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Published on: June 23, 2022
Redox-sensitive small GTPase H-Ras in murine astrocytes, an in vitro study
Candida Zuchegna1, Antonio Porcellini1, Samantha Messina2
1Dipartimento di Biologia, Complesso Universitario di Monte Sant'Angelo, Università degli Studi di Napoli "Federico II", Napoli, Italia.
Background:
Although the protooncogenes small GTPases Ras are redox-sensitive proteins, how they are regulated by redox signaling in the central nervous system (CNS) is still poorly understood. Alteration in redox-sensitive targets by redox signaling may have myriad effects on Ras stability, activity and localization. Redox-mediated changes in astrocytic RAS may contribute to the control of redox homeostasis in the CNS that is connected to the pathogenesis of many diseases.
Results And Methods:
Here, we investigated the transient physiological induction, at both transcriptional and translational levels, of small GTPases Ras in response to redox stimulation. Cultured astrocytes were treated with hydrogen peroxide as in bolus addition and relative mRNA levels of murine hras and kras genes were detected by qRT-PCR. We found that de novo transcription of hras mRNA in reactive astrocytes is redox-sensitive and mimics the prototypical redox-sensitive gene iNOS. Protein abundance in combination with protein turnover measurements by cycloheximide-chase experiments revealed distinct translation efficiency, GTP-bound enrichment, and protein turnover rates between the two isoforms H-Ras and K-Ras.
Conclusion:
Reports from recent years support a significant role of H-Ras in driving redox processes. Beyond its canonical functions, Ras may impact on the core astrocytic cellular machinery that operates during redox stimulation.
Insights
Redox signaling regulates small GTPases Ras in the central nervous system (CNS). This study shows H-Ras and K-Ras have distinct responses to hydrogen peroxide in astrocytes, impacting CNS redox homeostasis.
Area of Science:
- Neuroscience
- Cellular Biology
- Redox Signaling
Background:
- Small GTPases Ras are redox-sensitive proteins.
- Regulation of Ras by redox signaling in the CNS is poorly understood.
- Redox-mediated changes in astrocytic Ras may influence CNS redox homeostasis and disease pathogenesis.
Purpose of the Study:
- Investigate the transcriptional and translational regulation of small GTPases Ras in response to redox stimulation.
- Examine the distinct properties of H-Ras and K-Ras isoforms.
Main Methods:
- Cultured astrocytes treated with hydrogen peroxide.
- Quantitative real-time PCR (qRT-PCR) to detect mRNA levels of murine hras and kras.
- Cycloheximide-chase experiments to measure protein turnover.
Main Results:
- De novo transcription of hras mRNA in reactive astrocytes is redox-sensitive.
- H-Ras and K-Ras exhibit distinct translation efficiency, GTP-bound enrichment, and protein turnover rates.
- Hydrogen peroxide treatment induced transient physiological changes in Ras expression.
Conclusions:
- Redox signaling dynamically regulates Ras isoforms in astrocytes.
- H-Ras plays a role in driving redox processes within astrocytes.
- Ras may influence astrocytic cellular machinery during redox stimulation, impacting CNS function.
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