Insulin-like growth factor 1 (IGF-1) therapy: Mitochondrial dysfunction and diseases
M C Sádaba1, I Martín-Estal2, J E Puche1
1University CEU-San Pablo, School of Medicine, Department of Physiology, Institute of Applied Molecular Medicine (IMMA), Madrid, Spain.
Abstract:
This review resumes the association between mitochondrial function and diseases, especially neurodegenerative diseases. Additionally, it summarizes the major role of IGF-1 as a mitochondrial protector, as studied in several experimental models (cirrhosis, aging …). The contribution of mitochondrial dysfunction to impairments in insulin metabolic signaling is also suggested by gene array analysis showing that reductions in gene expression, that regulates mitochondrial ATP production, are associated with insulin resistance and type 2 diabetes mellitus. Moreover, reductions in oxidative capacity of mitochondrial electron transport chain are manifested in obese, insulin-resistant and diabetic patients. Genetic and environmental factors, oxidative stress, and alterations in mitochondrial biogenesis can adversely affect mitochondrial function, leading to insulin resistance and several pathological conditions, such as type 2 diabetes. Finally, it remains essential to know the exact mechanisms involved in mitochondrial generation and metabolism, mitophagy, apoptosis, and oxidative stress to establish new targets in order to develop potentially effective therapies. One of the newest targets to recover mitochondrial dysfunction could be the administration of IGF-1 at low doses. In the last years, it has been observed that IGF-1 therapy has several beneficial effects: restores physiological IGF-1 levels; improves insulin resistance and lipid metabolism; exerts mitochondrial protection; and has hepatoprotective, neuroprotective, antioxidant and antifibrogenic effects. In consequence, treatment of mitochondrial dysfunctions with low doses of IGF-1 could be a powerful and useful effective therapy to restore normal mitochondrial functions.
Insights
Insulin-like growth factor 1 (IGF-1) protects mitochondria, improving insulin resistance and type 2 diabetes. Low-dose IGF-1 therapy shows promise for restoring mitochondrial function and treating related diseases.
Area of Science:
- Mitochondrial biology
- Metabolic diseases
- Neurodegenerative disorders
Background:
- Mitochondrial dysfunction is linked to diseases, particularly neurodegenerative conditions and type 2 diabetes.
- Impaired mitochondrial ATP production and reduced oxidative capacity are associated with insulin resistance, obesity, and diabetes.
- Factors like oxidative stress and altered mitochondrial biogenesis contribute to mitochondrial dysfunction.
Purpose of the Study:
- To review the association between mitochondrial function and diseases.
- To highlight the protective role of Insulin-like Growth Factor 1 (IGF-1) in mitochondrial health.
- To explore IGF-1 as a potential therapeutic target for mitochondrial dysfunction and associated metabolic disorders.
Main Methods:
- Literature review focusing on mitochondrial function, diseases, and IGF-1.
- Analysis of experimental models demonstrating IGF-1's effects (e.g., cirrhosis, aging).
- Examination of gene array data linking mitochondrial gene expression to insulin resistance and type 2 diabetes.
Main Results:
- IGF-1 acts as a significant mitochondrial protector across various experimental models.
- Mitochondrial dysfunction contributes to insulin resistance and type 2 diabetes mellitus.
- Low-dose IGF-1 therapy demonstrates beneficial effects, including improved insulin resistance, lipid metabolism, and organ protection.
Conclusions:
- Understanding mechanisms of mitochondrial biogenesis, metabolism, mitophagy, and apoptosis is crucial for developing therapies.
- Low-dose IGF-1 therapy is a promising strategy for mitigating mitochondrial dysfunction.
- IGF-1 treatment offers potential therapeutic benefits for conditions associated with mitochondrial dysfunction, including metabolic and neurodegenerative diseases.
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