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Glycine attenuates sepsis-induced white matter injury by modulating gut microbiota
Jingfei Liu1, Li Zhang2, Chunyang Feng1
1Department of Neonatology, The First Affiliated Hospital of Dalian Medical University, Dalian, China.
Insights
Glycine treatment improved gut health and reduced inflammation in mice with sepsis-induced white matter injury (WMI). This suggests glycine is a promising therapy for preventing and treating WMI in infants.
Area of Science:
- Neuroscience
- Microbiology
- Immunology
Background:
- Sepsis is a major cause of white matter injury (WMI) in preterm infants.
- Gut microbiota dysbiosis is linked to sepsis-induced inflammation and neurological damage.
Purpose of the Study:
- To investigate the therapeutic potential of glycine in a mouse model of sepsis-induced WMI.
- To explore glycine's effects on gut microbiota, inflammation, and brain pathology.
Main Methods:
- Mice with LPS-induced sepsis were treated with glycine.
- HE staining, 16S rRNA gene sequencing, ELISA, transcriptomic profiling, IHC, and Western blotting were used.
- Pathological changes, gut microbiota, cytokine levels, gene expression, and protein levels were analyzed.
Main Results:
- Glycine alleviated intestinal dysbiosis and restored intestinal tight junction proteins.
- Glycine reduced pro-inflammatory cytokines in ileal and brain tissues.
- Glycine attenuated microglial activation, preserved myelin, and downregulated C5aR1 expression in the brain.
Conclusions:
- Glycine shows promise for preventing and treating sepsis-associated WMI.
- Targeting the C5aR1-mediated complement pathway may be a novel therapeutic approach for neuroinflammation and WMI.
Abstract:
Sepsis poses a significant threat to preterm infants and is a leading cause of white matter injury (WMI); however, effective therapeutic strategies remain limited. Recent studies suggest that gut microbiota dysbiosis contributes to sepsis-induced systemic inflammation and neurological damage. After treating mice with LPS-induced sepsis with glycine, we evaluated pathological changes in the brain and ileum by HE staining and analyzed gut microbiota composition by 16S rRNA gene sequencing. Inflammatory cytokine levels in brain and ileal tissues were quantified by ELISA. Transcriptomic profiling was performed to identify differentially expressed genes and enriched pathways in the brains of septic mice with WMI. Additionally, protein expression levels of occludin, Iba-1, BMP, and C5aR1 were assessed by IHC and Western blotting. The study demonstrates that sepsis induces WMI. Glycine alleviated intestinal dysbiosis, restored the expression and function of intestinal tight junction proteins, and reduced pro-inflammatory cytokine levels in both ileal and brain tissues. Moreover, glycine attenuated microglial activation, as evidenced by decreased Iba-1 expression, and preserved myelin integrity by preventing the loss of MBP in the brain. Transcriptomic analysis revealed significant upregulation of C5aR1 in brain tissue associated with sepsis-induced WMI. Collectively, these findings indicate that glycine represents a promising therapeutic strategy for the prevention and treatment of sepsis-associated WMI, and that targeting the C5aR1-mediated complement pathway may offer a novel approach to mitigate neuroinflammation and white matter damage.
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