Chlorogenic Acid Decreases Glutamate Release from Rat Cortical Nerve Terminals by P/Q-Type Ca2+ Channel Suppression: A Possible Neuroprotective Mechanism
Abstract
:1. Introduction
2. Results
2.1. Effect of CGA on 4-Aminopyridine (4-AP)-Evoked Glutamate Release from Rat Cerebrocorticalsynaptosomes
2.2. Effect of CGA on 4-AP-Induced Increase in [Ca2+]C and Membrane Potential Depolarization in the Synaptosomes
2.3. Effect of CGA on Glutamate Release in the Presence of Voltage-Dependent Ca2+ Channel Blockers or Intracellular Ca2+ Release Inhibitors
2.4. CGA Interacts with the P/Q-Type Ca2+ Channel
2.5. Effect of CGA on Glutamate Release in the Presence of Calmodulin and Ca2+/Calmodulin-Dependent Kinase II (CaMKII) Inhibitors
2.6. Effect of CGA on the Phosphorylation of CaMKII and Its Substrate, Synapsin I, in Cerebrocorticalsynaptosomes
2.7. Effect of CGA on the Neuronal Damage and Glutamate Elevation in the Cortex of Rats with KA
3. Discussion
4. Materials and Methods
4.1. Animals
4.2. Materials
4.3. Preparation of Synaptosomes
4.4. Glutamate Release Determination
4.5. Determination of Cytosolic Free Ca2+ Concentration ([Ca2+]C)
4.6. Determination of Synaptosomal Membrane Potential
4.7. Molecular Docking Study
4.8. Western Blot
4.9. Histological Staining
4.10. Determination of Glutamate in Brain Tissue
4.11. Statistical Analysis
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
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Hung, Y.-C.; Kuo, Y.-H.; Hsieh, P.-W.; Hsieh, T.-Y.; Kuo, J.-R.; Wang, S.-J. Chlorogenic Acid Decreases Glutamate Release from Rat Cortical Nerve Terminals by P/Q-Type Ca2+ Channel Suppression: A Possible Neuroprotective Mechanism. Int. J. Mol. Sci. 2021, 22, 11447. https://doi.org/10.3390/ijms222111447
Hung Y-C, Kuo Y-H, Hsieh P-W, Hsieh T-Y, Kuo J-R, Wang S-J. Chlorogenic Acid Decreases Glutamate Release from Rat Cortical Nerve Terminals by P/Q-Type Ca2+ Channel Suppression: A Possible Neuroprotective Mechanism. International Journal of Molecular Sciences. 2021; 22(21):11447. https://doi.org/10.3390/ijms222111447
Chicago/Turabian StyleHung, Yi-Chieh, Yi-Hsiu Kuo, Pei-Wen Hsieh, Ting-Yang Hsieh, Jinn-Rung Kuo, and Su-Jane Wang. 2021. "Chlorogenic Acid Decreases Glutamate Release from Rat Cortical Nerve Terminals by P/Q-Type Ca2+ Channel Suppression: A Possible Neuroprotective Mechanism" International Journal of Molecular Sciences 22, no. 21: 11447. https://doi.org/10.3390/ijms222111447
APA StyleHung, Y. -C., Kuo, Y. -H., Hsieh, P. -W., Hsieh, T. -Y., Kuo, J. -R., & Wang, S. -J. (2021). Chlorogenic Acid Decreases Glutamate Release from Rat Cortical Nerve Terminals by P/Q-Type Ca2+ Channel Suppression: A Possible Neuroprotective Mechanism. International Journal of Molecular Sciences, 22(21), 11447. https://doi.org/10.3390/ijms222111447