cu 薄膜。采用溅射法制备了纳米柱状 Cu 及其氧化物薄膜,并评估了它们对包膜噬菌体 Φ6 和非包膜噬菌体 Qβ的抗病毒活性。在所有制备的薄膜中,Cu 薄膜表现出最高的抗病毒活性。Cu 薄膜在 30 分钟内将噬菌体的感染活性降低了 5 个数量级,CuO 薄膜降低了 3 个数量级,而 CuO 薄膜的降低幅度不到 1 个数量级。在暴露于空气 1 个月后,CuO 薄膜的抗病毒活性降低了 1 个数量级;Cu 薄膜始终保持比 CuO 薄膜更高的抗病毒活性。随后,通过 X 射线光电子能谱分析了薄膜的表面氧化态;Cu 薄膜的氧化速度比 CuO 薄膜慢。这种抗氧化性可能是溅射法制备的纳米结构 Cu 的特征性质。最后,通过在 10 分钟内抑制 SARS-CoV-2 刺突蛋白与血管紧张素转换酶 2 受体的结合,证明了纳米柱状 Cu 薄膜对人类感染性病毒的抗病毒活性。