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Fosl2/c-Jun dimer induces oxidative stress and endoplasmic reticulum stress by enhancing Lcn2 transcription to promote ischemic cerebral infarction.

Jul 2026 · Biochimica et Biophysica Acta - General Subjects · pp. 130984 · 0 citations · 37 references
Medicine

Abstract

Objective

Ischemic cerebral infarction (ICI) results in high disability and mortality rates. This study aims to validate that the Fosl2/c-Jun dimer promotes ICI via the transcriptional activation of Lcn2.

Methods

Differentially expressed genes were identified and screened in the microvasculature of sham-operated and transient middle cerebral artery occlusion/reperfusion (tMCAO/R) mouse brains through bioinformatics analysis. Mouse models were established via tMCAO/R surgery, while mouse brain-derived Endothelial cells.3 (bEnd.3) were exposed to oxygen-glucose deprivation/reoxygenation (OGD/R). Fosl2 and c-Jun expression levels were detected, and their interaction was validated. Knockdown of Fosl2 or c-Jun was performed in tMCAO/R mice and bEnd.3 cells, followed by detection of AP-1 transcriptional activity, oxidative stress levels, infarct extent, blood-brain barrier integrity, and endoplasmic reticulum stress (ERS)-related proteins. The downstream target of Fosl2 was predicted using bioinformatics databases. Lcn2 expression was detected via RT-qPCR and Western blot. The transcriptional regulatory relationship was validated through dual-luciferase and ChIP assays.

Results

Fosl2, c-Jun, and Lcn2 were highly expressed in mouse and cell models of ICI. Fosl2 interacted with c-Jun, and the Fosl2/c-Jun dimer transcriptionally activated Lcn2 by binding to its promoter. Fosl2 or c-Jun knockdown reduced cerebral infarction volume, alleviated blood-brain barrier injury, and suppressed oxidative stress and ERS. Overexpression of Lcn2 partially attenuated the suppressive effects of Fosl2 or c-Jun knockdown.

Conclusion

Fosl2/c-Jun dimer induces Lcn2 transcription activation to promote oxidative stress and ERS, thereby contributing to ICI. This study reveals a potential mechanism for the clinical treatment of ICI.

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