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Mol Med ; 28(1): 9, 2022 01 28.
Article in English | MEDLINE | ID: mdl-35090386

ABSTRACT

BACKGROUND: Sepsis is a troublesome syndrome that can cause intestinal injury and even high mortality rates. Omega-3 fatty acids (FAs) are known to protect against intestinal damage. Accordingly, the current study set out to explore if omega-3 FAs could affect sepsis-induced intestinal injury with the involvement of the microRNA (miR)-1-3p/Notch3-Smad axis. METHODS: First, cecal ligation and perforation (CLP) was performed to establish septic mouse models in C57BL/6J mice, and mouse intestinal epithelial MODE-K cells were induced by lipopolysaccharide (LPS) to establish sepsis cell models. The CLP-induced septic mice or LPS-exposed cells were subjected to treatment with Omega-3 FAs and activin (Smad signaling activator), miR-1-3p inhibitor and over-expressed/short hairpin RNA (oe-/sh)-Notch3 to explore their roles in inflammation, intestinal oxidative stress and cell apoptosis. A dual-luciferase reporter gene assay was further performed to verify the regulatory relationship between miR-1-3p and Notch3. RESULTS: Omega-3 FAs inhibited CLP-induced intestinal injury and ameliorated LPS-induced intestinal epithelial cell injury by down-regulating miR-1-3p, as evidenced by decreased levels of tumor necrosis factor-α, interleukin-1ß (IL-1ß) and IL-6, in addition to diminished levels of reactive oxygen species, malondialdehyde levels and superoxide dismutase activity. Furthermore, miR-1-3p could down-regulate Notch3, which inactivated the Smad pathway. CONCLUSION: Collectively, our findings indicated that omega-3 FAs elevate the expression of Notch3 by down-regulating miR-1-3p, and then blocking the Smad pathway to alleviate intestinal epithelial inflammation and oxidative stress injury caused by sepsis.


Subject(s)
Fatty Acids, Omega-3/metabolism , Gene Expression Regulation , Intestinal Diseases/etiology , Intestinal Diseases/metabolism , MicroRNAs/genetics , Receptor, Notch3/genetics , Sepsis/complications , Animals , Biomarkers , Disease Management , Disease Models, Animal , Disease Susceptibility , Gene Expression Profiling , Intestinal Diseases/diagnosis , Intestinal Diseases/therapy , Intestinal Mucosa/metabolism , Intestinal Mucosa/pathology , Mice , Models, Biological , Oxidative Stress , Receptor, Notch3/metabolism , Sepsis/etiology , Signal Transduction , Smad Proteins
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