The involvement of the oxidative stress in murine blue LED light-induced retinal damage model

M Nakamura, Y Kuse, K Tsuruma… - Biological and …, 2017 - jstage.jst.go.jp
M Nakamura, Y Kuse, K Tsuruma, M Shimazawa, H Hara
Biological and Pharmaceutical Bulletin, 2017jstage.jst.go.jp
The aim of study was to establish a mouse model of blue light emitting diode (LED) light-
induced retinal damage and to evaluate the effects of the antioxidant N-acetylcysteine
(NAC). Mice were exposed to 400 or 800 lx blue LED light for 2 h, and were evaluated for
retinal damage 5 d later by electroretinogram amplitude and outer nuclear layer (ONL)
thickness. Additionally, we investigated the effect of blue LED light exposure on shorts-wave-
sensitive opsin (S-opsin), and rhodopsin expression by immunohistochemistry. Blue LED …
Abstract
The aim of study was to establish a mouse model of blue light emitting diode (LED) light-induced retinal damage and to evaluate the effects of the antioxidant N-acetylcysteine (NAC). Mice were exposed to 400 or 800 lx blue LED light for 2 h, and were evaluated for retinal damage 5 d later by electroretinogram amplitude and outer nuclear layer (ONL) thickness. Additionally, we investigated the effect of blue LED light exposure on shorts-wave-sensitive opsin (S-opsin), and rhodopsin expression by immunohistochemistry. Blue LED light induced light intensity dependent retinal damage and led to collapse of S-opsin and altered rhodopsin localization from inner and outer segments to ONL. Conversely, NAC administered at 100 or 250 mg/kg intraperitoneally twice a day, before dark adaptation and before light exposure. NAC protected the blue LED light-induced retinal damage in a dose-dependent manner. Further, blue LED light-induced decreasing of S-opsin levels and altered rhodopsin localization, which were suppressed by NAC. We established a mouse model of blue LED light-induced retinal damage and these findings indicated that oxidative stress was partially involved in blue LED light-induced retinal damage.
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