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Stromal Cell Isolation From Hematopoietic Organs
Published on: January 26, 2024
Bone marrow-derived cells contribute to cell turnover in aging murine hearts
Sebastian Szardien1, Holger M Nef, Christian Troidl
1Department of Cardiology, Kerckhoff Heart Center, D-61231 Bad Nauheim, Germany.
Insights
Bone marrow-derived cells (BMCs) do not regenerate heart muscle in aging mice. Instead, BMCs transform into fibroblasts and myofibroblasts, aiding the heart
Area of Science:
- Cardiovascular Biology
- Stem Cell Biology
- Aging Research
Background:
- Cardiac myocytes were traditionally considered non-proliferating.
- Recent studies suggest bone marrow-derived cells (BMCs) can differentiate into cardiomyocytes after heart damage.
- The role of BMCs in the aging heart remains largely unknown.
Purpose of the Study:
- To investigate the role and differentiation potential of BMCs in the aging murine myocardium.
- To determine if BMCs contribute to cardiac regeneration or structural maintenance during physiological aging.
Main Methods:
- Bone marrow transplantation of enhanced green fluorescent protein (eGFP) transgenic cells into irradiated mice.
- Analysis of cell differentiation in the myocardium of young (4-month-old) and aged (18-month-old) mice.
- Quantification of eGFP+ cells, including cardiomyocytes, endothelial cells, smooth muscle cells, fibroblasts, and myofibroblasts.
Main Results:
- Aged mice showed a significant increase in eGFP+ cells in the myocardium compared to young controls.
- Very few eGFP+ cardiomyocytes were detected, excluding a significant role in cardiac regeneration.
- Numerous bone marrow-derived fibroblasts and myofibroblasts were identified in aged, but not young, hearts.
Conclusions:
- BMCs transdifferentiate into fibroblasts and myofibroblasts in the aging murine heart.
- These differentiated cells likely contribute to maintaining the structural integrity of the aging myocardium.
- BMCs do not appear to play a functional role in the regenerative processes of the aging heart.
Abstract:
The paradigm that cardiac myocytes are non-proliferating, terminally differentiated cells was recently challenged by studies reporting the ability of bone marrow-derived cells (BMCs) to differentiate into cardiomyocytes after myocardial damage. However, little knowledge exists about the role of BMCs in the heart during physiological aging. Twelve-week-old mice (n=36) were sublethally irradiated and bone marrow from littermates transgenic for enhanced green fluorescent protein (eGFP) was transplanted. After 4 weeks, 18 mice were sacrificed at the age of 4 months and served as controls (group A); the remaining mice were sacrificed at the age of 18 months (group B). Group A did not exhibit a significant number of eGFP+ cells, whereas 9.4±2.8 eGFP+ cells/mm2 was documented in group B. In total, only five eGFP+ cardiomyocytes were detected in 20 examined hearts, excluding a functional role of BM differentiation in cardiomyocytes. Similarly, a relevant differentiation of BMCs in endothelial or smooth muscle cells was excluded. In contrast, numerous BM-derived fibroblasts and myofibroblasts were observed in group B, but none were detected in group A. The present study demonstrates that BMCs transdifferentiate into fibroblasts and myofibroblasts in the aging murine myocardium, suggesting their contribution to the preservation of the structural integrity of the myocardium, while they do not account for regenerative processes of the heart.
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