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TSPO-mediated mitochondrial retrograde signaling primes the microglial NLRP3 inflammasome
Aarti Singh1, Manuel Rigon2, Tong Guo2
1Department of Comparative Biomedical Sciences, The Royal Veterinary College, University of London, London NW1 0TU, United Kingdom.
Abstract:
Uncontrolled microglial activation is a central driver of neuroinflammatory brain diseases. The mitochondrial translocator protein (TSPO) is a well-established molecular signature of brain inflammation and serves as a diagnostic marker. However, despite this strong association, it remains unclear whether TSPO acts as a positive or negative regulator of microglial function and how it influences the inflammatory and healing responses that follow brain injury. Moreover, recent evidence of species-specific differences in TSPO expression underscores the need to better define its biology in brain-resident macrophages. Here, using a murine microglial model, we demonstrate that TSPO is required for the mitochondrial priming of inflammation and acts as a conduit for its amplification. This function relies on the engagement of multiple intracellular pathways and can be effectively counteracted by the tricyclic indole compound GE-180. Specifically, in response to inflammatory stimuli, TSPO (i) stabilizes on the mitochondrial membrane where it binds and sequesters NOD-like receptor (NLR) proteins, (ii) represses PARK2-mediated mitophagy, and (iii) promotes nuclear retrograde signaling through NF-κB accumulation, thereby enhancing the expression of pro-inflammatory genes. Sustained TSPO-dependent inflammation further drives cellular demise and excitotoxicity. Collectively, these findings advance our understanding of TSPO's molecular physiology in microglia, highlight its pivotal role in mitochondrial control of inflammation, and identify TSPO as a promising target for the pharmacological modulation of neuroinflammatory responses.
Insights
Mitochondrial translocator protein (TSPO) amplifies neuroinflammation by priming microglia. Targeting TSPO with compounds like GE-180 may offer new treatments for brain diseases.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Uncontrolled microglial activation drives neuroinflammation.
- Mitochondrial translocator protein (TSPO) is a marker of brain inflammation, but its role is unclear.
- Species-specific differences necessitate understanding TSPO in brain macrophages.
Purpose of the Study:
- To elucidate the role of TSPO in microglial function and neuroinflammation.
- To investigate how TSPO influences inflammatory and healing responses post-brain injury.
- To identify TSPO as a potential therapeutic target.
Main Methods:
- Utilized a murine microglial model.
- Investigated TSPO's interaction with intracellular pathways.
- Examined the effect of the compound GE-180 on TSPO function.
Main Results:
- TSPO is essential for mitochondrial priming and amplification of inflammation in microglia.
- TSPO sequesters NLR proteins, represses mitophagy, and promotes pro-inflammatory signaling.
- GE-180 effectively counteracts TSPO-dependent inflammation.
- Sustained TSPO activity leads to cell death and excitotoxicity.
Conclusions:
- TSPO plays a critical role in the mitochondrial control of microglial inflammation.
- TSPO is a promising target for pharmacological intervention in neuroinflammatory diseases.
- Findings advance understanding of TSPO's molecular physiology in microglia.
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