Curcumin Administration Improves Force of mdx Dystrophic Diaphragm by Acting on Fiber-Type Composition, Myosin Nitrotyrosination and SERCA1 Protein Levels
Abstract
:1. Introduction
2. Materials and Methods
2.1. Mice
2.2. Antibodies and Reagents
2.3. Western Blotting
2.4. Immunoperoxidase and Routine Histology Stainings
2.5. Immunofluorescence
2.6. Serum Creatine Kinase (CK) Assay
2.7. Mechanical Recordings
2.8. Oxyblot and Tropomyosin Oxidation
2.9. Cell Cultures
2.10. Statistical Analyses
3. Results
3.1. Curcumin Treatment of mdx Mice
3.2. Effects of Curcumin Treatment on Diaphragm Muscle: Dystrophic Signatures and Fiber-Type Composition
3.3. Effects of Curcumin Treatment on the Contractility of the Dystrophic Diaphragm
3.4. Curcumin Effects on Myofiber Oxidative and Nitrosative Stress
3.5. Curcumin Effects on Protein Levels of Grp94, nNOS and nNOS Regulators
3.6. Curcumin Upregulates SERCA1 in Cultured Myotubes
4. Discussion
5. Study Limitations and 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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Age + Treatment (Mice Number) | Type of Treatment | Inflammation (Area, %) | M1 Macrophages (iNOS+ CD206−, %) | M2 Macrophages (CD206+ F4/80+, %) | Fibrosis (Area, %) |
---|---|---|---|---|---|
5 + 4 wks (n = 8) | IP vehicle | 6.19 ± 1.17 | 58.50 ± 0.64 | 51.33 ± 3.34 | 28.19 ± 3.54 |
5 + 4 wks (n = 6) | IP Cu | 7.55 ± 1.67 | 53.50 ± 0.28 | 40.00 ± 5.45 | 30.02 ± 3.72 |
5 + 12 wks (n = 5) | IP vehicle | 10.45 ± 1.53 | 27.50 ± 6.00 | 50.20 ± 4.49 | 41.80 ± 7.12 |
5 + 12 wks (n = 9) | IP Cu | 9.35 ± 0.80 | 31.25 ± 5.93 | 51.16 ± 2.77 | 40.69 ± 3.67 |
5 + 24 wks (n = 4) | SC vehicle | 2.37 ± 0.50 | 35.87 ± 2.47 | 42.52 ± 7.94 | 43.47 ± 1.57 |
5 + 24 wks (n = 6) | SC Cu | 1.97 ± 0.30 | 33.28 ± 3.45 | 30.00 ± 3.10 | 46.85 ± 1.74 |
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Gorza, L.; Germinario, E.; Vitadello, M.; Guerra, I.; De Majo, F.; Gasparella, F.; Caliceti, P.; Vitiello, L.; Danieli-Betto, D. Curcumin Administration Improves Force of mdx Dystrophic Diaphragm by Acting on Fiber-Type Composition, Myosin Nitrotyrosination and SERCA1 Protein Levels. Antioxidants 2023, 12, 1181. https://doi.org/10.3390/antiox12061181
Gorza L, Germinario E, Vitadello M, Guerra I, De Majo F, Gasparella F, Caliceti P, Vitiello L, Danieli-Betto D. Curcumin Administration Improves Force of mdx Dystrophic Diaphragm by Acting on Fiber-Type Composition, Myosin Nitrotyrosination and SERCA1 Protein Levels. Antioxidants. 2023; 12(6):1181. https://doi.org/10.3390/antiox12061181
Chicago/Turabian StyleGorza, Luisa, Elena Germinario, Maurizio Vitadello, Irene Guerra, Federica De Majo, Francesca Gasparella, Paolo Caliceti, Libero Vitiello, and Daniela Danieli-Betto. 2023. "Curcumin Administration Improves Force of mdx Dystrophic Diaphragm by Acting on Fiber-Type Composition, Myosin Nitrotyrosination and SERCA1 Protein Levels" Antioxidants 12, no. 6: 1181. https://doi.org/10.3390/antiox12061181
APA StyleGorza, L., Germinario, E., Vitadello, M., Guerra, I., De Majo, F., Gasparella, F., Caliceti, P., Vitiello, L., & Danieli-Betto, D. (2023). Curcumin Administration Improves Force of mdx Dystrophic Diaphragm by Acting on Fiber-Type Composition, Myosin Nitrotyrosination and SERCA1 Protein Levels. Antioxidants, 12(6), 1181. https://doi.org/10.3390/antiox12061181