Melatonin Modulates the Antioxidant Defenses and the Expression of Proinflammatory Mediators in Pancreatic Stellate Cells Subjected to Hypoxia
Abstract
:1. Introduction
2. Materials and Methods
2.1. Chemicals
2.2. Culture of Pancreatic Stellate Cells
2.3. Induction of Hypoxia
2.4. Experimental Conditions for Melatonin Treatment
2.5. Determination of Reactive Oxygen Species Generation
2.6. Determination of Protein Carbonyls (Allysine)
2.7. Analysis of Thiobarbituric-Reactive Substances
2.8. Determination of Glutathione Levels
2.9. Determination of Total Antioxidant Capacity
2.10. Western Blotting Analysis
2.11. Quantitative Reverse Transcription-Polymerase Chain Reaction (RT-qPCR) Analysis
2.12. Determination of Cell Viability
2.13. Statistical Analysis
3. Results
3.1. Effect of Melatonin on the Oxidative State of PSC
3.2. Effect of Melatonin on Nuclear Factor Erythroid 2-Related Factor and Related Antioxidant Enzymes
3.3. Effect of Melatonin on Superoxide Dismutase
3.4. Effect of Melatonin on Glutathione and on Total Antioxidant Capacity (TAC)
3.5. Involvement of Protein Kinase C in Melatonin-Induced Changes in Nrf2-Related Antioxidant Enzymes and in SOD
3.6. Effect of Melatonin on Cell Viability
3.7. Effect of Melatonin on Pivotal Members of Inflammation
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Antibody | Dilution | Supplier |
---|---|---|
Β-Actin HRP-Conjugated | 1:50,000 | Thermo Fisher |
COX-2 | 1:2000 | Cell Signaling |
p-Nrf2 (Ser40) | 1:2000 | Thermo Fisher |
p-p65 NF-κB (Ser536) | 1:1000 | Cell Signaling |
p-IκB α (Ser32) | 1:500 | Santa Cruz Biotechnology |
SOD-1 | 1:1000 | Thermo Fisher |
SOD-2 | 1:2000 | Santa Cruz Biotechnology |
Primer | Forward | Reverse |
---|---|---|
Cat | 5′-ACTTTGAGGTCACCCACGAT-3′ | 5′-AACGGCAATAGGGGTCCTCTT-3′ |
Gapdh | 5′-GGGTGTGAACCACGAGAAAT-3′ | 5′-CCTTCCACGATGCCAAAGTT-3′ |
Gclc | 5′-GGCACAAGGACGTGCTCAAGT-3′ | 5′-TGCAGAGTTTCAAGAACATCG-3′ |
IL-6 | 5′-GTTTGGAAGCATCCATCATTT-3′ | 5′-TGGAAATGAGAAAAGAGTTGTG-3′ |
Ho-1 | 5′-AGCACAGGGTGACAGAAGAG-3′ | 5′-GAGGGACTCTGGTCTTTGTG-3′ |
Nqo-1 | 5′-GGGGACATGAACGTCATTCTCT-3′ | 5′-AAGACCTGGAAGCCACAGAAGC-3′ |
Sod-1 | 5′-GGGGACAATACACAAGGCTGTA-3′ | 5′-CAGGTCTCCAACATGCCTCT-3′ |
Sod-2 | 5′-GTGGAGAACCCAAAGGAGAG-3′ | 5′-GAACCTTGGACTCCCACAGA-3′ |
TNF-α | 5′-CCACCAGTTGGTTGTCTTTG-3′ | 5′-TAGCCCACGTCGTAGCAAAC-3′ |
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Estaras, M.; Gonzalez-Portillo, M.R.; Martinez, R.; Garcia, A.; Estevez, M.; Fernandez-Bermejo, M.; Mateos, J.M.; Vara, D.; Blanco-Fernández, G.; Lopez-Guerra, D.; et al. Melatonin Modulates the Antioxidant Defenses and the Expression of Proinflammatory Mediators in Pancreatic Stellate Cells Subjected to Hypoxia. Antioxidants 2021, 10, 577. https://doi.org/10.3390/antiox10040577
Estaras M, Gonzalez-Portillo MR, Martinez R, Garcia A, Estevez M, Fernandez-Bermejo M, Mateos JM, Vara D, Blanco-Fernández G, Lopez-Guerra D, et al. Melatonin Modulates the Antioxidant Defenses and the Expression of Proinflammatory Mediators in Pancreatic Stellate Cells Subjected to Hypoxia. Antioxidants. 2021; 10(4):577. https://doi.org/10.3390/antiox10040577
Chicago/Turabian StyleEstaras, Matias, Manuel R. Gonzalez-Portillo, Remigio Martinez, Alfredo Garcia, Mario Estevez, Miguel Fernandez-Bermejo, Jose M. Mateos, Daniel Vara, Gerardo Blanco-Fernández, Diego Lopez-Guerra, and et al. 2021. "Melatonin Modulates the Antioxidant Defenses and the Expression of Proinflammatory Mediators in Pancreatic Stellate Cells Subjected to Hypoxia" Antioxidants 10, no. 4: 577. https://doi.org/10.3390/antiox10040577
APA StyleEstaras, M., Gonzalez-Portillo, M. R., Martinez, R., Garcia, A., Estevez, M., Fernandez-Bermejo, M., Mateos, J. M., Vara, D., Blanco-Fernández, G., Lopez-Guerra, D., Roncero, V., Salido, G. M., & Gonzalez, A. (2021). Melatonin Modulates the Antioxidant Defenses and the Expression of Proinflammatory Mediators in Pancreatic Stellate Cells Subjected to Hypoxia. Antioxidants, 10(4), 577. https://doi.org/10.3390/antiox10040577