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Research Article | Open Access

Mechanism of ribonucleic acid-binding protein ILF2 in promoting diabetic foot ulcer wound healing via regulating the nucleophosmin 1/NF-κB axis

Hua Ji1,2,‡, Ying Tang1,2,‡, Chenfan Zhang1,2, Yinguang Jia1,2, Murong Xu1,2, Xiaotong Zhao1,2, Mingwei Chen1,2 ( )
Department of Endocrinology, The First Affiliated Hospital of Anhui Medical University, Shushan District, 218 Jixi Road, Hefei, Anhui, 230022, China
Institute of Endocrinology and Metabolism, Anhui Medical University, No. 81 Meishan Road, Shushan District, Hefei, Anhui, 230032, China

‡Hua Ji and Ying Tang contributed equally.

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Highlights

• The ribonucleic acid-binding protein interleukin enhancer-binding factor 2 (ILF2) is significantly downregulated in fibroblasts from diabetic foot ulcer tissues.

• ILF2 promotes the degradation of nucleophosmin 1 (NPM1) mRNA by directly binding to it, thereby inhibiting NF-κB signaling and the senescence-associated secretory phenotype.

• Restoring ILF2 expression accelerates diabetic wound healing by targeting the NPM1/NF-κB axis to alleviate inflammatory senescence.

Abstract

Background

Diabetic foot ulcer (DFU) is a severe diabetic complication characterized by impaired healing, often involving fibroblast senescence and the senescence-associated secretory phenotype (SASP). The role of ribonucleic acid (RNA)-binding proteins (RBPs) in this process remains undefined. This study investigates the function and mechanism of the RBP interleukin enhancer-binding factor 2 (ILF2) in DFU pathogenesis.

Methods

Differentially expressed RBPs were identified via bioinformatics analysis of public single-cell and bulk transcriptomic datasets. ILF2 downregulation was subsequently validated in clinical DFU samples and diabetic mouse models. Functional assays in high-glucose (HG)-treated fibroblasts evaluated proliferation, migration, and SASP. Mechanistically, RNA sequencing, RNA-binding protein immunoprecipitation, and RNA pull-down assays identified downstream targets, while co-IP and rescue experiments verified the NPM1/NF-κB axis. Finally, a diabetic mouse model was used to study the effects of ILF2 overexpression/knockdown and NPM1 knockdown on wound healing.

Results

Bioinformatics analysis identified ILF2 as significantly downregulated in DFU. This reduction was consistently validated in DFU patient tissues, diabetic mouse wounds, and HG-treated fibroblasts. Functionally, ILF2 overexpression promoted fibroblast proliferation and migration while suppressing SASP, whereas knockdown exacerbated senescence. Mechanistically, ILF2 directly bound to nucleophosmin (NPM1) mRNA to promote its degradation. ILF2 deficiency led to aberrant NPM1 accumulation, enhancing the NPM1–phospho-p65 interaction and NF-κB pathway activation. Rescue experiments confirmed that NPM1 knockdown reversed ILF2 deficiency-induced cellular dysfunction. Crucially, these findings were validated in primary fibroblasts isolated from DFU patients. In vivo, ILF2 overexpression accelerated wound healing, while knockdown delayed the process. Furthermore, NPM1 knockdown effectively ameliorated the impaired healing phenotype and reduced SASP levels.

Conclusions

This study elucidates a novel ILF2–NPM1–NF-κB regulatory axis. ILF2 acts as a critical suppressor of inflammatory senescence by destabilizing NPM1 mRNA, highlighting its potential as a therapeutic target for DFU treatment.

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References

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Burns & Trauma
Article number: tkag021

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Cite this article:
Ji H, Tang Y, Zhang C, et al. Mechanism of ribonucleic acid-binding protein ILF2 in promoting diabetic foot ulcer wound healing via regulating the nucleophosmin 1/NF-κB axis. Burns & Trauma, 2026, 14(3): tkag021. https://doi.org/10.1093/burnst/tkag021

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Received: 30 September 2025
Revised: 11 March 2026
Accepted: 13 March 2026
Published: 17 March 2026
© The Author(s) 2026. Published by Oxford University Press.

This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.