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Updated: Jan 29, 2026

Creation and Transplantation of an Adipose-derived Stem Cell ASC Sheet in a Diabetic Wound-healing Model
Published on: August 4, 2017
TAK1 activates PANoptosis through the NF-κB signalling pathway to delay diabetic wound healing
Xiaoxiang Wang1,2,3, Sitong Zhou4, Yixun Zhang1,2
1Department of Burn and Plastic Surgery, Guangzhou First People's Hospital, No. 1 Panfu Road, Yuexiu District, Guangzhou, Guangdong Province, 510180, China.
Background:
PANoptosis is a comprehensive form of cell death regulation that involves the interplay of pyroptosis, apoptosis, and necrosis. As a key regulator of PANoptosis, TAK1 plays a crucial role in multiple cell death pathways. However, its specific mechanism in the process of diabetic wound (DW) healing remains unclear. This study aimed to explore the role of TAK1 in regulating PANoptosis and its impact on DW healing.
Methods:
We used immunofluorescence, TUNEL staining, and EthD-III staining to analyse the relationship between TAK1 activity and PANoptosis. RNA sequencing was used to investigate the regulatory role of TAK1 and the NF-κB pathway under high-glucose conditions. Additionally, molecular docking and coimmunoprecipitation experiments were performed to verify the interaction between TAK1 and p65. Finally, a mouse model was used to study the effects of TAK1 knockdown on wound healing.
Results:
Our findings revealed that PANoptosis is significantly present in DW, with markedly upregulated TAK1 expression under high-glucose conditions. The inhibition of TAK1 expression significantly reduced cell death and promoted cell proliferation and migration. Mechanistically, TAK1 interacts with p65 through the NF-κB pathway, activating downstream signals that exacerbate cell damage in a high-glucose environment. TAK1 knockdown significantly suppressed PANoptosis, promoted microvascular and collagen formation, reduced inflammation, and further accelerated wound healing.
Conclusion:
TAK1 regulates PANoptosis by activating the NF-κB signalling pathway, thereby playing a crucial role in DW healing. Inhibiting TAK1 may represent a potential strategy to improve wound healing, with significant potential for clinical application.
Insights
Transforming growth factor-beta 1 (TGF-β1) is a key regulator of wound healing. This study investigated the role of TGF-β1 in diabetic wound (DW) healing and its impact on extracellular matrix (ECM) deposition. Findings suggest TGF-β1 may be a therapeutic target for improving DW healing.
Area of Science:
- Cell Biology
- Molecular Biology
- Wound Healing Research
Background:
- PANoptosis, a cell death pathway, involves pyroptosis, apoptosis, and necrosis.
- TAK1 is a key regulator of PANoptosis but its role in diabetic wound healing is unknown.
Purpose of the Study:
- To explore TAK1's role in regulating PANoptosis during diabetic wound healing.
- To investigate TAK1's mechanism in high-glucose conditions and its impact on wound repair.
Main Methods:
- Immunofluorescence, TUNEL, and EthD-III staining to assess PANoptosis and TAK1 activity.
- RNA sequencing to analyze TAK1 and NF-κB pathway regulation under high glucose.
- Molecular docking, co-immunoprecipitation, and mouse models to validate TAK1 interactions and effects on wound healing.
Main Results:
- PANoptosis and TAK1 expression are upregulated in diabetic wounds under high glucose.
- TAK1 inhibition reduced cell death, enhanced proliferation and migration.
- TAK1 interacts with p65 via the NF-κB pathway, exacerbating high-glucose-induced cell damage.
- TAK1 knockdown suppressed PANoptosis, improved microvascular/collagen formation, reduced inflammation, and accelerated healing.
Conclusions:
- TAK1 regulates PANoptosis via the NF-κB pathway, critically impacting diabetic wound healing.
- Targeting TAK1 inhibition offers a potential therapeutic strategy for enhancing wound healing with clinical applicability.
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