AMPK activation eliminates senescent cells in diabetic wound by inducing NCOA4 mediated ferritinophagy
Mengqian Liu1, Xuerong Wei1, Zijun Zheng1
1Department of Burns, Nanfang Hospital, Southern Medical University, Jingxi Street, Guangzhou, 510515, Guangdong, China.
Background:
Diabetic wounds are one of the long-term complications of diabetes, with a disordered microenvironment, diabetic wounds can easily develop into chronic non-healing wounds, which can impose a significant burden on healthcare. In diabetic condition, senescent cells accumulate in the wound area and suppress the wound healing process. AMPK, as a molecule related to metabolism, has a close relationship with aging and diabetes. The purpose of this study was to investigate the effects of AMPK activation on wound healing and explore the underlying mechanisms.
Methods:
AMPK activator A769662 was topically applied in wound models of diabetic mice. Alterations in the wound site were observed and analyzed by immunohistochemistry. The markers related to autophagy and ferritinophagy were analyzed by western blotting and immunofluorescence staining. The role of AMPK activation and ferritinophagy were also analyzed by western blotting.
Results:
Our results show that AMPK activation improved diabetic wound healing and reduced the accumulation of senescent cells. Intriguingly, we found that AMPK activation-induced ferroptosis is autophagy-dependent. We detected that the level of ferritin had deceased and NCOA4 was markedly increased after AMPK activation treatment. We further investigated that NCOA4-mediated ferritinophagy was involved in ferroptosis triggered by AMPK activation. Most importantly, AMPK activation can reverse the ferroptosis-insensitive of senescent fibroblast cells in diabetic mice wound area and promote wound healing.
Conclusions:
These results suggest that activating AMPK can promote diabetic wound healing by reversing the ferroptosis-insensitive of senescent fibroblast cells. AMPK may serve as a regulatory factor in senescent cells in the diabetic wound area, therefore AMPK activation can become a promising therapeutic method for diabetic non-healing wounds.
Insights
Activating AMP-activated protein kinase (AMPK) promotes diabetic wound healing by reversing ferroptosis resistance in senescent cells. This discovery offers a promising new therapeutic strategy for chronic diabetic wounds.
Area of Science:
- Cellular Biology
- Metabolism
- Wound Healing Research
Background:
- Diabetic wounds are a serious complication of diabetes, often becoming chronic due to a disordered microenvironment.
- Accumulation of senescent cells in diabetic wounds inhibits the natural healing process.
- AMP-activated protein kinase (AMPK), linked to metabolism, aging, and diabetes, is a key factor in cellular regulation.
Purpose of the Study:
- To investigate the impact of AMPK activation on diabetic wound healing.
- To explore the underlying molecular mechanisms, including autophagy and ferritinophagy.
Main Methods:
- Topical application of AMPK activator A769662 in diabetic mouse wound models.
- Analysis of wound site alterations using immunohistochemistry.
- Assessment of autophagy and ferritinophagy markers via western blotting and immunofluorescence staining.
Main Results:
- AMPK activation significantly improved diabetic wound healing and reduced senescent cell accumulation.
- AMPK activation-induced ferroptosis was found to be autophagy-dependent.
- Treatment led to decreased ferritin levels and increased NCOA4, indicating NCOA4-mediated ferritinophagy involvement in AMPK-induced ferroptosis.
- AMPK activation reversed ferroptosis resistance in senescent diabetic fibroblasts, promoting healing.
Conclusions:
- AMPK activation promotes diabetic wound healing by overcoming ferroptosis resistance in senescent fibroblasts.
- AMPK acts as a regulator of senescent cells in diabetic wounds.
- AMPK activation presents a potential therapeutic approach for non-healing diabetic wounds.
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