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Updated: Jan 23, 2026

A Pipeline to Investigate the Structures and Signaling Pathways of Sphingosine 1-Phosphate Receptors
Published on: June 8, 2022
Neural sphingosine 1-phosphate accumulation activates microglia and links impaired autophagy and inflammation
Indulekha Karunakaran1,2, Shah Alam1, Surendar Jayagopi2
1LIMES Institute, Membrane Biology & Lipid Biochemistry, University of Bonn, Germany.
Abstract:
Microglia mediated responses to neuronal damage in the form of neuroinflammation is a common thread propagating neuropathology. In this study, we investigated the microglial alterations occurring as a result of sphingosine 1-phosphate (S1P) accumulation in neural cells. We evidenced increased microglial activation in the brains of neural S1P-lyase (SGPL1) ablated mice (SGPL1fl/fl/Nes ) as shown by an activated and deramified morphology and increased activation markers on microglia. In addition, an increase of pro-inflammatory cytokines in sorted and primary cultured microglia generated from SGPL1 deficient mice was noticed. Further, we assessed autophagy, one of the major mechanisms in the brain that keeps inflammation in check. Indeed, microglial inflammation was accompanied by defective microglial autophagy in SGPL1 ablated mice. Rescuing autophagy by treatment with rapamycin was sufficient to decrease interleukin 6 (IL-6) but not tumor necrosis factor (TNF) secretion in cultured microglia. Rapamycin mediated decrease of IL-6 secretion suggests a particular mechanistic target of rapamycin (mTOR)-IL-6 link and appeared to be microglia specific. Using pharmacological inhibitors of the major receptors of S1P expressed in the microglia, we identified S1P receptor 2 (S1PR2) as the mediator of both impaired autophagy and proinflammatory effects. In line with these results, the addition of exogenous S1P to BV2 microglial cells showed similar effects as those observed in the genetic knock out of SGPL1 in the neural cells. In summary, we show a novel role of the S1P-S1PR2 axis in the microglia of mice with neural-targeted SGPL1 ablation and in BV2 microglial cell line exogenously treated with S1P.
Insights
Sphingosine 1-phosphate (S1P) accumulation in neural cells drives neuroinflammation by impairing microglial autophagy via S1P receptor 2 (S1PR2). Restoring autophagy partially reduces pro-inflammatory cytokine release.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Neuroinflammation, driven by microglia, exacerbates neuropathology.
- Sphingosine 1-phosphate (S1P) signaling is implicated in neural processes.
Purpose of the Study:
- To investigate microglial alterations due to S1P accumulation in neural cells.
- To elucidate the role of S1P in microglial activation, autophagy, and inflammation.
Main Methods:
- Utilized neural S1P-lyase (SGPL1) ablated mice (SGPL1fl/fl/Nes) to study S1P accumulation.
- Analyzed microglial morphology, activation markers, cytokine production, and autophagy.
- Employed rapamycin to rescue autophagy and S1P receptor inhibitors to identify mediating receptors.
Main Results:
- SGPL1 ablation led to increased microglial activation, pro-inflammatory cytokine release, and defective autophagy.
- Rapamycin treatment partially reduced IL-6 secretion, suggesting an mTOR-IL-6 link.
- S1P receptor 2 (S1PR2) was identified as the key mediator of impaired autophagy and inflammation.
Conclusions:
- The S1P-S1PR2 axis plays a critical role in modulating microglial responses in neural SGPL1 ablation.
- Defective microglial autophagy contributes to neuroinflammation.
- Targeting S1PR2 may offer therapeutic strategies for neuroinflammatory conditions.
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