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The glutathione content of retinal Müller (glial) cells: effect of pathological conditions
D Huster1, A Reichenbach, W Reichelt
1Paul-Flechsig-Institute for Brain Research, Department of Neurophysiology, University of Leipzig, Germany.
Abstract:
Maintenance of isolated retinal Müller (glial) cells in glutamate-free solutions over 7 h causes a significant loss of their initial glutathione content; this loss is largely prevented by the blockade of glutamine synthesis using methionine sulfoximine (5 mM). Anoxia does not reduce the glutathione content of Müller cells when glucose (11 mM), glutamate and cystine (0.1 mM each) are present. In contrast, simulation of total ischemia (i.e., anoxia plus removal of glucose) decreases the glutathione levels dramatically, even in the presence of glutamate and cystine. Less severe effects are caused by high extracellular K+ (40 mM). Reactive oxygen species are generated in the retina under various conditions, such as anoxia, ischemia, and reperfusion. One of the crucial substances protecting the retina against reactive oxygen species is glutathione, a tripeptide constituted of glutamate, cysteine and glycine. It was recently shown that glutathione can be synthesized in retinal Müller glial cells and that glutamate is the rate-limiting substance. In this study, glutathione levels were determined in acutely isolated guinea-pig Müller cells using the glutathione-sensitive fluorescent dye monochlorobimane. The purpose was to find out how the glial glutathione content is affected by anoxia/ischemia and accompanying pathophysiological events such as depolarization of the cell membrane. Our results further strengthen the view that glutamate is rate-limiting for the glutathione synthesis in glial cells. During glutamate deficiency, as caused by e.g., impaired glutamate uptake, this amino acid is preferentially delivered to the glutamate-glutamine pathway, at the expense of glutathione. This mechanism may contribute to the finding that total ischemia (but not anoxia) causes a depletion of glial glutathione. In situ depletion may be accelerated by the ischemia-induced increase of extracellular K+, decreasing the driving force for glutamate uptake. The ischemia-induced lack of glutathione is particularly fatal considering the increased production of reactive oxygen species under this condition. Therefore the therapeutic application of exogenous free radical scavengers is greatly recommended.
Insights
Glutamate availability is critical for glutathione synthesis in retinal Müller cells. Ischemia depletes glutathione, increasing oxidative stress, highlighting the need for free radical scavengers.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Glutathione (GSH) is a key antioxidant protecting the retina from reactive oxygen species (ROS).
- Retinal Müller glial cells synthesize GSH, with glutamate being the rate-limiting precursor.
- Ischemia and anoxia trigger ROS production, potentially depleting retinal GSH levels.
Purpose of the Study:
- To investigate how anoxia, ischemia, and membrane depolarization affect GSH levels in isolated Müller glial cells.
- To confirm the role of glutamate as the rate-limiting factor in Müller cell GSH synthesis under various stress conditions.
Main Methods:
- Acutely isolated guinea-pig Müller cells were used.
- Glutathione levels were measured using the fluorescent dye monochlorobimane.
- Cells were subjected to glutamate-free solutions, anoxia, simulated ischemia (anoxia + glucose removal), and high extracellular K+.
Main Results:
- Glutamate-free conditions for 7 hours significantly reduced Müller cell GSH content, an effect largely prevented by blocking glutamine synthesis.
- Anoxia alone did not deplete GSH when glucose, glutamate, and cystine were present.
- Simulated total ischemia drastically decreased GSH levels, even with glutamate and cystine present.
- High extracellular K+ (40 mM) had less severe effects on GSH levels.
Conclusions:
- Glutamate availability is crucial for maintaining GSH synthesis in Müller glial cells.
- During glutamate deficiency, glutamate is preferentially used for glutamine synthesis over GSH synthesis.
- Total ischemia, unlike anoxia, depletes Müller cell GSH, potentially due to impaired glutamate uptake and increased extracellular K+.
- Ischemia-induced GSH depletion exacerbates oxidative stress, suggesting therapeutic potential for exogenous free radical scavengers.
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