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Research Article | Open Access

MiR-23b-3p ameliorates sepsis-induced acute lung injury by inhibiting SMAD3-mediated endothelial-mesenchymal transition

Luofeng Jiang1,2,‡, Wei Zhang1,2,‡, Heng He1,2,‡, Xirui Tong1, Futing Shu1, Jiezhi Lin1,3, Lu Yang1, Hongchao Huang1, Wenzhang Liu1, Tianyi Liu1, Yingying Liu1, Pengfei Luo1, Yongjun Zheng1( ), Zhaofan Xia1,2 ( )
Department of Burn Surgery, the First Affiliated Hospital of Naval Medical University, 168th Changhai Road, Yangpu District, Shanghai 200433, China
Research Unit of Key Techniques for Treatment of Burns and Combined Burns and Trauma Injury, Chinese Academy of Medical Sciences, 168th Changhai Road, Yangpu District, Shanghai 200433, China
Department of Burn Surgery, The 963rd Hospital of Joint Logistics Support Force of PLA, 361th Zhongshan Road, Qianjin District, Jiamusi, Heilongjiang 154007, China

‡Luofeng Jiang, Wei Zhang, and Heng He contributed equally to this work.

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Highlights

• Mechanistic elucidation of SMAD3-dependent EndoMT suppression and barrier restoration via junctional protein stabilization.

• Preclinical validation of miRNA-based intervention for sepsis-associated ALI across in vitro and in vivo models.

• Identification of SMAD3 as a translational biomarker for endothelial dysfunction stratification.

Abstract

Background

Sepsis-associated acute lung injury (ALI) is driven by endothelial barrier dysfunction and endothelial–mesenchymal transition (EndoMT), mediated by TGF-β1/SMAD3 signaling. Despite the therapeutic potential of SMAD3, current inhibitors face limitations. As endogenous small molecules that are closely related to physiological regulatory processes, microRNAs (miRNAs) have more potential research value for regulating SMAD3. Therefore, this study aimed to investigate the protective effect and molecular mechanism of a key miRNA targeting SMAD3 in sepsis-ALI.

Methods

Screening multiple databases revealed that miR-23b-3p was the sole miRNA targeting SMAD3. Lipopolysaccharide (LPS)-stimulated human umbilical vein endothelial cells (HUVECs) and cecal ligation/puncture (CLP) mice were used to model sepsis. Lentivirus was used to construct stable strains. The functional performance and mechanism were verified by key techniques, including dual-luciferase assays, rescue experiments, reverse transcription–quantitative polymerase chain reaction (qPCR)/Western blotting, monocyte adhesion/permeability assays, and histopathology.

Results

In LPS-stimulated HUVECs, miR-23b-3p downregulation correlated with TGF-β1/SMAD3 activation, EndoMT progression, and barrier disruption. miR-23b-3p overexpression reversed these effects by restoring the expression of junctional proteins and suppressing the expression of mesenchymal markers. Chromatin isolation by RNA purification–qPCR, RNA pull-down, and dual-luciferase assays confirmed the direct miR-23b-3p–SMAD3 3′UTR interaction. Rescue experiments demonstrated that miR-23b-3p counteracts TGF-β1/SMAD3 hyperactivation. In CLP mice, intratracheal agomiR-23b-3p attenuated lung injury, normalized alveolar architecture, and reduced vascular leakage by suppressing endothelial Smad3 upregulation.

Conclusion

miR-23b-3p is a SMAD3-targeting regulator that inhibits EndoMT and repairs endothelial barrier integrity. Mechanistically, miR-23b-3p preserves endothelial homeostasis via SMAD3-dependent EndoMT inhibition. This study provides mechanistic insights and a miRNA-based therapeutic strategy for sepsis-induced ALI.

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References

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Burns & Trauma
Article number: tkaf062

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Cite this article:
Jiang L, Zhang W, He H, et al. MiR-23b-3p ameliorates sepsis-induced acute lung injury by inhibiting SMAD3-mediated endothelial-mesenchymal transition. Burns & Trauma, 2025, 13(1): tkaf062. https://doi.org/10.1093/burnst/tkaf062

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Received: 25 March 2025
Revised: 28 August 2025
Accepted: 01 September 2025
Published: 09 September 2025
© The Author(s) 2025. Published by Oxford University Press.

This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact reprints@oup.com for reprints and translation rights for reprints. All other permissions can be obtained through our RightsLink service via the Permissions link on the article page on our site—for further information please contact journals.permissions@oup.com.