Journal of Southern Medical University ›› 2026, Vol. 46 ›› Issue (2): 316-324.doi: 10.12122/j.issn.1673-4254.2026.02.09
Yuce PENG(
), Yi JIANG, Dan MA, An HE, Dingyi LÜ(
), Minghao LUO(
), Suxin LUO(
)
Received:2025-07-08
Online:2026-02-20
Published:2026-03-10
Contact:
Dingyi Lü, Minghao LUO, Suxin LUO
E-mail:Yuce1999@163.com;dingyi.lyu@hospital.cqmu.edu.cn;luominghao001@foxmail.com;luosuxin0204@163.com
Supported by:Yuce PENG, Yi JIANG, Dan MA, An HE, Dingyi LÜ, Minghao LUO, Suxin LUO. Isovitexin alleviates myocardial oxidative stress injury in diabetic mice by enhancing myocardial SIRT3 expression and reducing oxidative stress[J]. Journal of Southern Medical University, 2026, 46(2): 316-324.
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URL: https://www.j-smu.com/EN/10.12122/j.issn.1673-4254.2026.02.09
Fig.1 Isovitexin (ISO) alleviates myocardial injury in diabetic mice. A: HE staining of the myocardial tissues of mice (Scale bar=50 μm). B: MDA content in mouse myocardial tissue (n=6). C: GSH-Px content in mouse myocardial tissue (n=6). D: SOD content in mouse myocardial tissue (n=6). E, F: Expression levels of NQO1, NRF2, AC-SOD2, SIRT3, and NOX2 proteins detected by Western blotting (n=4). DM: Diabetes mellitus. ***P<0.001 vs Sham group; #P<0.05, ##P<0.01, ###P<0.001 vs DM group.
Fig.2 ISO alleviates myocardial oxidative stress in diabetic mice. A: Expression and location of 8-OHdG determined by immunofluorescence staining (Scale bar=100 μm). B: Statistical analysis of fluorescence intensity (n=6). C: Expression and location of iNOS determined by immunohistochemistry (Scale bar=100 μm). D: Statistical analysis of iNOS-positive area (n=6). E: Expression and location of NOX4 determined by immunohistochemistry (Scale bar=100 μm). F: Statistical analysis of NOX4-positive area (n=6). ***P<0.001 vs Sham group; ##P<0.01, ###P<0.001 vs DM group.
Fig.3 ISO alleviates oxidative stress in primary cultures of neonatal mouse cardiomyocytes (NMCMs). A: Intracellular ROS levels determined by immunofluorescence staining (Scale bar=50 μm). B: Statistical analysis of fluorescence intensity (n=6). C, D: Expression levels of SIRT3, NQO1, AC-SOD2, NRF2, and NOX2 proteins detected by Western blotting (n=6). ***P<0.001 vs CON group; ##P<0.01, ###P<0.001 vs HG group.
Fig.4 ISO protects NMCMs against high glucose-induced injury by activating SIRT3. A, B: Expression levels of SIRT3, NQO1, AC-SOD2, NRF2, and NOX2 detected by Western blotting (n=6). C, D: Flow cytometry for quantitative analysis of cellular oxidative stress damage (n=6). ***P<0.001 vs CON group; ##P<0.01, ###P<0.001 vs HG group; &P<0.05, &&P<0.01 vs HG+ISO group.
Fig5 ISO protects myocardial tissue of diabetic mice against oxidative stress by activating SIRT3. A: MDA content in mouse myocardial tissues (n=6). B: GSH-Px content in mouse myocardial tissues (n=6). C: SOD content in mouse myocardial tissue (n=6). D: Expression levels of NQO1, NRF2, AC-SOD2, SIRT3, and NOX2 proteins in mouse myocardial tissues detected using Western blotting (n=6). Comparisons were performed using one-way ANOVA for multiple groups. ##P<0.01, ###P<0.001 vs DM group; &&P<0.01, &&&P<0.001 vs DM+ISO group.
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