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Updated: May 23, 2026

Three-dimensional Confocal Analysis of Microglia/macrophage Markers of Polarization in Experimental Brain Injury
Published on: September 4, 2013
Vespakinin-M delineates an AMPK/mTOR-arginine-TCA cycle axis to act as an immunometabolic switch in post-stroke
Dexiao Wang1, Jingyu Zhang1, Zhejun Zhuang1
1Yunnan Provincial Key Laboratory of Entomological Biopharmaceutical R&D, College of Pharmacy, Dali University, Dali, Yunnan, 671000, China; National-Local Joint Engineering Research Center of Entomoceutics, Dali, 671000, China.
Abstract:
Despite advances in recanalization therapy for ischemic stroke, effective neuroprotection against cerebral ischemia-reperfusion injury (CIRI) remains an unmet need, largely due to persistent microglia-driven neuroinflammation and associated oxidative stress. Vespakinin-M (VK) is a naturally neuroprotective peptide isolated from wasp venom that can cross the blood-brain barrier. Although VK has been shown to improve functional outcomes in preliminary stroke models, its underlying mechanisms remain unclear. Here, we show that administration of VK alleviates neuroinflammation and oxidative damage in a mouse stroke model. This neuroprotection is orchestrated by microglial metabolic reprogramming, which shifts their energy metabolism from aerobic glycolysis toward oxidative phosphorylation (OXPHOS) and their functional phenotype from pro-inflammatory M1 to reparative M2. Integrated multi-omics and isotopic tracing uncover that VK redirects arginine metabolism to generate fumarate. This directly couples amino acid catabolism with the tricarboxylic acid (TCA) cycle, thereby restoring mitochondrial bioenergetics and redox balance. Mechanistically, VK activates the energy sensor AMPK while inhibiting the anabolic regulator mTOR. AMPK knockdown partially abolishes the beneficial effects of VK, establishing the AMPK/mTOR axis as the upstream regulator of this arginine-centric metabolic rewiring. Interestingly, VK retains the ability to stimulate de novo arginine synthesis even under arginine-deprived conditions, and its efficacy is synergistically enhanced with arginine supplementation. Together, these findings define an immunometabolic axis-AMPK/mTOR-arginine-TCA cycle coupling-that dictates microglial fate after stroke, and suggests VK as a therapeutic agent capable of concurrently targeting neuroinflammation, mitochondrial dysfunction, and metabolic imbalance.
Insights
Vespakinin-M (VK) peptide reduces brain damage after stroke by reprogramming microglia metabolism. This neuroprotective effect involves shifting energy production and reducing inflammation, offering a potential new therapy for ischemic stroke.
Area of Science:
- Neuroscience
- Immunology
- Metabolomics
Background:
- Cerebral ischemia-reperfusion injury (CIRI) lacks effective neuroprotection due to microglia-driven inflammation and oxidative stress.
- Vespakinin-M (VK), a peptide from wasp venom, shows promise in stroke models, but its mechanisms are unknown.
Purpose of the Study:
- To elucidate the neuroprotective mechanisms of Vespakinin-M (VK) in a mouse model of ischemic stroke.
- To investigate VK's impact on microglial function, metabolism, and inflammation.
Main Methods:
- Mouse stroke model, administration of Vespakinin-M (VK).
- Multi-omics analysis, isotopic tracing, Western blotting, and AMPK knockdown experiments.
- Assessment of neuroinflammation, oxidative damage, microglial phenotype, and metabolic pathways.
Main Results:
- VK administration reduced neuroinflammation and oxidative damage in stroke models.
- VK reprogrammed microglia metabolism from glycolysis to oxidative phosphorylation (OXPHOS), shifting M1 to M2 phenotypes.
- VK activated AMPK and inhibited mTOR, linking arginine metabolism to the TCA cycle for restored mitochondrial function.
Conclusions:
- VK orchestrates neuroprotection via microglial metabolic reprogramming, activating the AMPK/mTOR axis and arginine-TCA cycle coupling.
- VK represents a novel therapeutic strategy targeting neuroinflammation, mitochondrial dysfunction, and metabolic imbalance in ischemic stroke.
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