Myrcene Salvages Rotenone-Induced Loss of Dopaminergic Neurons by Inhibiting Oxidative Stress, Inflammation, Apoptosis, and Autophagy
Abstract
:1. Introduction
2. Results
2.1. Myrcene Diminished ROT-Induced Oxidative Stress in Rats
2.2. Myrcene Downregulated ROT-Induced Pro-Inflammatory Cytokines, MMP-9, Inflammatory Mediators, and Apoptosis
2.3. Myrcene Prevented ROT-Induced Loss of Dopaminergic Neurons
2.4. Myrcene Reduced the ROT-Induced Activation of Microglia and Astroglia
2.5. Myrcene Mitigated ROT-Induced Increased Expression of α-Synuclein and Autophagy
2.6. Myrcene Modulated ROT-Induced mTOR Signaling Pathway
3. Discussion
4. Materials and Methods
4.1. Experimental Animals and Ethics Approval
4.2. Chemicals and Reagents
4.3. Study Design and Experimental Protocol
4.4. Tissue Handling and Sample Preparation
4.5. Estimation of Malondialdehyde (MDA) Assay
4.6. Estimation of Glutathione (GSH)
4.7. Determination of Antioxidant Enzymes; Superoxide Dismutase (SOD) and Catalase
4.8. Estimation of Pro-Inflammatory Cytokines and MMP-9
4.9. Estimation of Microglia and Astrocyte Activation by Immunofluorescence Staining
4.10. Western Blotting for Proteins
4.11. Assessment of Tyrosine Hydroxylase (TH-Staining) for Dopaminergic Neurons in SN and Striatum
4.12. Assessment of TH-ir Dopaminergic Neurons and TH-ir Dopamine Nerve Fibers Loss
4.13. Protein Estimation
4.14. Statistical Analysis
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Sample Availability
References
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Azimullah, S.; Jayaraj, R.L.; Meeran, M.F.N.; Jalal, F.Y.; Adem, A.; Ojha, S.; Beiram, R. Myrcene Salvages Rotenone-Induced Loss of Dopaminergic Neurons by Inhibiting Oxidative Stress, Inflammation, Apoptosis, and Autophagy. Molecules 2023, 28, 685. https://doi.org/10.3390/molecules28020685
Azimullah S, Jayaraj RL, Meeran MFN, Jalal FY, Adem A, Ojha S, Beiram R. Myrcene Salvages Rotenone-Induced Loss of Dopaminergic Neurons by Inhibiting Oxidative Stress, Inflammation, Apoptosis, and Autophagy. Molecules. 2023; 28(2):685. https://doi.org/10.3390/molecules28020685
Chicago/Turabian StyleAzimullah, Sheikh, Richard L. Jayaraj, Mohamed Fizur. Nagoor Meeran, Fakhreya Y. Jalal, Abdu Adem, Shreesh Ojha, and Rami Beiram. 2023. "Myrcene Salvages Rotenone-Induced Loss of Dopaminergic Neurons by Inhibiting Oxidative Stress, Inflammation, Apoptosis, and Autophagy" Molecules 28, no. 2: 685. https://doi.org/10.3390/molecules28020685
APA StyleAzimullah, S., Jayaraj, R. L., Meeran, M. F. N., Jalal, F. Y., Adem, A., Ojha, S., & Beiram, R. (2023). Myrcene Salvages Rotenone-Induced Loss of Dopaminergic Neurons by Inhibiting Oxidative Stress, Inflammation, Apoptosis, and Autophagy. Molecules, 28(2), 685. https://doi.org/10.3390/molecules28020685