Targeting Mitochondrial Dysfunction for the Treatment of Diabetic Complications: Pharmacological Interventions
Aakruti Arun Kaikini1, Divya Manohar Kanchan1, Urvi Narayan Nerurkar1
1Department of Pharmaceutical Sciences and Technology, Institute of Chemical Technology, Mumbai, Maharashtra, India.
Abstract:
Diabetes mellitus is a chronic hyperglycemic condition with deleterious effects on microcirculation, resulting in diabetic complications. Chronic hyperglycemia induces the generation of reactive oxygen species (ROS), which are the key pathological triggers in the development of diabetic complications. ROS are responsible for the activation of various pathways involved in the genesis of diabetic complications, mitochondrial dysfunction, as well as insulin resistance. The review describes normal mitochondrial physiology and abnormal alterations, which occur in response to hyperglycemia. Mitochondrial biogenesis is a highly regulated process mediated by several transcription factors, wherein mitochondrial fusion and fission occur in harmony in a normal healthy cell. However, this harmony is disrupted in hyperglycemic condition indicated by alteration in functions of essential transcription factors. Hyperglycemia-induced mitochondrial dysfunction plays a key role in diabetic complications, pancreatic β-cell dysfunction, as well as skeletal muscle insulin resistance as demonstrated by various in vitro, preclinical, and clinical studies. The review focuses on the various factors involved in mitochondrial biogenesis and maintenance of healthy mitochondrial function. Several phytoconstituents act through these pathways, either directly by stimulating biogenesis or indirectly by inhibiting or preventing dysfunction, and produce a beneficial effect on overall mitochondrial function. These phytoconstituents have enormous potential in amelioration of diabetic complications by restoring normal mitochondrial physiology and need detailed evaluation by preclinical and clinical studies. Such phytoconstituents can be included as nutraceuticals or adjuvant therapy to the mainstream treatment of diabetes.
Insights
Diabetes causes complications by increasing reactive oxygen species (ROS), leading to mitochondrial dysfunction. Certain plant compounds may restore mitochondrial health and help manage diabetes complications.
Area of Science:
- Biochemistry
- Cell Biology
- Endocrinology
Background:
- Diabetes mellitus is a chronic condition characterized by hyperglycemia, leading to microcirculation damage and diabetic complications.
- Chronic hyperglycemia elevates reactive oxygen species (ROS), a key factor in diabetic complications, mitochondrial dysfunction, and insulin resistance.
Purpose of the Study:
- To review normal mitochondrial physiology and its alterations in hyperglycemia.
- To explore the role of mitochondrial dysfunction in diabetic complications, beta-cell dysfunction, and insulin resistance.
- To investigate the potential of phytoconstituents in restoring mitochondrial function and ameliorating diabetic complications.
Main Methods:
- Literature review of in vitro, preclinical, and clinical studies.
- Analysis of pathways involved in mitochondrial biogenesis and function.
- Examination of the effects of phytoconstituents on mitochondrial pathways.
Main Results:
- Hyperglycemia disrupts the balance of mitochondrial fusion and fission, impairing mitochondrial function.
- Mitochondrial dysfunction is a central mechanism in diabetic complications, beta-cell failure, and insulin resistance.
- Phytoconstituents show potential in stimulating mitochondrial biogenesis and preventing dysfunction.
Conclusions:
- Restoring normal mitochondrial physiology is crucial for ameliorating diabetic complications.
- Phytoconstituents offer a promising therapeutic avenue for diabetes management.
- Further preclinical and clinical studies are needed to validate the efficacy of phytoconstituents.
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