Understanding the Mechanism of Light-Induced Age-Related Decrease in Melanin Concentration in Retinal Pigment
Alexander E Dontsov1, Marina A Yakovleva1, Alexander A Vasin2
1Emanuel Institute of Biochemical Physics of Russian Academy of Sciences, 119334 Moscow, Russia.
Abstract:
It is known that during the process of aging, there is a significant decrease in the number of melanosomes in the retinal pigment epithelium (RPE) cells in the human eye. Melanosomes act as screening pigments in RPE cells and are fundamentally important for protection against the free radicals generated by light. A loss or change in the quality of melanin in melanosomes can lead to the development of senile pathologies and aggravation in the development of various retinal diseases. We have previously shown that the interaction between melanin melanosomes and superoxide radicals results in oxidative degradation with the formation of water-soluble fluorescent products. In the present study, we show, using fluorescence analysis, HPLC, and mass spectrometry, that visible light irradiation on melanolipofuscin granules isolated from RPE cells in the human eye results in the formation of water-soluble fluorescent products from oxidative degradation of melanin, which was in contrast to lipofuscin granules and melanosomes irradiation. The formation of these products occurs as a result of the oxidative degradation of melanin by superoxide radicals, which are generated by the lipofuscin part of the melanolipofuscin granule. We identified these products both in the composition of melanolipofuscin granules irradiated with visible light and in the composition of melanosomes that were not irradiated but were, instead, oxidized by superoxide radicals. In the melanolipofuscin granules irradiated by visible light, ions that could be associated with melanin oxidative degradation products were identified by applying the principal component analysis of the time-of-flight secondary ion mass spectrometry (ToF-SIMS) data. Degradation of the intact melanosomes by visible light is also possible; however, this requires significantly higher irradiation intensities than for melanolipofuscin granules. It is concluded that the decrease in the concentration of melanin in RPE cells in the human eye with age is due to its oxidative degradation by reactive oxygen species generated by lipofuscin, as part of the melanolipofuscin granules, under the action of light.
Insights
Aging human eyes experience reduced melanosomes in retinal pigment epithelium (RPE) cells. This study reveals light-induced oxidative degradation of melanin within melanolipofuscin granules contributes to melanin loss in RPE cells.
Area of Science:
- Ophthalmology
- Cell Biology
- Biochemistry
Background:
- Aging leads to decreased melanosomes in human retinal pigment epithelium (RPE) cells.
- Melanosomes protect RPE cells from light-induced free radicals; their loss or altered melanin quality contributes to retinal pathologies.
- Previous work showed melanin melanosomes degrade into fluorescent products when interacting with superoxide radicals.
Purpose of the Study:
- To investigate the effect of visible light irradiation on melanolipofuscin granules from human RPE cells.
- To determine the mechanism of water-soluble fluorescent product formation from melanin degradation.
- To understand the role of lipofuscin in melanolipofuscin granule degradation.
Main Methods:
- Fluorescence analysis
- High-Performance Liquid Chromatography (HPLC)
- Mass spectrometry
- Time-of-flight secondary ion mass spectrometry (ToF-SIMS) with principal component analysis
Main Results:
- Visible light irradiation of melanolipofuscin granules produced water-soluble fluorescent products from melanin oxidative degradation.
- This degradation was driven by superoxide radicals generated by the lipofuscin component within the granules.
- Melanosomes also degraded but required higher light intensities; similar products formed when melanosomes were oxidized by superoxide radicals directly.
Conclusions:
- The age-related decrease in RPE melanin concentration is caused by oxidative degradation of melanin.
- This degradation occurs within melanolipofuscin granules, where lipofuscin generates reactive oxygen species under light exposure.
- Melanolipofuscin granules are more susceptible to light-induced degradation than intact melanosomes.
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