Cardiac Feeder Layers

Cardiac feeder layers are supportive cell monolayers used to provide a controlled microenvironment for studying heart development and maintaining or differentiating cardiac progenitor cells. They work through a combination of cell-cell contact, extracellular matrix deposition, and secretion of paracrine signals that influence cell survival, proliferation, lineage specification, and maturation. In developmental biology, cardiac feeder layers can help model interactions between developing cardiac cells and their surrounding tissues under laboratory conditions. These cultures support investigations of cardiogenesis, tissue organization, and developmental signaling, while also providing a platform for evaluating how genetic or environmental changes affect cardiac cell fate and function.

Cardiac Feeder Layers - Related Videos

Research

JoVE EoE - Neuronal Culture Techniques

Generating an Ultra-Low-Density Neuronal Culture Using a High-Density Neuronal Feeder Layer

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2025

This video demonstrates the method for culturing ultra-low-density neurons in the presence of a high-density neuronal feeder layer. It establishes a co-culture of varying-density neurons, ensuring close physical proximity. The growth factors secreted by high-density neurons help neuronal survival and growth, maintaining ultra-low-density neurons for a longer time period.

Research

JoVE Journal - Biology
Free Sample

Feeder-Free Adaptation, Culture and Passaging of Human IPS Cells using Complete KnockOut Serum Replacement Feeder-Free Medium

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Cited by 14 •

2010

The following protocol provides instruction for adapting human induced Pluripotent Stem (iPS) Cells to feeder-free culture using complete KnockOut Serum Replacement Feeder-Free medium (KSR-FF). Once adapted, instructions for continual maintenance are also provided.

Generation of Human Cardiomyocytes: A Differentiation Protocol from Feeder-free Human Induced Pluripotent Stem Cells

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Cited by 15 •

2013

Pluripotent stem cells, either embryonic or induced pluripotent stem (iPS) cells, constitute a valuable source of human differentiated cells, including cardiomyocytes. Here, we will focus on cardiac induction of iPS cells, showing how to use them to obtain functional human cardiomyocytes through an embryoid bodies-based protocol.

Generation of Murine Cardiac Pacemaker Cell Aggregates Based on ES-Cell-Programming in Combination with Myh6-Promoter-Selection

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Cited by 13 •

2015

This protocol describes how to produce functional sinus nodal tissue from murine pluripotent stem cells (PSC). T-Box3 (TBX3) overexpression plus cardiac Myosin-heavy-chain (Myh6) promoter antibiotic selection leads to highly pure pacemaker cell aggregates. These “Induced-sinoatrial-bodies” (“iSABs”) contain over 80% pacemaker cells, show highly increased beating rates and are able to pace myocardium ex vivo.

Collection of Serum- and Feeder-free Mouse Embryonic Stem Cell-conditioned Medium for a Cell-free Approach

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Cited by 2 •

2017

This protocol provides a method for the collection of mouse embryonic stem cell (mESC)-conditioned medium (mESC-CM) derived from serum (fetal bovine serum, FBS)- and feeder (mouse embryonic fibroblasts, MEFs)-free conditions for a cell-free approach. It may be applicable for the treatment of aging and aging-associated diseases.

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