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Published on: September 3, 2020
Cardiac dysfunction and impaired compensatory response to pressure overload in mice deficient in stem cell antigen-1
Nathalie Rosenblatt-Velin1, Sandy Ogay, Allison Felley
1Department of Medicine, University of Lausanne Medical School, Lausanne, Switzerland.
Insights
Stem cell antigen-1 (Sca-1) deficiency in mice leads to dilated cardiomyopathy and increased susceptibility to heart stress. Sca-1 normally restrains cardiac precursor cell differentiation, preventing uncontrolled proliferation and dysfunction.
Area of Science:
- Cardiovascular Biology
- Stem Cell Research
- Cardiac Aging and Stress Response
Background:
- Stem cell antigen-1 (Sca-1) is a marker used to identify cardiac stem cells in mice.
- The role of Sca-1 in cardiac aging and adaptation to stress is not fully understood.
- Understanding Sca-1's function is crucial for developing strategies to combat heart disease.
Purpose of the Study:
- To investigate the functional role of Sca-1 in the aging and stressed mouse heart.
- To determine the impact of Sca-1 deficiency on cardiac structure, function, and cellular responses.
- To elucidate Sca-1's involvement in cardiac precursor cell (CPC) behavior.
Main Methods:
- Utilized Sca-1-deficient (Sca-1-KO) mice and wild-type (WT) littermates.
- Assessed cardiac function and structure using echocardiography.
- Quantified apoptosis via TUNEL staining and cell proliferation via BrdU incorporation.
- Analyzed cardiac precursor cell populations (Nkx2.5+) and their differentiation potential in vitro.
Main Results:
- Sca-1-KO mice developed dilated cardiomyopathy with impaired ejection fraction.
- Sca-1 deficiency exacerbated cardiac dysfunction and apoptosis under pressure overload (TAC).
- Sca-1 absence reduced Nkx2.5+ CPCs but led to unrestricted CPC differentiation and increased nonmyocyte proliferation.
- Sca-1 deficiency resulted in uncontrolled precursor recruitment and exhaustion of the precursor pool.
Conclusions:
- Sca-1 plays a critical role in maintaining cardiac integrity.
- Sca-1 acts as a brake on spontaneous differentiation in cardiac precursor cells.
- Absence of Sca-1 leads to cardiac dysfunction through uncontrolled precursor cell dynamics.
Abstract:
Stem cell antigen-1 (Sca-1) has been used to identify cardiac stem cells in the mouse heart. To investigate the function of Sca-1 in aging and during the cardiac adaptation to stress, we used Sca-1-deficient mice. These mice developed dilated cardiomyopathy [end-diastolic left ventricular diameter at 18 wk of age: wild-type (WT) mice, 4.2 mm ± 0.3; Sca-1-knockout (Sca-1-KO) mice, 4.6 mm ± 0.1; ejection fraction: WT mice, 51.1 ± 2.7%; Sca-1-KO mice, 42.9 ± 2.7%]. Furthermore, the hearts of mice lacking Sca-1 demonstrated exacerbated susceptibility to pressure overload [ejection fraction after transaortic constriction (TAC): WT mice, 43.5 ± 3.2%; Sca-1-KO mice, 30.8% ± 4.0] and increased apoptosis, as shown by the 2.5-fold increase in TUNEL(+) cells in Sca-1-deficient hearts under stress. Sca-1 deficiency affected primarily the nonmyocyte cell fraction. Indeed, the number of Nkx2.5(+) nonmyocyte cells, which represent a population of cardiac precursor cells (CPCs), was 2-fold smaller in Sca-1 deficient neonatal hearts. In vitro, the ability of CPCs to differentiate into cardiomyocytes was not affected by Sca-1 deletion. In contrast, these cells demonstrated unrestricted differentiation into cardiomyocytes. Interestingly, proliferation of cardiac nonmyocyte cells in response to stress, as judged by BrdU incorporation, was higher in mice lacking Sca-1 (percentages of BrdU(+) cells in the heart after TAC: WT mice, 4.4 ± 2.1%; Sca-1-KO mice, 19.3 ± 4.2%). These data demonstrate the crucial role of Sca-1 in the maintenance of cardiac integrity and suggest that Sca-1 restrains spontaneous differentiation in the precursor population. The absence of Sca-1 results in uncontrolled precursor recruitment, exhaustion of the precursor pool, and cardiac dysfunction.
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