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Updated: Oct 4, 2025

Modeling and Evaluation of Murine Diabetic Cardiomyopathy Model
Published on: November 29, 2024
Diabetes-Induced Cellular Senescence and Senescence-Associated Secretory Phenotype Impair Cardiac Regeneration and
Fabiola Marino1,2, Mariangela Scalise1, Nadia Salerno3
1Department of Experimental and Clinical Medicine, Magna Græcia University, Catanzaro, Italy.
Abstract:
Diabetes mellitus (DM) affects the biology of multipotent cardiac stem/progenitor cells (CSCs) and adult myocardial regeneration. We assessed the hypothesis that senescence and senescence-associated secretory phenotype (SASP) are main mechanisms of cardiac degenerative defect in DM. Accordingly, we tested whether ablation of senescent CSCs would rescue the cardiac regenerative/reparative defect imposed by DM. We obtained cardiac tissue from nonaged (50- to 64-year-old) patients with type 2 diabetes mellitus (T2DM) and without DM (NDM) and postinfarct cardiomyopathy undergoing cardiac surgery. A higher reactive oxygen species production in T2DM was associated with an increased number of senescent/dysfunctional T2DM-human CSCs (hCSCs) with reduced proliferation, clonogenesis/spherogenesis, and myogenic differentiation versus NDM-hCSCs in vitro. T2DM-hCSCs showed a defined pathologic SASP. A combination of two senolytics, dasatinib (D) and quercetin (Q), cleared senescent T2DM-hCSCs in vitro, restoring their expansion and myogenic differentiation capacities. In a T2DM model in young mice, diabetic status per se (independently of ischemia and age) caused CSC senescence coupled with myocardial pathologic remodeling and cardiac dysfunction. D + Q treatment efficiently eliminated senescent cells, rescuing CSC function, which resulted in functional myocardial repair/regeneration, improving cardiac function in murine DM. In conclusion, DM hampers CSC biology, inhibiting CSCs' regenerative potential through the induction of cellular senescence and SASP independently from aging. Senolytics clear senescence, abrogating the SASP and restoring a fully proliferative/differentiation-competent hCSC pool in T2DM with normalization of cardiac function.
Insights
Diabetes mellitus induces cardiac stem cell senescence, impairing heart repair. Senolytic therapy clears these cells, restoring cardiac function and regeneration in diabetic models.
Area of Science:
- Cardiovascular Biology
- Stem Cell Biology
- Metabolic Disease Research
Background:
- Diabetes mellitus (DM) impairs cardiac stem/progenitor cell (CSC) function and myocardial regeneration.
- Cellular senescence and the senescence-associated secretory phenotype (SASP) are implicated in DM-related cardiac defects.
Purpose of the Study:
- To investigate if senescence and SASP are key mechanisms of cardiac dysfunction in DM.
- To determine if ablating senescent CSCs can rescue the cardiac regenerative defects caused by DM.
Main Methods:
- Assessed human CSCs (hCSCs) from type 2 diabetes mellitus (T2DM) and non-diabetic (NDM) patients.
- Utilized senolytics dasatinib (D) and quercetin (Q) in vitro and in a murine T2DM model.
- Evaluated CSC proliferation, differentiation, SASP, cardiac remodeling, and function.
Main Results:
- T2DM-hCSCs exhibited increased senescence, reduced function, and a pathological SASP compared to NDM-hCSCs.
- D + Q treatment cleared senescent T2DM-hCSCs in vitro, restoring their regenerative capacity.
- In vivo, D + Q treatment in a T2DM mouse model reduced CSC senescence, improved myocardial repair, and enhanced cardiac function.
Conclusions:
- DM induces CSC senescence and SASP, independently of aging, hindering cardiac regeneration.
- Senolytic therapy effectively eliminates senescent CSCs, abrogates SASP, and restores cardiac function in DM.
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