Resveratrol and Calcium Signaling: Molecular Mechanisms and Clinical Relevance
Abstract
:1. Introduction
1.1. Effects and Mechanisms of Action of Resveratrol as the Basis for Its Therapeutic Potential in Various Diseases
1.2. Key Signaling Proteins Controlling Cellular Calcium Homeostasis
2. Medical Relevance of Modulation of Cellular Calcium Signaling Mechanisms by Resveratrol
2.1. Modulation of Cellular Calcium Signaling Mechanisms by Resveratrol in Excitable Cells
2.2. Modulation of Cellular Calcium Signaling Mechanisms by Resveratrol in Cancer and Immune Cells
2.3. Modulation of Cellular Calcium Signaling Mechanisms by Resveratrol in Human Retinal Pigment Epithelial Cells
3. Therapeutic Potential of Resveratrol via the Modulation of Cellular Calcium Signaling
3.1. Intracellular Calcium Channels
3.2. Store-Operated Calcium Channel
3.3. Voltage-Gated Calcium Channels
3.4. Calcium-Activated Potassium Channels
Protein | Modulatory Action | Therapeutic Application | References |
---|---|---|---|
Intracellular calciumchannels | TBD | Potential for excitatory neuronal, cardiac, inflammatory and autoimmune diseases | --- |
Calcium-release activated channels | No direct effects | No direct disease amelioration | [60] |
Store-operated calcium entry | Activation of store-operated calcium entry | Diseases of prolonged calcium influx such as immune and inflammatory diseases | [33] |
Voltage-gated calcium channels | Dose-dependent inhibition of L- and T-type channels | Prevention of uncontrolled excitability | [26,27] |
Calcium-activated potassium channels | Indirect inhibition, likely via modulation of voltage-gated calcium channels | Modulation of action potentials (particularly in cardiac and neurological disorders) | [19,47,74] |
SERCA | Indirect up-regulation via SIRT1 activation | SIRT1 down regulation disorders, cancer | [26,27] |
PMCA | Indirect PMCA degradation via calpain activation | Cancer | [27] |
3.5. SERCA and PMCA
3.6. Mitochondrial Calcium Signaling
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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McCalley, A.E.; Kaja, S.; Payne, A.J.; Koulen, P. Resveratrol and Calcium Signaling: Molecular Mechanisms and Clinical Relevance. Molecules 2014, 19, 7327-7340. https://doi.org/10.3390/molecules19067327
McCalley AE, Kaja S, Payne AJ, Koulen P. Resveratrol and Calcium Signaling: Molecular Mechanisms and Clinical Relevance. Molecules. 2014; 19(6):7327-7340. https://doi.org/10.3390/molecules19067327
Chicago/Turabian StyleMcCalley, Audrey E., Simon Kaja, Andrew J. Payne, and Peter Koulen. 2014. "Resveratrol and Calcium Signaling: Molecular Mechanisms and Clinical Relevance" Molecules 19, no. 6: 7327-7340. https://doi.org/10.3390/molecules19067327
APA StyleMcCalley, A. E., Kaja, S., Payne, A. J., & Koulen, P. (2014). Resveratrol and Calcium Signaling: Molecular Mechanisms and Clinical Relevance. Molecules, 19(6), 7327-7340. https://doi.org/10.3390/molecules19067327