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Updated: Apr 21, 2026

Primary Cultures of Rat Astrocytes and Microglia and Their Use in the Study of Amyotrophic Lateral Sclerosis
Published on: June 23, 2022
System xC- is a mediator of microglial function and its deletion slows symptoms in amyotrophic lateral sclerosis mice
Pinar Mesci1, Sakina Zaïdi1, Christian S Lobsiger1
11 Inserm U 1127, CNRS UMR 7225, Sorbonne Universités, UPMC Univ Paris 06 UMR S 1127, Institut du Cerveau et de la Moelle épinière, ICM, F-75013, Paris, France.
Abstract:
Amyotrophic lateral sclerosis is the most common adult-onset motor neuron disease and evidence from mice expressing amyotrophic lateral sclerosis-causing SOD1 mutations suggest that neurodegeneration is a non-cell autonomous process where microglial cells influence disease progression. However, microglial-derived neurotoxic factors still remain largely unidentified in amyotrophic lateral sclerosis. With excitotoxicity being a major mechanism proposed to cause motor neuron death in amyotrophic lateral sclerosis, our hypothesis was that excessive glutamate release by activated microglia through their system [Formula: see text] (a cystine/glutamate antiporter with the specific subunit xCT/Slc7a11) could contribute to neurodegeneration. Here we show that xCT expression is enriched in microglia compared to total mouse spinal cord and absent from motor neurons. Activated microglia induced xCT expression and during disease, xCT levels were increased in both spinal cord and isolated microglia from mutant SOD1 amyotrophic lateral sclerosis mice. Expression of xCT was also detectable in spinal cord post-mortem tissues of patients with amyotrophic lateral sclerosis and correlated with increased inflammation. Genetic deletion of xCT in mice demonstrated that activated microglia released glutamate mainly through system [Formula: see text]. Interestingly, xCT deletion also led to decreased production of specific microglial pro-inflammatory/neurotoxic factors including nitric oxide, TNFa and IL6, whereas expression of anti-inflammatory/neuroprotective markers such as Ym1/Chil3 were increased, indicating that xCT regulates microglial functions. In amyotrophic lateral sclerosis mice, xCT deletion surprisingly led to earlier symptom onset but, importantly, this was followed by a significantly slowed progressive disease phase, which resulted in more surviving motor neurons. These results are consistent with a deleterious contribution of microglial-derived glutamate during symptomatic disease. Therefore, we show that system [Formula: see text] participates in microglial reactivity and modulates amyotrophic lateral sclerosis motor neuron degeneration, revealing system [Formula: see text] inactivation, as a potential approach to slow amyotrophic lateral sclerosis disease progression after onset of clinical symptoms.
Insights
Microglia release glutamate via system xc, worsening amyotrophic lateral sclerosis (ALS). Blocking this system in mice slowed ALS progression and preserved motor neurons, suggesting a therapeutic target for ALS.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Amyotrophic lateral sclerosis (ALS) is a motor neuron disease where microglial cells influence progression.
- Microglial-derived neurotoxic factors in ALS remain largely unidentified.
- Excitotoxicity is a proposed mechanism for motor neuron death in ALS.
Purpose of the Study:
- To investigate if excessive glutamate release by activated microglia contributes to neurodegeneration in ALS.
- To determine the role of microglial system xc (cystine/glutamate antiporter xCT/Slc7a11) in ALS pathogenesis.
Main Methods:
- Assessed xCT expression in microglia and motor neurons in mouse models and human ALS tissues.
- Utilized genetic deletion of xCT in ALS mice to evaluate its functional impact.
- Measured microglial inflammatory factors and motor neuron survival.
Main Results:
- xCT expression is enriched in microglia and upregulated during ALS, correlating with inflammation in human tissues.
- Genetic deletion of xCT in mice confirmed microglial glutamate release via system xc.
- xCT deletion modulated microglial inflammatory profiles and slowed ALS progression, increasing motor neuron survival.
Conclusions:
- Microglial system xc plays a role in microglial reactivity and ALS motor neuron degeneration.
- Targeting microglial glutamate release through system xc inactivation may offer a therapeutic strategy for ALS after symptom onset.

