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Updated: Feb 16, 2026

Preparation of Whole Bone Marrow for Mass Cytometry Analysis of Neutrophil-lineage Cells
Published on: June 19, 2019
Single-cell analysis of the fate of c-kit-positive bone marrow cells
Anna Czarna1,2, Fumihiro Sanada1, Alex Matsuda1,2
1Departments of Anesthesia and Medicine, and Division of Cardiovascular Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, MA 02115 USA.
Insights
Bone marrow stem cells expressing c-kit (c-kit-BMCs) are functionally diverse. A specific subgroup demonstrates plasticity, differentiating into cardiac cells within injured hearts, revealing potential for myocardial regeneration.
Area of Science:
- Cardiovascular Biology
- Stem Cell Biology
- Hematology
Background:
- The differentiation potential of c-kit-positive bone marrow cells (c-kit-BMCs) outside their native tissue is not fully understood.
- Existing population-based assays limit the characterization of individual stem cell properties.
Purpose of the Study:
- To investigate the functional heterogeneity of c-kit-BMCs.
- To determine if a subset of c-kit-BMCs possesses cardiomyogenic potential and can contribute to cardiac repair.
Main Methods:
- Employed single-cell based strategies including viral gene-tagging and multicolor clonal-marking.
- Utilized transcriptional profiling via RNA sequencing.
- Injected labeled c-kit-BMCs into infarcted mouse hearts to track their fate.
Main Results:
- Single c-kit-BMCs expanded clonally and differentiated into cardiomyocytes, endothelial cells, and fibroblasts within the infarcted myocardium.
- Multicolor reporters confirmed the polyclonal contribution of c-kit-BMCs to myocardial regeneration.
- RNA sequencing revealed enriched genes for engraftment, survival, migration, and differentiation in cardiomyogenic c-kit-BMCs.
Conclusions:
- A distinct subset of c-kit-BMCs exhibits plasticity, capable of cardiomyogenic, vasculogenic, and fibrogenic differentiation.
- These findings highlight the potential of specific c-kit-BMCs for cardiac tissue repair and regeneration.
- The bone marrow harbors functionally heterogeneous c-kit-positive cell populations with varying differentiation capacities.
Abstract:
The plasticity of c-kit-positive bone marrow cells (c-kit-BMCs) in tissues different from their organ of origin remains unclear. We tested the hypothesis that c-kit-BMCs are functionally heterogeneous and only a subgroup of these cells possesses cardiomyogenic potential. Population-based assays fall short of identifying the properties of individual stem cells, imposing on us the introduction of single cell-based approaches to track the fate of c-kit-BMCs in the injured heart; they included viral gene-tagging, multicolor clonal-marking and transcriptional profiling. Based on these strategies, we report that single mouse c-kit-BMCs expand clonally within the infarcted myocardium and differentiate into specialized cardiac cells. Newly-formed cardiomyocytes, endothelial cells, fibroblasts and c-kit-BMCs showed in their genome common sites of viral integration, providing strong evidence in favor of the plasticity of a subset of BMCs expressing the c-kit receptor. Similarly, individual c-kit-BMCs, which were infected with multicolor reporters and injected in infarcted hearts, formed cardiomyocytes and vascular cells organized in clusters of similarly colored cells. The uniform distribution of fluorescent proteins in groups of specialized cells documented the polyclonal nature of myocardial regeneration. The transcriptional profile of myogenic c-kit-BMCs and whole c-kit-BMCs was defined by RNA sequencing. Genes relevant for engraftment, survival, migration, and differentiation were enriched in myogenic c-kit-BMCs, a cell subtype which could not be assigned to a specific hematopoietic lineage. Collectively, our findings demonstrate that the bone marrow comprises a category of cardiomyogenic, vasculogenic and/or fibrogenic c-kit-positive cells and a category of c-kit-positive cells that retains an undifferentiated state within the damaged heart.
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