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Updated: Sep 18, 2025

In Vitro Generation of Heart Field-specific Cardiac Progenitor Cells
Published on: July 3, 2019
Epiblast-derived CX3CR1+ progenitors generate cardiovascular cells during cardiogenesis
Kyuwon Cho1, Mark Andrade1, S Khodayari Khodayari1
1Department of Medicine, Division of Cardiology, Emory University School of Medicine, Atlanta, GA, 30322, USA.
Insights
Embryonic CX3CR1+ cells are multipotent progenitors. These cells contribute to heart macrophages, cardiomyocytes, and endothelial cells during development and persist into adulthood.
Area of Science:
- Developmental biology
- Cardiovascular research
- Immunology
Background:
- CX3CR1+ cells are known to form tissue macrophages and offer cardioprotection in adult hearts.
- The precise origin and developmental role of CX3CR1+ cells during heart formation are not well understood.
Purpose of the Study:
- To investigate the embryonic origin and developmental fate of CX3CR1+ cells in the mouse heart.
- To determine if CX3CR1+ cells contribute to cardiac cell lineages beyond macrophages.
Main Methods:
- Genetic lineage tracing of CX3CR1+ cells and their progeny in mice.
- In vitro, ex vivo, and in vivo differentiation of CX3CR1+ cells from mouse embryonic stem cells.
- Single-cell RNA sequencing analysis.
Main Results:
- CX3CR1+ cells originate from epiblast cells at embryonic day E6.5.
- These cells differentiate into cardiomyocytes and endothelial cells, contributing to heart development via de novo differentiation and fusion.
- CX3CR1+ cells persist in the adult heart, comprising significant populations of cardiomyocytes and endothelial cells.
Conclusions:
- Embryonic CX3CR1+ cells are a multipotent progenitor population derived from the epiblast.
- They contribute to the formation of macrophages, cardiomyocytes, and endothelial cells in the developing and adult heart.
Abstract:
CX3CR1+ cells generate tissue macrophages in the developing heart and play cardioprotective roles in response to ischemic injuries in the adult heart. However, the origin and fate of CX3CR1+ cells during cardiogenesis remain unclear. Here, we performed genetic lineage tracing of CX3CR1+ cells and their progeny (termed Cx3cr1 lineage cells) in the mouse and demonstrated that they emerge from a subset of epiblast cells at embryonic day E6.5 and contribute to the parietal endoderm cells at E7.0. At E8.0-9.5 of development, Cx3cr1 lineage cells produced cardiomyocytes and endothelial cells via both de novo differentiation and fusion with pre-existing cardiomyocytes or endothelial cells, respectively. Cx3cr1 lineage cells persisted in the adult heart, comprising ~13% of cardiomyocytes and ~31% of endothelial cells. Additionally, CX3CR1+ cells differentiated from mouse embryonic stem cells generated cardiomyocytes, endothelial cells, and macrophages in vitro, ex vivo, and in vivo. Single-cell RNA sequencing revealed that Cx3cr1+ cells represent an intermediate cell population transitioning from embryonic stem cells to mesoderm. Taken together, embryonic CX3CR1+ cells constitute a multipotent epiblast-derived progenitor population that contributes not only to the formation of macrophages, but also of cardiomyocytes and endothelial cells.
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