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Updated: Jul 12, 2026

Assessment of Oxidative Damage in the Primary Mouse Ocular Surface Cells/Stem Cells in Response to Ultraviolet-C (UV-C) Damage
Published on: February 15, 2020
[Relationship between changes in skin lipids by ultraviolet exposure and the cell toxicity]
1Department of Public Health, Kobe University School of Medicine, Kusunoki-cho, 7-Chome, Chuo-ku, Kobe, Japan.
Abstract:
The oxidative decomposition of skin lipids by UV exposure and its cell toxicity were studied in vivo and in vitro, using guinea pigs, to investigate the role of oxidative damage in cell membranes and mitochondria in nuclear genome DNA damage resulting in skin cell death by ultraviolet (UV) exposure. Two new methods were developed for this research: selective methylation by trimethylsilyldiazomethane (TMSCHN2) of free fatty acids in crude skin lipids for gas chromatography-mass spectrometry (GC-MS) analysis, and the improvement of the thiobarbituric acid (TBA) reaction for lipid peroxide analysis, which was obtained by adding 0.01% BHT and 1 mM EDTA, an antioxidant additive, into the reaction system described by Ohkawa. The following findings were noted: 1. Using an optical microscope, the infiltration of inflammatory cells such as neutrophils, lymphocytes and monocytes was noted after skin tissue was exposed to UV. 2. The increase of lipid peroxide in exposed areas was small. In the epidermis the increase was about 2 times higher than the non-exposed areas. 3. The fragments of lipid were generated in accordance with the increase of free fatty acids (C16:0, C18:1,:2, C18:0) in the surface of the exposed skin by GC-MS precise assay, and the level of 7-dehydrocholesterol was decreased. 4. The skin homogenate received peroxidation by ultraviolet more easily than living skin, and its peroxidation was inhibited with fat-soluble antioxidative agents such as flavonoids, BHT, BHA, and vitamin E and the metal chelating agent such as Fenton reaction inhibitor as expected; however, it was promoted by water soluble antioxidative agents such as glutathione and vitamin C, which are useful to the human body. 5. Steroids and nonsteroidal anti-inflammatory drugs (NSAIDs) such as indomethacin and aspirin, had no inhibitory effect on lipid peroxidation by ultraviolet as properties of chemicals.
Insights
Ultraviolet (UV) radiation damages skin lipids, leading to cell death. Fat-soluble antioxidants protect against UV-induced lipid peroxidation, while water-soluble ones may promote it.
Area of Science:
- Biochemistry
- Dermatology
- Toxicology
Context:
- Skin lipids undergo oxidative decomposition when exposed to ultraviolet (UV) radiation.
- This process is linked to cell toxicity and potential DNA damage, contributing to skin cell death.
- Understanding these mechanisms is crucial for developing protective strategies against UV damage.
Purpose:
- To investigate the role of oxidative damage in skin cell membranes and mitochondria following UV exposure.
- To explore the resulting nuclear genome DNA damage and skin cell death.
- To develop and apply novel analytical methods for studying UV-induced oxidative stress in skin lipids.
Summary:
- UV exposure causes oxidative decomposition of skin lipids, generating free fatty acids and decreasing 7-dehydrocholesterol.
- Lipid peroxide levels increase modestly in UV-exposed epidermis.
- In vitro studies show skin homogenates are more susceptible to peroxidation than living skin, inhibited by fat-soluble antioxidants but promoted by water-soluble ones.
- Inflammatory cell infiltration is observed post-UV exposure.
Impact:
- Developed new methods for analyzing free fatty acids and lipid peroxides in skin lipids.
- Demonstrated differential effects of fat-soluble versus water-soluble antioxidants on UV-induced lipid peroxidation.
- Provided insights into the biochemical pathways of UV-induced skin damage and cell death.
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