Cardiac Lineage Tracking

Cardiac lineage tracking is the study and mapping of how cells contribute to the formation, maintenance, and repair of cardiac tissues, making cell fate relationships visible across development and disease. It typically labels progenitor or mature cells with heritable genetic markers, fluorescent reporters, or molecular barcodes, then follows their descendants through imaging or sequencing. In bioengineering, these approaches help evaluate stem-cell differentiation, engineered heart tissues, organoids, and cardiac regeneration strategies by revealing lineage commitment, cell migration, and integration. The resulting maps improve interpretation of model systems and support the design of therapies that generate functional cardiomyocytes and other cardiac cell types.

Cardiac Lineage Tracking - Related Videos

Research

JoVE Journal - Neuroscience
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Live Imaging Followed by Single Cell Tracking to Monitor Cell Biology and the Lineage Progression of Multiple Neural Populations

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Cited by 12 •

2017

A robust protocol to monitor neural populations by time-lapse video-microscopy followed by software-based post-processing is described. This method represents a powerful tool to identify biological events in a selected population during live imaging experiments.

Research

JoVE EoE - Neuroimaging

Live Imaging and Single-Cell Tracking to Monitor Neural Lineage in Adult Neural Stem Cells

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2025

Source: Gómez-Villafuertes, R., et. al., Live Imaging Followed by Single Cell Tracking to Monitor Cell Biology and the Lineage Progression of Multiple Neural Populations. J. Vis. Exp. (2017) The video demonstrates the process of preparing, imaging, and tracking adult neural stem cells in real time to study cellular behaviors, including division and differentiation.

Education

JoVE Core - Cell Biology

Lineage Commitment

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2023

Commitment is the process whereby stem cells: lose their ability to form all cell types and irreversibly change into a specific type. The multipotent hematopoietic stem cells, (HSCs), differentiate into the multipotent hematopoietic progenitor cells, (HPCs). The HPCs express many lineage-specific cytokine receptors. Each of these receptors binds specific cytokines, activates distinct signaling pathways, and expresses a particular gene set. The HPCs further differentiate to form committed...

Tracking and Quantifying Developmental Processes in C. elegans Using Open-source Tools

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Cited by 9 •

2015

Here it is shown how to track and quantify developmental processes in C. elegans. The methods presented are based on open-source tools that can be easily implemented. It is demonstrated how to reconstruct 3D cell-shape models, how to manually track subcellular structures, and how to analyze cortical contractile flow.

Visualization of Streptococcus pneumoniae within Cardiac Microlesions and Subsequent Cardiac Remodeling

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Cited by 11 •

2015

Streptococcus pneumoniae forms discrete non-purulent microscopic lesions in the heart. Outlined is the protocol for a murine model of cardiac microlesion formation. Instruction is provided on microlesion visualization using microscopy, discrimination between early and late microlesions, and methods to detect cardiac remodeling in hearts of convalescent animals.

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