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Isolation and Culture of Mouse Cortical Astrocytes
Published on: January 19, 2013
P2X7 Receptors Mediate CO-Induced Alterations in Gene Expression in Cultured Cortical Astrocytes-Transcriptomic Study
Sara R Oliveira1,2,3, Cláudia Figueiredo-Pereira2, Carlos B Duarte1,4
1CNC- Center for Neuroscience and Cell Biology, University of Coimbra, Coimbra, Portugal.
Abstract:
Carbon monoxide (CO) is an endogenous gasotransmitter that limits inflammation and prevents apoptosis in several tissues, including the brain. Low concentrations of CO are cytoprotective in astrocytes, neurons, and microglia, but the underlying molecular mechanisms remain poorly understood. This work aims at identification of alterations in gene expression conferred by CO in primary cultures of cortical astrocytes, for further disclosure of the molecular mechanism of action of the gasotransmitter. Astrocytes were treated with the CO-releasing molecule CORM-A1 for 40 min, and transcriptional changes were analyzed using RNASeq. A total of 162 genes were differentially expressed in response to CO treatment, and 7 of these genes were selected for further analysis: FosB, Scand1, Rgs10, Actg1, Panx1, Pcbdh21, and Rn18s. The alterations in their expression were further validated using qRT-PCR. An increase in FosB protein expression was also observed after 40 min of CORM-A1 treatment, as determined by a western blot. CO-induced FosB expression and cytoprotection were both abrogated in the presence of the P2X7 receptor antagonist A-438079. Furthermore, CORM-A1 increased phosphorylation of calcium/calmodulin-dependent protein kinase II (CaMKII), which is a downstream event of P2X7R activation. The functional importance of FosB in CO-induced survival was assessed by knocking down its expression with FosB siRNA. Astrocytes were challenged to death with oxidative stress and cell viability was assessed 24 h later. Downregulation of FosB did not prevent the effects of CO in the inhibition of astrocytic cell death. Nevertheless, the transcriptomic changes observed upon treatment of astrocytes with CO open new opportunities for further studies on CO cytoprotective pathways.
Insights
Carbon monoxide (CO) protects astrocytes from cell death by altering gene expression. While CO increases FosB protein, this specific protein is not essential for CO
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- Carbon monoxide (CO) is an endogenous gasotransmitter with known anti-inflammatory and anti-apoptotic effects in the brain.
- Low concentrations of CO demonstrate cytoprotective properties in astrocytes, neurons, and microglia.
- The precise molecular mechanisms underlying CO's cytoprotective actions remain largely unelucidated.
Purpose of the Study:
- To identify gene expression changes induced by CO in primary cortical astrocytes.
- To elucidate the molecular pathways involved in CO's cytoprotective effects.
- To investigate the role of FosB and P2X7 receptors in CO-mediated astrocyte survival.
Main Methods:
- Primary cortical astrocytes were treated with a CO-releasing molecule (CORM-A1).
- Transcriptional changes were analyzed using RNA sequencing (RNASeq).
- Gene expression was validated via quantitative real-time PCR (qRT-PCR) and Western blot.
- P2X7 receptor antagonist (A-438079) and FosB siRNA were used to probe molecular mechanisms.
Main Results:
- CO treatment resulted in differential expression of 162 genes in astrocytes.
- FosB protein expression increased following CO treatment.
- CO-induced FosB expression and cytoprotection were blocked by the P2X7 receptor antagonist.
- CO treatment increased phosphorylation of CaMKII, a downstream target of P2X7R.
- Downregulation of FosB did not impede CO's ability to inhibit astrocytic cell death.
Conclusions:
- CO significantly alters gene expression in astrocytes, offering insights into its cytoprotective mechanisms.
- The P2X7 receptor and downstream CaMKII signaling are implicated in CO's effects.
- While FosB is upregulated by CO, it is not the sole mediator of CO-induced astrocytic survival.
- Further research into CO's transcriptomic effects can reveal novel cytoprotective pathways.
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