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PYNOD reduces microglial inflammation and consequent neurotoxicity upon lipopolysaccharides stimulation
Qi Zeng1, Chaofeng Hu2, Renbin Qi2
1Department of Ultrasonic Diagnosis, The First Affiliated Hospital of Gannan Medical College, Ganzhou, Jiangxi 341000, P.R. China.
Abstract:
PYNOD, a nod-like receptors (NLR)-like protein, was indicated to inhibit NF-κB activation, caspase-1-mediated interleukin (IL)-1β release and cell apoptosis in a dose-dependent manner. Exogenous addition of recombinant PYNOD to mixed glial cultures may suppress caspase-1 activation and IL-1β secretion induced by Aβ. However, to the best of our knowledge, there no study has focused on the immunoregulatory effects of PYNOD specifically in microglia. The present study aimed to explore the roles of PYNOD involved in the lipopolysaccharides (LPS)-induced microglial inflammation and consequent neurotoxicity. Murine microglial BV-2 cells were transfected with pEGFP-C2-PYNOD (0-5.0 µg/ml) for 24 h and incubated with or without LPS (1 µg/ml) for a further 24 h. Cell viability was determined using MTT assay and the secretion of nitric oxide (NO), IL-1β and caspase-1 was measured using the Griess method or ELISA. Protein expression levels of NF-κB p65 and inducible nitric oxide synthase (iNOS) were detected by immunofluorescent staining and/or western blot analysis. Co-culture of BV-2 cells with human neuroblastoma cell line SK-N-SH was performed in Transwell plates and the cell viability and apoptosis (using flow cytometry) of SK-N-SH cells were determined. Results indicated that PYNOD overexpression inhibited NO secretion and iNOS protein expression induced by LPS in BV-2 cells, with no detectable cytotoxicity. PYNOD overexpression also reduced the secretion of IL-1β and caspase-1 from BV-2 cells upon LPS stimulation. These effects were dose-dependent. Additionally, PYNOD overexpression prevented LPS-induced nuclear translocation of NF-κB p65 in BV-2 cells. The growth-inhibitory and apoptosis-promoting effects of BV-2 cells towards SK-N-SH cells were alleviated as a result of PYNOD overexpression. In conclusion, PYNOD may mitigate microglial inflammation and consequent neurotoxicity.
Insights
PYNOD protein suppresses microglial inflammation by inhibiting nitric oxide, IL-1β, and caspase-1 release, thereby reducing neurotoxicity. This study highlights PYNOD
Area of Science:
- Neuroimmunology
- Molecular Biology
- Cell Biology
Background:
- Nod-like receptors (NLRs) play critical roles in inflammatory responses.
- PYNOD, an NLR-like protein, has shown inhibitory effects on NF-κB activation and inflammatory mediator release.
- The specific role of PYNOD in microglial inflammation remains largely unexplored.
Purpose of the Study:
- To investigate the immunoregulatory effects of PYNOD in lipopolysaccharides (LPS)-induced microglial inflammation.
- To determine PYNOD's impact on neurotoxicity mediated by activated microglia.
- To elucidate the molecular mechanisms underlying PYNOD's function in microglia.
Main Methods:
- Murine microglial BV-2 cells were transfected with PYNOD.
- Cells were stimulated with LPS to induce inflammation.
- Assays included MTT for cell viability, Griess/ELISA for NO, IL-1β, and caspase-1.
- Western blot and immunofluorescence were used to detect NF-κB p65 and iNOS.
- Co-culture experiments with SK-N-SH cells assessed neurotoxicity.
Main Results:
- PYNOD overexpression significantly inhibited LPS-induced nitric oxide (NO) secretion and inducible nitric oxide synthase (iNOS) expression in BV-2 cells.
- PYNOD reduced the release of interleukin-1β (IL-1β) and caspase-1 in response to LPS stimulation.
- PYNOD prevented the nuclear translocation of NF-κB p65, a key inflammatory transcription factor.
- PYNOD overexpression alleviated the neurotoxic effects of activated microglia on neuronal cells (SK-N-SH).
- These effects were observed in a dose-dependent manner without significant cytotoxicity.
Conclusions:
- PYNOD acts as a negative regulator of microglial inflammatory responses.
- PYNOD mitigates LPS-induced microglial activation and subsequent neurotoxicity.
- PYNOD represents a potential therapeutic target for neuroinflammatory diseases.
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