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Modeling and Evaluation of Murine Diabetic Cardiomyopathy Model
Published on: November 29, 2024
Deletion of Smad3 protects against diabetic myocardiopathy in db/db mice
Li Dong1,2, Jian-Chun Li1,2, Zhong-Jing Hu1,2
1Department of Cardiovascular Medicine, Research Center of Integrated Traditional Chinese and Western Medicine, The TCM Affiliated Hospital of Southwest Medical University, Luzhou, China.
Insights
Smad3 deletion protects against diabetic cardiomyopathy (DCM) by preventing cardiac fibrosis and inflammation. This suggests targeting Smad3 could be a novel therapeutic strategy for DCM.
Area of Science:
- Cardiovascular Research
- Molecular Biology
- Diabetology
Background:
- Diabetic cardiomyopathy (DCM) is a significant complication of diabetes, leading to heart failure.
- The role of TGF-β/Smad3 signaling in DCM pathogenesis is not fully understood.
Purpose of the Study:
- To investigate the role and mechanisms of Smad3 in the development of DCM.
- To evaluate the therapeutic potential of targeting Smad3 in DCM.
Main Methods:
- Genetic deletion of the Smad3 gene in db/db mice (Smad3KO-db/db).
- Assessment of cardiac function, structure, fibrosis, and inflammation at 32 weeks.
- Analysis of Smad7, Smurf2, IκBα, NF-κB, and miRNA expression (miR-29b, miR-21).
Main Results:
- Smad3WT-db/db mice exhibited moderate to severe DCM with increased LV mass, reduced ejection fraction, fibrosis, and inflammation.
- Smad3KO-db/db mice were protected from DCM, showing normal cardiac function and minimal fibrosis/inflammation.
- Partial Smad3 deletion (Smad3±db/db) did not confer protection.
- Smad3 deletion preserved cardiac Smad7, suppressed NF-κB-driven inflammation, and modulated miR-29b/miR-21 levels.
Conclusions:
- Smad3 is a key mediator in the pathogenesis of diabetic cardiomyopathy.
- Targeting Smad3 presents a potential novel therapeutic approach for treating DCM.
Abstract:
Diabetic cardiomyopathy (DCM) is a common diabetic complication characterized by diastolic relaxation abnormalities, myocardial fibrosis and chronic heart failure. Although TGF-β/Smad3 signalling has been shown to play a critical role in chronic heart disease, the role and mechanisms of Smad3 in DCM remain unclear. We reported here the potential role of Smad3 in the development of DCM by genetically deleting the Smad3 gene from db/db mice. At the age of 32 weeks, Smad3WT-db/db mice developed moderate to severe DCM as demonstrated by a marked increase in the left ventricular (LV) mass, a significant fall in the LV ejection fraction (EF) and LV fractional shortening (FS), and progressive myocardial fibrosis and inflammation. In contrast, db/db mice lacking Smad3 (Smad3KO-db/db) were protected against the development of DCM with normal cardiac function and undetectable myocardial inflammation and fibrosis. Interestingly, db/db mice with deleting one copy of Smad3 (Smad3 ± db/db) did not show any cardioprotective effects. Mechanistically, we found that deletion of Smad3 from db/db mice largely protected cardiac Smad7 from Smurf2-mediated ubiquitin proteasome degradation, thereby inducing IBα to suppress NF-kB-driven cardiac inflammation. In addition, deletion of Smad3 also altered Smad3-dependent miRNAs by up-regulating cardiac miR-29b while suppressing miR-21 to exhibit the cardioprotective effect on Smad3KO-db/db mice. In conclusion, results from this study reveal that Smad3 is a key mediator in the pathogenesis of DCM. Targeting Smad3 may be a novel therapy for DCM.
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