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Review | Open Access

Mitochondrion-targeted therapies for diabetic wound healing: from mechanism to therapeutic opportunity

Qipeng Wu1,‡, Fei Xiao2,‡, Han Wang3,4, Yuan Xiong5 ( ), Bobin Mi1( )
Department of Orthopedics, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, No. 1277 Jiefang Avenue, Wuhan 430022, China
Department of Orthopaedics, Wuhan Fourth Hospital, No. 473 Hanzheng Street, Wuhan 430033, China
Department of Anesthesiology, Peking University People’s Hospital, No. 7 Jinsheng First Road, Qingdao 266000, China
Department of Anesthesiology, Women and Children’s Hospital, Qingdao University, No. 217 Liaoyang West Road, Qingdao 266000, China
Department of Orthopedics, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology, No. 1095 Jiefang Avenue, Wuhan 430030, China

‡Qipeng Wu and Fei Xiao equally contributed to this work.

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Highlights

• Diabetic wound chronicity arises, at least in part, from the convergent failure of mitochondrial bioenergetics, redox regulation, and quality control surveillance—a triad of dysfunction that positions mitochondrial impairment as an upstream determinant of compromised tissue repair rather than an epiphenomenal consequence of the hyperglycemic milieu.

• Tunneling nanotubes, extracellular vesicles, gap junctions, cell fusion-mediated conduits, and cell fusion collectively constitute a phylogenetically conserved intercellular mitochondrial transfer axis, the activation of which restores recipient cell bioenergetic sufficiency and immunometabolic equilibrium, thereby providing a unifying mechanistic bridge between organelle-level biology and the broader imperatives of tissue regeneration.

• Bioresponsive hydrogels, nanozyme-enabled platforms, and extracellular vesicle-integrated delivery systems have been developed to potentiate endogenous mitochondrial rescue; however, their clinical translation remains limited by the lack of validated metrics for transfer efficiency, reproducible benchmarks for delivery performance, and clearly defined criteria for assessing long-term mitochondrial integration and sustained functional activity within recipient tissues.

Abstract

Diabetic wounds are a major clinical challenge. They are driven by persistent hyperglycemia and chronic inflammation that synergistically disrupt mitochondrial homeostasis, manifesting as impaired bioenergetics, excessive reactive oxygen species (ROS) accumulation, and dysregulated mitochondrial quality control. Mitochondrial dysfunction critically undermines cellular proliferation, angiogenesis, and immunomodulation, which are essential for effective tissue repair. Intercellular mitochondrial transfer, mediated through tunneling nanotubes (TNTs), extracellular vesicles (EVs), gap junctions (GJs), and cell fusion, has recently emerged as a biologically compelling endogenous rescue mechanism capable of restoring bioenergetic capacity and redox homeostasis in metabolically compromised recipient cells. In this review, we systematically examine the mechanistic basis of mitochondrial dysfunction in the diabetic wound microenvironment, critically evaluate the therapeutic potential of intercellular mitochondrial transfer, and propose an integrated mechanism-to-translational framework coupling transfer-based strategies with bioresponsive and mitochondrion-targeted biomaterials tailored to the pathological wound milieu. Furthermore, we identify key translational barriers—including insufficient protocol standardization, the absence of robust characterization criteria, and a lack of quantitative benchmarks for transfer efficacy—that must be addressed to advance these strategies toward clinical application, thereby offering a conceptual foundation and translational roadmap for mitochondrion-centered regenerative approaches in diabetic wound care.

References

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Burns & Trauma
Article number: tkag018

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Cite this article:
Wu Q, Xiao F, Wang H, et al. Mitochondrion-targeted therapies for diabetic wound healing: from mechanism to therapeutic opportunity. Burns & Trauma, 2026, 14(3): tkag018. https://doi.org/10.1093/burnst/tkag018

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Received: 02 September 2025
Revised: 24 February 2026
Accepted: 25 February 2026
Published: 02 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.