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Published on: June 9, 2017
Glial cells modulate retinal cell survival in rotenone-induced neural degeneration
Hiroshi Tawarayama1,2, Maki Inoue-Yanagimachi1, Noriko Himori1
1Department of Ophthalmology, Tohoku University Graduate School of Medicine, 1-1 Seiryo-machi, Aoba-ku, Sendai, 980-8574, Japan.
Abstract:
Administration of the mitochondrial complex I inhibitor rotenone provides an excellent model to study the pathomechanism of oxidative stress-related neural degeneration diseases. In this study, we examined the glial roles in retinal cell survival and degeneration under the rotenone-induced oxidative stress condition. Mouse-derived Müller, microglial (BV-2), and dissociated retinal cells were used for in vitro experiments. Gene expression levels and cell viability were determined using quantitative reverse transcription-polymerase chain reaction and the alamarBlue assay, respectively. Conditioned media were prepared by stimulating glial cells with rotenone. Retinal ganglion cells (RGCs) and inner nuclear layer (INL) were visualized on rat retinal sections by immunohistochemistry and eosin/hematoxylin, respectively. Rotenone dose-dependently induced glial cell death. Treatment with rotenone or rotenone-stimulated glial cell-conditioned media altered gene expression of growth factors and inflammatory cytokines in glial cells. The viability of dissociated retinal cells significantly increased upon culturing in media conditioned with rotenone-stimulated or Müller cell-conditioned media-stimulated BV-2 cells. Furthermore, intravitreal neurotrophin-5 administration prevented the rotenone-induced reduction of RGC number and INL thickness in rats. Thus, glial cells exerted both positive and negative effects on retinal cell survival in rotenone-induced neural degeneration via altered expression of growth factors, especially upregulation of microglia-derived Ntf5, and proinflammatory cytokines.
Insights
Glial cells influence retinal cell survival in rotenone-induced degeneration. Microglia-derived neurotrophin-5 (Ntf5) promotes survival, while inflammatory cytokines contribute to degeneration.
Area of Science:
- Neuroscience
- Ophthalmology
- Cell Biology
Background:
- Rotenone models oxidative stress-related neurodegeneration.
- Glial cells play critical roles in neural health and disease.
Purpose of the Study:
- To investigate glial cell roles in retinal degeneration under rotenone-induced oxidative stress.
- To elucidate the mechanisms by which glial cells affect retinal cell survival.
Main Methods:
- In vitro studies using Müller cells, BV-2 microglial cells, and dissociated retinal cells.
- Quantitative reverse transcription-polymerase chain reaction (RT-qPCR) for gene expression analysis.
- AlamarBlue assay for cell viability assessment.
- Immunohistochemistry and H&E staining for in vivo rat retinal analysis.
Main Results:
- Rotenone induced dose-dependent glial cell death.
- Rotenone altered gene expression of growth factors and inflammatory cytokines in glial cells.
- Conditioned media from rotenone-stimulated glial cells influenced retinal cell viability.
- Neurotrophin-5 (Ntf5) administration protected against rotenone-induced retinal ganglion cell loss.
Conclusions:
- Glial cells exert dual effects (protective and detrimental) on retinal cells during rotenone-induced degeneration.
- Microglia-derived Ntf5 up-regulation is a key protective factor.
- Modulation of glial cell responses may offer therapeutic strategies for oxidative stress-related retinal diseases.
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