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Nrf2 Signaling in Sodium Azide-Treated Oligodendrocytes Restores Mitochondrial Functions
Annette Liessem-Schmitz1, Nico Teske2, Miriam Scheld1
1Institute of Neuroanatomy, Uniklinik RWTH Aachen University, Wendlingweg 2, 52074, Aachen, Germany.
Abstract:
Mitochondrial dysfunctions mark a critical step in many central nervous system (CNS) pathologies, including multiple sclerosis (MS). Such dysfunctions lead to depolarization of mitochondrial membranes and imbalanced redox homeostasis. In this context, reactive oxygen species (ROS) are potentially deleterious but can also act as an important signaling step for cellular maintenance. The transcription factor nuclear factor (erythroid-derived 2)-like 2 (Nrf2), the key regulator in the cellular oxidative stress-response, induces a battery of genes involved in repair and regeneration. Here, we investigated the relevance of Nrf2 signaling for the prevention of cellular damage caused by dysfunctional mitochondria. We employed sodium azide (SA) as mitochondrial inhibitor on oligodendroglial OliNeu cells in vitro, and the cuprizone model with wild type and GFAP-Cre+::Keap1loxP/loxP mice to induce mitochondrial defects. The importance of Nrf2 for cellular functions and survival after SA treatment was elucidated by in vitro knockdown experiments with shRNA directed against Nrf2 and its inhibitor Keap1 as well as by methysticin treatment. Metabolic activity, cytotoxicity, and depolarization of the mitochondrial membrane were analyzed after SA treatment. The expression of Nrf2 target genes as well as endoplasmic reticulum stress response genes was additionally measured by real-time PCR (in vitro) and PCR gene arrays (in vivo). Treatment of OliNeu cells with SA resulted in significant depolarization of the mitochondrial membrane, decreased metabolic activity, and increased cytotoxicity. This was partly counteracted in Nrf2-hyperactivated cells and intensified in Nrf2-knockdown cells. Our studies demonstrate a key role of Nrf2 in maintaining cellular functions and survival in the context of mitochondrial dysfunction.
Insights
Nuclear factor (erythroid-derived 2)-like 2 (Nrf2) protects cells from mitochondrial damage. This study shows Nrf2 activation prevents cell death and maintains function during mitochondrial dysfunction, crucial for central nervous system pathologies.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Mitochondrial dysfunction is central to CNS pathologies like multiple sclerosis.
- Dysfunctional mitochondria cause membrane depolarization and redox imbalance.
- Reactive oxygen species (ROS) play dual roles in cellular signaling and damage.
Purpose of the Study:
- To investigate the role of nuclear factor (erythroid-derived 2)-like 2 (Nrf2) in preventing cellular damage from mitochondrial dysfunction.
- To elucidate the importance of Nrf2 for cellular functions and survival under mitochondrial stress.
Main Methods:
- Used sodium azide (SA) to induce mitochondrial dysfunction in oligodendroglial cells (in vitro).
- Employed the cuprizone model in mice (wild type and GFAP-Cre+::Keap1loxP/loxP) to study mitochondrial defects.
- Utilized Nrf2 and Keap1 knockdown experiments and methysticin treatment to modulate Nrf2 activity.
- Assessed metabolic activity, cytotoxicity, mitochondrial membrane depolarization, and gene expression (Nrf2 targets, ER stress genes).
Main Results:
- SA treatment caused mitochondrial membrane depolarization, reduced metabolic activity, and increased cytotoxicity in oligodendroglial cells.
- Nrf2 hyperactivation partially counteracted SA-induced damage.
- Nrf2 knockdown exacerbated SA-induced cellular damage.
- Nrf2 signaling is critical for maintaining cellular functions and survival following mitochondrial insult.
Conclusions:
- Nrf2 plays a key role in cellular defense against mitochondrial dysfunction.
- Targeting Nrf2 signaling may offer therapeutic strategies for CNS diseases involving mitochondrial pathologies.
- Nrf2 activation is essential for maintaining cellular homeostasis under oxidative stress conditions.
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