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Long Noncoding RNA GAS5 Contributes to Mycoplasma pneumoniae Pneumonia by Regulating NF-κB via miR-29c/HMGB1 Axis
Juhua Ji1,2, Fei Hong2, Yi Liu3
1Department of Respiratory Diseases, Children's Hospital of Soochow University.
Abstract:
Mycoplasma pneumoniae pneumonia (MPP) poses a major threat to pediatric health. Our previous study suggested that GAS5 level was elevated in the peripheral blood of MPP children. However, the mechanism by which GAS5 regulates lung inflammation Mycoplasma pneumoniae (MP) infection-induced remains unknown. An MPP mouse model was constructed by MP intranasal injection to enrich for alveolar macrophage (AM). Mouse AM was stimulated using lipid-associated membrane proteins (LAMPs) to mimic an in vitro pneumonia model, and transfection was used to achieve specific knockdown or overexpression of target genes. GAS5 level was significantly increased in AM of the MPP mouse model, and significantly and positively related with the mRNA level of HMGB1, but no physical binding between GAS5 and HMGB1 proteins. miR-29c level was significantly decreased in AM of the MPP mouse model and negatively related with the HMGB1. We found the specific binding of GAS5 to miR-29c, and the specific binding of miR-29c to the HMGB1 mRNA 3'UTR. miR-29c mimic and knockdown of HMGB1 both significantly impeded LAMPs-induced apoptosis, IL-6 and TNF-α secretion, and the NF-κB activation. Ectopic expression of GAS5 counteracted the effect of miR-29c mimic, and miR-29c inhibitor counteracted the effect of HMGB1 knockdown. Furthermore, silencing of GAS5 significantly alleviated MPP-induced inflammation and pathological lung injury in the MPP mouse model. GAS5/miR-29c/HMGB1 is highly involved in inflammation and lung histopathological injury in MPP disease progression by regulating the NF-κB signaling pathway.
Insights
GAS5 elevates inflammation in pediatric Mycoplasma pneumoniae pneumonia (MPP) by downregulating miR-29c, which normally inhibits HMGB1. Silencing GAS5 reduces lung injury and inflammation in MPP.
Area of Science:
- Molecular Biology
- Immunology
- Pediatric Respiratory Medicine
Background:
- Mycoplasma pneumoniae pneumonia (MPP) is a significant pediatric health concern.
- Elevated GAS5 levels were previously observed in MPP patients.
- The regulatory mechanism of GAS5 in MP-induced lung inflammation is unclear.
Purpose of the Study:
- To elucidate the role of GAS5 in regulating lung inflammation during Mycoplasma pneumoniae infection.
- To investigate the molecular pathway involving GAS5, miR-29c, and HMGB1 in MPP.
Main Methods:
- Construction of an MPP mouse model via intranasal MP injection.
- In vitro stimulation of mouse alveolar macrophages (AMs) with LAMPs.
- Gene manipulation (knockdown/overexpression) and molecular interaction analyses (RNA-IP, luciferase reporter assays).
Main Results:
- GAS5 was upregulated in AMs from MPP mice and positively correlated with HMGB1 mRNA.
- miR-29c was downregulated in AMs from MPP mice and negatively correlated with HMGB1.
- GAS5 directly binds to miR-29c, and miR-29c targets HMGB1 mRNA, inhibiting apoptosis, IL-6, TNF-α secretion, and NF-κB activation.
- GAS5 overexpression reversed miR-29c mimic effects; miR-29c inhibition reversed HMGB1 knockdown effects.
- GAS5 silencing ameliorated lung inflammation and injury in the MPP mouse model.
Conclusions:
- The GAS5/miR-29c/HMGB1 axis plays a critical role in MPP pathogenesis.
- This pathway regulates inflammation and lung histopathological injury via the NF-κB signaling pathway.
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