Pathologic Stimulus Determines Lineage Commitment of Cardiac C-kit<sup>+</sup> Cells.
basic_science · Level V
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- Record sourced from PubMed, PMID 29021323.
- Also identified by DOI 10.1161/CIRCULATIONAHA.117.030137 and PMC identifier 5726921.
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Abstract
Although cardiac c-kit<sup>+</sup> cells are being tested in clinical trials, the circumstances that determine lineage differentiation of c-kit<sup>+</sup> cells in vivo are unknown. Recent findings suggest that endogenous cardiac c-kit<sup>+</sup> cells rarely contribute cardiomyocytes to the adult heart. We assessed whether various pathological stimuli differentially affect the eventual cell fates of c-kit<sup>+</sup> cells. We used single-cell sequencing and genetic lineage tracing of c-kit<sup>+</sup> cells to determine whether various pathological stimuli would result in different fates of c-kit<sup>+</sup> cells. Single-cell sequencing of cardiac CD45<sup>-</sup>c-kit<sup>+</sup> cells showed innate heterogeneity, indicative of the existence of vascular and mesenchymal c-kit<sup>+</sup> cells in normal hearts. Cardiac pressure overload resulted in a modest increase in c-kit-derived cardiomyocytes, with significant increases in the numbers of endothelial cells and fibroblasts. Doxorubicin-induced acute cardiotoxicity did not increase c-kit-derived endothelial cell fates but instead induced cardiomyocyte differentiation. Mechanistically, doxorubicin-induced DNA damage in c-kit<sup>+</sup> cells resulted in expression of p53. Inhibition of p53 blocked cardiomyocyte differentiation in response to doxorubicin, whereas stabilization of p53 was sufficient to increase c-kit-derived cardiomyocyte differentiation. These results demonstrate that different pathological stimuli induce different cell fates of c-kit<sup>+</sup> cells in vivo. Although the overall rate of cardiomyocyte formation from c-kit<sup>+</sup> cells is still below clinically relevant levels, we show that p53 is central to the ability of c-kit<sup>+</sup> cells to adopt cardiomyocyte fates, which could lead to the development of strategies to preferentially generate cardiomyocytes from c-kit<sup>+</sup> cells.
Medical subject headings
- Endothelial Cells
- Mesenchymal Stem Cells
- Myocardium
- Myocytes, Cardiac
- Tumor Suppressor Protein p53