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Mitofusin-2 regulates inflammation-mediated mouse neuroblastoma N2a cells dysfunction and endoplasmic reticulum
Shu Hou1, Lili Wang1, Guoping Zhang2
1Department of Neurology and Psychiatry, Beijing Shijitan Hospital, Capital Medical University, No 10 Tieyi Road, Haidian District, Beijing, China.
Abstract:
Endoplasmic reticulum (ER) stress is involved in inflammation-induced neurotoxicity. Mitofusin 2 (Mfn2), a member of the GTPase family of proteins, resides in the ER membrane and is known to regulate ER stress. However, the potential role and underlying mechanism of Mfn2 in inflammation-induced neuronal dysfunction is unknown. In our study, we explored the potential of Mfn2 to attenuate inflammation-mediated neuronal dysfunction by inhibiting ER stress. Our data show that Mfn2 overexpression significantly ameliorated tumor necrosis factor alpha (TNFα)-induced ER stress, as indicated by the downregulation of the ER stress proteins PERK, GRP78 and CHOP. Mfn2 overexpression also prevented the TNFα-mediated activation of caspase-3, caspase-12 and cleaved poly (ADP-ribose) polymerase (PARP). Cellular antioxidant dysfunction and reactive oxygen species overproduction were also improved by Mfn2 in the setting of TNFα in mouse neuroblastoma N2a cells in vitro. Similarly, disordered calcium homeostasis, indicated by disturbed levels of calcium-related proteins and calcium overloading, was corrected by Mfn2, as evidenced by the increased expression of store-operated calcium entry (SERCA), decreased levels of inositol trisphosphate receptor (IP3R), and normalized calcium content in TNFα-treated N2a cells. Mfn2 overexpression was found to elevate Yes-associated protein (Yap) expression; knockdown of Yap abolished the regulatory effects of Mfn2 on ER stress, oxidative stress, calcium balance, neural death and inflammatory injury. These results lead us to conclude that re-activation of the Mfn2-Yap signaling pathway alleviates TNFα-induced ER stress and dysfunction of mouse neuroblastoma N2a cells. Our findings provide a better understanding of the regulatory role of Mfn2-Yap-ER stress in neuroinflammation and indicate that the Mfn2-Yap axis may be a focus of research in terms of having therapeutic value for the treatment of neurodegenerative diseases.
Insights
Mitofusin 2 (Mfn2) can protect against inflammation-induced neurotoxicity by reducing endoplasmic reticulum (ER) stress. This protein, along with Yes-associated protein (Yap), offers potential therapeutic targets for neurodegenerative diseases.
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- Endoplasmic reticulum (ER) stress contributes to inflammation-induced neurotoxicity.
- Mitofusin 2 (Mfn2), an ER membrane protein, is known to regulate ER stress.
- The specific role of Mfn2 in inflammation-mediated neuronal dysfunction remains unclear.
Purpose of the Study:
- To investigate the potential of Mfn2 to mitigate inflammation-induced neuronal dysfunction.
- To explore the underlying mechanisms by which Mfn2 inhibits ER stress.
Main Methods:
- Overexpression of Mfn2 in mouse neuroblastoma N2a cells.
- Treatment with tumor necrosis factor alpha (TNFα) to induce inflammation and ER stress.
- Analysis of ER stress markers (PERK, GRP78, CHOP), apoptosis markers (caspase-3, caspase-12, PARP), oxidative stress, calcium homeostasis proteins (SERCA, IP3R), and Yes-associated protein (Yap) expression.
- Knockdown of Yap to assess its role in Mfn2-mediated effects.
Main Results:
- Mfn2 overexpression significantly reduced TNFα-induced ER stress markers and apoptosis.
- Mfn2 improved cellular antioxidant function, normalized calcium homeostasis, and corrected calcium overloading.
- Mfn2 elevated Yap expression; Yap knockdown abolished Mfn2's protective effects against TNFα-induced cellular damage.
Conclusions:
- Reactivation of the Mfn2-Yap signaling pathway alleviates TNFα-induced ER stress and neuronal dysfunction in vitro.
- The Mfn2-Yap axis plays a crucial role in regulating neuroinflammation and ER stress.
- The Mfn2-Yap pathway represents a potential therapeutic target for neurodegenerative diseases.
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