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Updated: Sep 16, 2025

Isolation and Flow Cytometric Assessment of Neuroimmune Interactions in a Mini-Stroke Murine Model
Published on: June 20, 2025
Nuclear localization of platelet activating factor receptor accounts for microglial phagocytosis in ischemic stroke
Xi-Yue Zhang1, Hang Xu1, Xue-Wei Ren1
1Neuroprotective Drug Discovery Key Laboratory, Jiangsu Key Laboratory of Neurodegeneration, Nanjing Medical University, Nanjing, China.
Abstract:
Ischemic stroke (IS) is a leading cause of global morbidity and mortality. A critical strategy for improving the prognosis of IS involves mitigating neuronal loss to enhance neuroplasticity, with microglia playing a vital role in neuronal survival. The platelet activating factor receptor (PTAFR) participates in the pathological processes underlying IS; however, little is known about its mechanism in pathological stress. In this study, we investigated the potential role of PTAFR in regulating the microglia/macrophage phagocytosis of neurons, aiming to identify new therapeutic strategies for IS. The mRNA and protein expression levels of PTAFR were upregulated, peaking on day 5 post-ischemic stroke and gradually returning to baseline levels thereafter. PTAFR was found to mediate interactions between the microglia/macrophage and neurons in IS. Notably, the inhibition of phagocytosis of stressed-but-viable neurons following IS depends on the nuclear localization of PTAFR. Mechanistically, nuclear PTAFR recruited the transcription factor Specificity Protein 1 (SP1) to initiate the transcription of milk fat globule EGF factor 8 (MFGE8). In comparison to the membrane-impermeable antagonist Ginkgolide B, the membrane-permeable PTAFR antagonist Apafant significantly enhances neurological recovery in IS model mice. This effect is achieved by inhibiting PTAFR nuclear translocation, which reduces microglia/macrophage phagocytosis of stressed-but-viable neurons. Our findings provide insight into the mechanism of nuclear PTAFR-mediated microglia/macrophage phagocytosis and have significant implications for the selection of PTAFR antagonists in the treatment of ischemic stroke, particularly those targeting nuclear receptors.
Insights
Platelet activating factor receptor (PTAFR) nuclear localization drives microglia to engulf stressed neurons after ischemic stroke (IS). Inhibiting this process with Apafant improves recovery in IS mice.
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Ischemic stroke (IS) is a major cause of death and disability.
- Microglia are crucial for neuronal survival and neuroplasticity post-IS.
- The role of Platelet Activating Factor Receptor (PTAFR) in IS pathogenesis is unclear.
Purpose of the Study:
- Investigate PTAFR's role in microglia/macrophage phagocytosis of neurons in IS.
- Identify novel therapeutic targets for IS treatment.
Main Methods:
- Assessed PTAFR expression in an IS mouse model.
- Examined PTAFR's role in microglia-neuron interactions and phagocytosis.
- Investigated PTAFR's nuclear translocation mechanism involving SP1 and MFGE8.
- Compared therapeutic effects of PTAFR antagonists (Ginkgolide B vs. Apafant).
Main Results:
- PTAFR expression increased post-IS, peaking on day 5.
- PTAFR mediates microglia/macrophage interaction with neurons.
- Nuclear PTAFR promotes phagocytosis of stressed neurons via SP1/MFGE8 pathway.
- Apafant, a permeable PTAFR antagonist, improved neurological recovery by inhibiting nuclear translocation.
Conclusions:
- Nuclear PTAFR promotes microglia/macrophage phagocytosis of stressed neurons in IS.
- Targeting nuclear PTAFR translocation offers a promising therapeutic strategy for IS.
- Apafant demonstrates potential for enhancing neurological recovery in IS.

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