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Research Article | Open Access

Flufenamic acid inhibits pyroptosis in ischemic flaps via the AMPK-TRPML1-Calcineurin signaling pathway

Liang Chen1,2,3,‡, Ningning Yang1,2,3,‡, Kongbin Chen1,2,3,‡, Yingying Huang1,2,3,‡, Xian Liu1,2,3, Gaoxiang Yu4, Fulin Wang1,2,3, Yong Gou1,2,3, Yi Wang1,2,3, Xiaolang Lu1, Yuqi Wang5, Lipeng Zhu6, Weiyang Gao1,2,3 ( ), Jian Ding1,2,3 ( )
Department of Orthopaedics, The Second Affiliated Hospital and Yuying Children’s Hospital of Wenzhou Medical University, No. 109 WestXueyuan Road, Lucheng District, Wenzhou 325027, China
Zhejiang Provincial Key Laboratory of Orthopaedics, No. 109 WestXueyuan Road, Lucheng District, Wenzhou 325027, China
The Second Clinical Medical College of Wenzhou Medical University, No. 109 WestXueyuan Road, Lucheng District, Wenzhou 325027, China
Department of Hand Surgery, Ningbo Sixth Hospital, No. 1059 Zhongshan East Road, Jiangdong District, Ningbo 315042, China
School of nursing, Wenzhou medical university, No. 109 WestXueyuan Road, Lucheng District, Wenzhou 325027, China
The Fifth Affiliated Hospital of Zhengzhou University, No. 3 Kangfu Front Street, Zhengzhou 450015, China

‡Liang Chen, Ningning Yang, Kongbin Chen, and Yingying Huang are co-first authors who equally contributed to this manuscript.

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Highlights

• Flufenamic acid (FFA) enhances autophagy and reduces OS via TFE3, thereby inhibiting pyroptosis.

• FFA modulates TFE3 via the AMPK-TRPML1-Calcineurin pathway.

• FFA is one potential medication as a treatment for ischemic flaps.

Abstract

Background

Ischemic injury is a primary cause of distal flap necrosis. Previous studies have shown that Flufenamic acid (FFA) can reduce inflammation, decrease oxidative stress (OS), and promote angiogenesis, suggesting its potential role in protecting flaps from ischemic damage. This study investigated the effects and mechanisms of FFA in enhancing the survival of ischemic flaps.

Methods

The viability of ischemic flaps was evaluated using laser doppler blood flow (LDBF) and survival rates. We examined levels of pyroptosis, OS, transcription factor E3 (TFE3)-induced autophagy, and elements of the AMPK-TRPML1-Calcineurin pathway through western blotting (WB), immunofluorescence, molecular docking, cellular thermal shift assay (CETSA) and surface plasmon resonance.

Results

The findings suggest that FFA significantly enhances the viability of ischemic flaps. The improvement in flap survival associated with FFA can be attributed to increased autophagy, diminished OS, and the suppression of pyroptosis. Notably, the promotion of autophagy flux and an augmented resistance to OS are instrumental in curbing pyroptosis in these flaps. Activation of TFE3 by FFA promoted autophagy and diminished oxidative damage. The therapeutic effects of FFA were negated when TFE3 levels were decreased using adeno-associated virus (AAV)-TFE3shRNA. Additionally, FFA modified TFE3 activity through the AMPK-TRPML1-Calcineurin pathway.

Conclusions

FFA promotes ischemic flap survival via induction of autophagy and suppression of OS by activation of the AMPK-TRPML1-Calcineurin-TFE3 signaling pathway. These findings could have therapeutic implications.

Graphical Abstract

References

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Burns & Trauma
Article number: tkaf007

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Cite this article:
Chen L, Yang N, Chen K, et al. Flufenamic acid inhibits pyroptosis in ischemic flaps via the AMPK-TRPML1-Calcineurin signaling pathway. Burns & Trauma, 2025, 13(7): tkaf007. https://doi.org/10.1093/burnst/tkaf007

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Received: 05 June 2024
Revised: 14 January 2025
Accepted: 20 January 2025
Published: 10 October 2026
© The Author(s) 2025. 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.