Viral Inactivation by Light-Emitting Diodes: Action Spectra Reveal Genomic Damage as the Primary Mechanism

发光二极管对病毒的灭活作用:作用光谱揭示基因组损伤是主要机制

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作者:Kazuaki Mawatari,Yasuko Kadomura-Ishikawa,Takahiro Emoto,Yushi Onoda,Kai Ishida,Sae Toda,Takashi Uebanso,Toshihiko Aizawa,Shigeharu Yamauchi,Yasuo Fujikawa,Tomotake Tanaka,Xing Li,Eduardo Suarez-Lopez,Richard J Kuhn,Ernest R Blatchley Iii 3rd,Akira Takahashi

Abstract

Irradiation with ultraviolet light-emitting diodes (UV-LEDs) represents a promising method for viral inactivation, but a detailed understanding of the wavelength-dependent action spectra remains limited, particularly across different viral components. In this study, we established standardized UV action spectra for infectivity reduction in pathogenic viruses using a system equipped with interchangeable LEDs at 13 different peak wavelengths (250-365 nm). The reduction in viral infectivity induced by UV-LED exposure was strongly related to viral genome damage, whereas no significant degradation of viral structural proteins was detected. Peak virucidal efficiency was observed at 267-270 nm across all tested viruses, representing a slight shift from the traditionally expected 260 nm nucleic acid absorption peak. Enveloped RNA viruses, including influenza A virus, respiratory syncytial virus, and coronavirus, exhibited greater UV sensitivity than nonenveloped viruses such as feline calicivirus and adenovirus. These observations indicate that structural characteristics, such as the presence of an envelope and genome organization, influence UV susceptibility. The wavelength-specific action spectra established in this study provide critical data for optimizing UV-LED disinfection systems to achieve efficient viral inactivation while minimizing energy consumption in healthcare, food safety, and environmental sanitation.

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