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SIRT1 Antagonizes Oxidative Stress in Diabetic Vascular Complication
Teng Meng1,2,3, Weifeng Qin1,2, Baohua Liu1,2
1Shenzhen Key Laboratory for Systemic Aging and Intervention, National Engineering Research Center for Biotechnology (Shenzhen), Medical Research Center, Shenzhen University Health Science Center, Shenzhen, China.
Abstract:
Diabetic mellitus (DM) is a significant public health concern worldwide with an increased incidence of morbidity and mortality, which is particularly due to the diabetic vascular complications. Several pivotal underlying mechanisms are associated with vascular complications, including hyperglycemia, mitochondrial dysfunction, inflammation, and most importantly, oxidative stress. Oxidative stress triggers defective angiogenesis, activates pro-inflammatory pathways and causes long-lasting epigenetic changes to facilitate the development of vascular complications. Therefore, therapeutic interventions targeting oxidative stress are promising to manage diabetic vascular complications. Sirtuin1 (SIRT1), a class III histone deacetylase belonging to the sirtuin family, plays critical roles in regulating metabolism and ageing-related pathological conditions, such as vascular diseases. Growing evidence has indicated that SIRT1 acts as a sensing regulator in response to oxidative stress and attenuates vascular dysfunction via cooperating with adenosine-monophosphate-activated protein kinase (AMPK) to activate antioxidant signals through various downstream effectors, including peroxisome proliferator-activated receptor-gamma co-activator 1 (PGC-1α), forkhead transcription factors (FOXOs), and peroxisome proliferative-activated receptor α (PPARα). In addition, SIRT1 interacts with hydrogen sulfide (H2S), regulates NADPH oxidase, endothelial NO synthase, and mechanistic target of rapamycin (mTOR) to suppress oxidative stress. Furthermore, mRNA expression of sirt1 is affected by microRNAs in DM. In the current review, we summarize recent advances illustrating the importance of SIRT1 in antagonizing oxidative stress. We also discuss whether modulation of SIRT1 can serve as a therapeutic strategy to treat diabetic vascular complications.
Insights
Diabetic mellitus (DM) causes vascular complications primarily through oxidative stress. Sirtuin1 (SIRT1) combats this by activating antioxidant pathways, suggesting SIRT1 modulation as a potential therapy for diabetic vascular issues.
Area of Science:
- Biomedical research
- Molecular biology
- Endocrinology
Background:
- Diabetic mellitus (DM) is a global health issue linked to high rates of illness and death, largely due to vascular complications.
- Oxidative stress is a key factor in diabetic vascular complications, driving inflammation, epigenetic changes, and impaired angiogenesis.
Purpose of the Study:
- To review the role of Sirtuin1 (SIRT1) in mitigating oxidative stress.
- To explore the therapeutic potential of modulating SIRT1 for diabetic vascular complications.
Main Methods:
- Literature review summarizing recent advances on SIRT1's function in oxidative stress.
- Analysis of SIRT1's interactions with key signaling pathways (AMPK, PGC-1α, FOXOs, PPARα) and molecules (H2S, NADPH oxidase, eNOS, mTOR).
Main Results:
- SIRT1 acts as a sensor for oxidative stress, attenuating vascular dysfunction.
- SIRT1 activates antioxidant signals through various downstream effectors and interacts with molecules that suppress oxidative stress.
- MicroRNAs influence SIRT1 mRNA expression in the context of DM.
Conclusions:
- SIRT1 plays a crucial role in antagonizing oxidative stress, a major contributor to diabetic vascular complications.
- Targeting SIRT1 presents a promising therapeutic strategy for managing diabetic vascular diseases.
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