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Minocycline reduces inflammatory response and cell death in a S100B retina degeneration model
Pia Grotegut1, Natarajan Perumal2, Sandra Kuehn1
1Experimental Eye Research Institute, University Eye Hospital, Ruhr-University Bochum, In der Schornau 23-25, 44892, Bochum, Germany.
Background:
Previous studies noted that intravitreal injection of S100B triggered a glaucoma-like degeneration of retina and optic nerve as well as microglia activation after 14 days. The precise role of microglia in our intravitreal S100B model is still unclear. Hence, microglia were inhibited through minocycline. The aim is to investigate whether microglia have a significant influence on the degeneration process or whether they are only a side effect in the model studied here.
Methods:
Minocycline was applied daily in rats by intraperitoneal injection using two different concentrations (13.5 mg/kg body weight, 25 mg/kg body weight). One day after treatment start, S100B or PBS was intravitreally injected in one eye per rat. The naïve groups received no injections. This resulted in a total of five groups (naïve n = 14, PBS n = 14, S100B n = 13, 13.5 mg/kg mino n = 15, 25 mg/kg mino n = 15). At day 14, electroretinogram measurements were performed, followed by immunofluorescence and label-free quantitative proteomics analysis. The focus of these investigations was on the survival of RGCs as well as their axons, the response of the microglia, and the identification of further pathological modes of action of S100B.
Results:
The best signal transmission was detected via ERG in the 13.5 mg/kg mino group. The inhibition of the microglia protected optic nerve neurofilaments and decreased the negative impact of S100B on RGCs. However, the minocycline treatment could not trigger complete protection of RGCs. Furthermore, in retina and optic nerve, the minocycline treatment reduced the number and activity of S100B-triggered microglia in a concentration-dependent manner. Proteomics analysis showed that S100B application led to numerous metabolic functions and cellular stress, mainly an increased inflammatory response, glycolysis, and mitochondrial dysfunction, which caused oxidative stress in the retina. Importantly, the protective capability of lower dose of minocycline was unraveled by suppressing the apoptotic, inflammatory, and the altered metabolic processes caused by S100B insult in the retina.
Conclusion:
Intravitreally injected S100B not only led to a pro-inflammatory microglial reaction, but also a mitochondrial and metabolic dysfunction. Also, these results suggest that an excessive microglial response may be a significant degenerative factor, but not the only trigger for increased cell death.
Insights
Minocycline treatment partially protected retinal ganglion cells (RGCs) and optic nerves in a S100B-induced glaucoma model by inhibiting microglia. Excessive microglial response contributes to degeneration, but is not the sole cause of cell death.
Area of Science:
- Ophthalmology and Neuroscience
- Immunology and Neuroinflammation
Background:
- Intravitreal S100B injection induces glaucoma-like retinal and optic nerve degeneration, accompanied by microglia activation.
- The specific role of microglia in S100B-induced ocular degeneration remains unclear.
- Minocycline was used to inhibit microglia to investigate their influence on the degenerative process.
Purpose of the Study:
- To investigate the role of microglia in S100B-induced retinal and optic nerve degeneration.
- To determine if microglia are a significant factor or a side effect in this experimental glaucoma model.
Main Methods:
- Rats received daily intraperitoneal injections of minocycline (13.5 or 25 mg/kg) or vehicle.
- S100B or PBS was intravitreally injected; naive groups received no injections.
- Electroretinogram (ERG), immunofluorescence, and quantitative proteomics were performed at day 14 to assess RGC survival, axonal protection, microglial response, and S100B's pathological mechanisms.
Main Results:
- Minocycline inhibited microglia in a dose-dependent manner, protecting optic nerve neurofilaments and reducing S100B's negative impact on RGCs.
- S100B induced metabolic and cellular stress, including inflammation, glycolysis, and mitochondrial dysfunction, leading to oxidative stress.
- Lower-dose minocycline suppressed apoptotic, inflammatory, and metabolic alterations, demonstrating a protective effect.
Conclusions:
- S100B triggers pro-inflammatory microglial reactions, mitochondrial dysfunction, and metabolic disturbances.
- An excessive microglial response is a significant degenerative factor in this model.
- Microglia are not the sole cause of the increased cell death observed.
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