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Induction of Murine Intestinal Inflammation by Adoptive Transfer of Effector CD4+CD45RBhigh T Cells into Immunodeficient Mice
Published on: April 21, 2015
Loss of QKI in macrophage aggravates inflammatory bowel disease through amplified ROS signaling and microbiota
Wenwen Wang1, Dongsheng Zhai2, Yongquan Bai1
1PLA Institute of State Key Laboratory of Cancer Biology, Department of Biopharmaceutics, Air Force Medical University, No. 17, Changle West Road, Xincheng District, Xi'an, Shaanxi Province, China.
Abstract:
Inflammatory bowel disease (IBD) is a refractory chronic inflammatory illness of the gastrointestinal (GI) tract. Macrophage exerts an important role in IBD development. QKI, as an RNA binding protein, was related with inflammatory responses in bacterial infections by regulating the polarization of macrophages. Therefore, we suspected that QKI-regulated macrophages have the potential to play a certain role in IBD and the underlying mechanism. Our results demonstrated that the mice with macrophage-specific deletion of QKI induced with dextran sodium sulfate (DSS) are more susceptible to IBD development, exhibited a severe leaky gut barrier phenotype and higher intense oxidative stress, which are rescued by treating with butylated hydroxyanisole (BHA), an agonist of NRF2. Mechanically, we observed that Keap1 mRNA in the nucleus was exported to the cytoplasm after LPS stimuli in parallel with QKI reductions, and the removal of QKI by shRNA facilitated Keap1 mRNA nuclear exporting and expression in cytoplasm, consequently NRF2 activation in nucleus was weakened, and led to the impaired antioxidant abilities. In addition, mice models of fecal microbiota transplant (FMT) and the co-culturing of mice epithelia cells with feces derived from the DSS-treated QKI-deficit mice revealed consistently aggravated colitis along with a severe oxidative stress; 16S sequencing analysis substantiated the altered compositions of commensal bacteria too. Overall, the current study represents the first effort to explore the anti-oxidant role of QKI in the intestinal macrophage via post-transcriptional regulation of Keap1 mRNA localization and the relevant NRF2 antioxidant signaling, and the disproportional changes in the microbiota were attributable to the mediation of pathogenic damage in the IBD development of QKI-deficit mice.
Insights
QKI protein deficiency in macrophages worsens inflammatory bowel disease (IBD) by impairing antioxidant defenses and altering gut microbiota. Restoring antioxidant pathways may help treat IBD.
Area of Science:
- Gastroenterology
- Immunology
- Molecular Biology
Background:
- Inflammatory bowel disease (IBD) is a chronic gastrointestinal disorder where macrophages play a key role.
- The RNA binding protein QKI influences macrophage polarization and inflammatory responses.
- Understanding QKI's role in intestinal macrophages is crucial for IBD pathogenesis.
Purpose of the Study:
- To investigate the role of QKI in intestinal macrophages during IBD development.
- To elucidate the molecular mechanisms by which QKI affects oxidative stress and gut barrier function.
- To explore the impact of QKI deficiency on gut microbiota composition in IBD.
Main Methods:
- Mice with macrophage-specific QKI deletion were induced with dextran sodium sulfate (DSS) to model IBD.
- Butylated hydroxyanisole (BHA), an NRF2 agonist, was used for treatment.
- Keap1 mRNA localization, NRF2 activation, and oxidative stress markers were analyzed.
- Fecal microbiota transplantation (FMT) and co-culture models were employed.
- 16S rRNA sequencing was used to analyze gut microbiota composition.
Main Results:
- Macrophage-specific QKI deletion exacerbated DSS-induced colitis, leading to leaky gut and increased oxidative stress.
- Treatment with BHA rescued the IBD phenotype.
- QKI deficiency facilitated Keap1 mRNA export from the nucleus, weakening NRF2 activation and antioxidant capacity.
- FMT and co-culture models showed aggravated colitis and oxidative stress in QKI-deficient mice.
- Significant alterations in gut microbiota composition were observed.
Conclusions:
- QKI acts as an antioxidant in intestinal macrophages by post-transcriptionally regulating Keap1 mRNA localization and NRF2 signaling.
- QKI deficiency contributes to IBD pathogenesis through impaired antioxidant defense and gut dysbiosis.
- Targeting QKI or NRF2 pathways may offer therapeutic strategies for IBD.
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