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Updated: Jun 12, 2025

Methods to Inhibit Bacterial Pyomelanin Production and Determine the Corresponding Increase in Sensitivity to Oxidative Stress
Published on: August 31, 2015
Accumulated melanin in molds provides wavelength-dependent UV tolerance
Yushi Onoda1,2,3, Miharu Nagahashi1,2, Michiyo Yamashita1,2
1Department of Microbial Control, Institute of Biomedical Science, Tokushima University Graduate School, Tokushima, Tokushima, Japan.
Abstract:
Fungal contamination poses a serious threat to public health and food safety because molds can grow under stressful conditions through melanin accumulation. Although ultraviolet (UV) irradiation is popular for inhibiting microorganisms, its effectiveness is limited by our insufficient knowledge about UV tolerance in melanin-accumulating molds. In this study, we first confirmed the protective effect of melanin by evaluating the UV sensitivity of young and mature spores. Additionally, we compared UV sensitivity between spores with accumulated melanin and spores prepared with melanin biosynthesis inhibitors. We found that mature spores were less UV-sensitive than young spores, and that reduced melanin accumulation by inhibitors led to reduced UV sensitivity. These results suggest that melanin protects cells against UV irradiation. To determine the most effective wavelength for inhibition, we evaluated the wavelength dependence of UV tolerance in a yeast (Rhodotorula mucilaginosa) and in molds (Aspergillus fumigatus, Cladosporium halotolerans, Cladosporium sphaerospermum, Aspergillus brasiliensis, Penicillium roqueforti, and Botrytis cinerea). We assessed UV tolerance using a UV-light emitting diode (LED) irradiation system with 13 wavelength-ranked LEDs between 250 and 365 nm, a krypton chlorine (KrCl) excimer lamp device, and a low pressure (LP) Hg lamp device. The inhibition of fungi peaked at around 270 nm, and most molds showed reduced UV sensitivity at shorter wavelengths as they accumulated pigment. Absorption spectra of the pigments showed greater absorption at shorter wavelengths, suggesting greater UV protection at these wavelengths. These results will assist in the development of fungal disinfection systems using UV, such as closed systems of air and water purification.
Insights
Melanin protects fungi from ultraviolet (UV) radiation, with shorter UV wavelengths being more effective for fungal inhibition. This research aids in developing UV-based fungal disinfection systems.
Area of Science:
- Mycology
- Photobiology
- Public Health
Background:
- Fungal contamination is a threat to public health and food safety.
- Melanin accumulation aids mold survival under stress.
- Ultraviolet (UV) irradiation is used for microbial inhibition, but UV tolerance in melanin-producing molds is poorly understood.
Purpose of the Study:
- To investigate the protective role of melanin against UV irradiation in fungi.
- To determine the optimal UV wavelengths for inhibiting melanin-accumulating molds.
- To inform the development of effective UV-based fungal disinfection technologies.
Main Methods:
- Evaluated UV sensitivity of young vs. mature spores and spores with/without melanin biosynthesis inhibitors.
- Assessed wavelength-dependent UV tolerance in various yeast and mold species using UV-LEDs, KrCl excimer, and LP Hg lamps.
- Measured pigment absorption spectra to correlate with UV protection.
Main Results:
- Melanin accumulation significantly enhances fungal UV tolerance.
- Reduced melanin biosynthesis decreased UV sensitivity.
- Fungal inhibition peaked around 270 nm, with shorter wavelengths showing greater efficacy.
- Pigment absorption spectra indicated higher UV absorption at shorter wavelengths.
Conclusions:
- Melanin provides a protective effect against UV damage in fungi.
- UV irradiation effectiveness is wavelength-dependent, with shorter wavelengths being more potent inhibitors.
- Findings support the development of targeted UV disinfection systems for fungal control in air and water purification.
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