Calorie Restriction Mimetics: Upstream-Type Compounds for Modulating Glucose Metabolism
Abstract
:1. Introduction
2. Calorie Restriction
3. Calorie Restriction Mimetics
3.1. Downstream-Type Calorie Restriction Mimetics
3.1.1. Metformin
3.1.2. Rapamycin
3.1.3. Resveratrol
3.1.4. Polyamines
3.1.5. Other Downstream-Type Calorie Restriction Mimetics
3.2. Upstream-Type Calorie Restriction Mimetics
3.2.1. Chitosan
3.2.2. Acarbose
3.2.3. 2-Deoxy-d-Glucose
3.2.4. d-Glucosamine
3.2.5. d-Allulose
3.2.6. Sodium-Glucose Cotransporter 2 Inhibitors
4. Discussion and Summary
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Compound | Mode of Action |
---|---|
Metformin (antidiabetic drug) | AMPK activation |
Rapamycin (immunosuppressant drug) | mTOR inhibition |
Resveratrol (food component) | Sirtuin activation |
Polyamines (food component) | Epigenetic control |
Oxaloacetic acid (dietary supplement) | Redox balance |
Compound | Mode of Action |
---|---|
Chitosan (dietary supplement) | Glucose diminution |
Acarbose (antidiabetic drug) | Glycosidase inhibition |
2-Deoxy-d-glucose (anticancer drug) | Glycolysis inhibition |
d-Glucosamine (dietary supplement) | Glycolysis adjustment |
d-Allulose (food component) | Glycolysis improvement |
SGLT2 inhibitor (antidiabetic drug) | Glucose excretion |
Main Experimental Animal Model | Lifespan | Glucose Level | Body Weight | Body Fat | Autophagy | Energy Consumption | Stress Tolerance | |
---|---|---|---|---|---|---|---|---|
CR | Human | Extend? | Lower | Lose | Decrease | Enhance in excessive CR | Change | Decrease stress markers |
Nematode/Mouse | Extend | Lower | Lose | Decrease | Enhance in excessive CR | Change | Decrease stress markers | |
Chitosan | Mouse | Extend? | Lower | Lose | Decrease | NR | NR | NR |
Acarbose | Human/Mouse | Extend? | Lower | Lose | Decrease | NR | NR | NR |
2DG | Nematode/Mouse | Extend | Lower | Lose | Decrease | Enhance | NR | Increase antioxidant enzyme |
GlcN | Nematode/Mouse | Extend | Lower | Lose | Decrease | Enhance | Change | Increase antioxidant enzyme |
d-Alu | Nematode/Mouse | Extend | Lower | Lose | Decrease | NR | Change | Increase antioxidant enzyme |
SGLT2 inhibitors | Human/Mouse | Extend? | Lower | Lose | Decrease | NR | Change | Decrease stress markers |
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Shintani, H.; Shintani, T.; Ashida, H.; Sato, M. Calorie Restriction Mimetics: Upstream-Type Compounds for Modulating Glucose Metabolism. Nutrients 2018, 10, 1821. https://doi.org/10.3390/nu10121821
Shintani H, Shintani T, Ashida H, Sato M. Calorie Restriction Mimetics: Upstream-Type Compounds for Modulating Glucose Metabolism. Nutrients. 2018; 10(12):1821. https://doi.org/10.3390/nu10121821
Chicago/Turabian StyleShintani, Hideya, Tomoya Shintani, Hisashi Ashida, and Masashi Sato. 2018. "Calorie Restriction Mimetics: Upstream-Type Compounds for Modulating Glucose Metabolism" Nutrients 10, no. 12: 1821. https://doi.org/10.3390/nu10121821
APA StyleShintani, H., Shintani, T., Ashida, H., & Sato, M. (2018). Calorie Restriction Mimetics: Upstream-Type Compounds for Modulating Glucose Metabolism. Nutrients, 10(12), 1821. https://doi.org/10.3390/nu10121821