The Antioxidant Selenoprotein T Mimetic, PSELT, Induces Preconditioning-like Myocardial Protection by Relieving Endoplasmic-Reticulum Stress
Abstract
:1. Introduction
2. Materials and Methods
2.1. Peptides and Drugs
2.2. Animals
2.3. Langendorff Isolated Rat Heart Perfusion
2.4. Experimental Protocols
2.4.1. Ischemia/Reperfusion (I/R) Protocol
2.4.2. Experimental Groups
- (a).
- Sham group: hearts underwent only 190 min of perfusion;
- (b).
- I/R Control group: hearts were exposed to I/R protocol;
- (c).
- PSELT group, pre-conditioning with PSELT: after stabilization, PSELT was infused for 20 min before I/R at the concentration of 5 nM according to our prior ex vivo study [17], where PSELT elicited cardioprotection as post-conditioning agent;
- (d).
- TM group, pre-conditioning with tunicamycin (TM): after stabilization, TM (2.5 µg/mL) was infused for 5 min before I/R [23];
- (e).
- TM + PSELT group, pre-conditioning with TM + PSELT: after stabilization, TM was infused for 5 min followed by a 20 min 5 nM PSELT infusion before I/R;
- (f).
- I-PSELT group, pre-conditioning with inert PSELT (I-PSELT): after stabilization, 5 nM I-PSELT was infused for 20 min before I/R [17].
2.5. Assessment of Myocardial Injury
2.5.1. Lactate Dehydrogenase Activity in Coronary Effluent
2.5.2. Infarct Size
2.6. Biochemical Analyses
2.6.1. Superoxide Dismutase (SOD) Assay
2.6.2. Catalase (CAT) Assay
2.6.3. Thiobarbituric Acid Reactive Substances (TBARS) Assay
2.6.4. Protein Carbonyl Content Assay
2.7. Western Blot Analyses on Cardiac Tissues
2.8. Cell Culture and Treatments
2.8.1. Cell Viability by 3-(4,5-Dimethylthiazol-)2,5-diphenyl Tetrazolium Bromide (MTT) Assay
2.8.2. Western Blot Analysis on H9c2 Cells
2.8.3. Short Interfering RNA (siRNA) Transfection for SELENOT Silencing
2.8.4. Immunofluorescence Analysis
2.9. Statistical Analyses
3. Results
3.1. Action of PSELT on Post-Ischemic Systolic and Diastolic Recovery
3.2. Effect of PSELT on Infarct Size (IS) and Lactate Dehydrogenase Release (LDH)
3.3. Effect of PSELT on Cardiac Oxidative Stress and the Activity of Endogenous Antioxidant Enzymes
3.4. Influence of PSELT on the Expression of SELENOT and ER Stress Response Markers in I/R Hearts
3.5. Effect of PSELT against Oxidative Stress in H9c2 Cells
3.6. Role of Endogenous SELENOT in PSELT-Dependent H9c2 Cell Protection following H2O2 Exposure
3.7. Evaluation of Cardiomyocyte-Penetrating Capacity and Cell Distribution of PSELT
4. Discussion
4.1. PSELT Exerts Preconditioning-like Myocardial Protective Effects against I/R Injury and TM-Induced ERS through the Sec Residue
4.2. PSELT Reduces the Cardiac Expression of the ERS Markers CHOP and ATF6 and Increases Endogenous SELENOT Protein Expression
4.3. PSELT Reduces Oxidative Stress and Improves the Endogenous Antioxidant Defence System to Promote Cardioprotection
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Rocca, C.; De Bartolo, A.; Granieri, M.C.; Rago, V.; Amelio, D.; Falbo, F.; Malivindi, R.; Mazza, R.; Cerra, M.C.; Boukhzar, L.; et al. The Antioxidant Selenoprotein T Mimetic, PSELT, Induces Preconditioning-like Myocardial Protection by Relieving Endoplasmic-Reticulum Stress. Antioxidants 2022, 11, 571. https://doi.org/10.3390/antiox11030571
Rocca C, De Bartolo A, Granieri MC, Rago V, Amelio D, Falbo F, Malivindi R, Mazza R, Cerra MC, Boukhzar L, et al. The Antioxidant Selenoprotein T Mimetic, PSELT, Induces Preconditioning-like Myocardial Protection by Relieving Endoplasmic-Reticulum Stress. Antioxidants. 2022; 11(3):571. https://doi.org/10.3390/antiox11030571
Chicago/Turabian StyleRocca, Carmine, Anna De Bartolo, Maria Concetta Granieri, Vittoria Rago, Daniela Amelio, Flavia Falbo, Rocco Malivindi, Rosa Mazza, Maria Carmela Cerra, Loubna Boukhzar, and et al. 2022. "The Antioxidant Selenoprotein T Mimetic, PSELT, Induces Preconditioning-like Myocardial Protection by Relieving Endoplasmic-Reticulum Stress" Antioxidants 11, no. 3: 571. https://doi.org/10.3390/antiox11030571
APA StyleRocca, C., De Bartolo, A., Granieri, M. C., Rago, V., Amelio, D., Falbo, F., Malivindi, R., Mazza, R., Cerra, M. C., Boukhzar, L., Lefranc, B., Leprince, J., Anouar, Y., & Angelone, T. (2022). The Antioxidant Selenoprotein T Mimetic, PSELT, Induces Preconditioning-like Myocardial Protection by Relieving Endoplasmic-Reticulum Stress. Antioxidants, 11(3), 571. https://doi.org/10.3390/antiox11030571