Endoderm Differentiation

Endoderm differentiation is the developmental process through which pluripotent or progenitor cells acquire endodermal identity, forming the foundation of organs such as the liver, pancreas, lungs, and gastrointestinal tract. In bioengineering, researchers typically guide this transition by exposing cells to defined combinations of Activin or Nodal, Wnt, and FGF signals that reproduce key cues from early embryonic development and produce definitive endoderm. These engineered cells support organoid formation, disease modeling, drug testing, and regenerative medicine, while controlled differentiation protocols help improve cell purity, maturation, and reproducibility for tissue engineering applications.

Endoderm Differentiation - Related Videos

Research

JoVE Journal - Developmental Biology

A Quick and Efficient Method for the Purification of Endoderm Cells Generated from Human Embryonic Stem Cells

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Cited by 6 •

2016

Here, we describe a method for the purification of differentiated human embryonic stem cells that are committed towards the definitive endoderm for the improvement of downstream applications and further differentiations.

Primary Endodermal Epithelial Cell Culture from the Yolk Sac Membrane of Japanese Quail Embryos

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Cited by 6 •

2016

To study the mechanism of lipid utilization in yolk sac membranes during the late stages of avian embryonic development, we established a primary Japanese quail embryonic endodermal epithelial cell culture system.

Generation of Functional Endodermal Hepatic Organoids

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Cited by 1 •

2025

This protocol describes the generation of fast and reproducible endodermal hepatic organoids (eHEPOs). With this protocol, eHEPOs can be produced within 2 weeks and expand long-term (more than 1 year) without losing their differentiation and functionality.

Enhancing Stem Cell Differentiation with a Transient DMSO Treatment

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2025

This video demonstrates the method for enhancing stem cell differentiation with transient DMSO treatment, which arrests cells in the G1 phase. Post-treatment, an ectodermal differentiation medium with BMP and TGF-β inhibitors is added to promote neural precursor formation.

Differentiating Human Embryonic Stem Cells into Neural Progenitors

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2025

This video demonstrates the differentiation of human embryonic stem cells, or hESCs, directly into neural progenitor cells without using feeder cells or any intermediate steps. The selective inhibition of bone morphogenetic protein or BMP and transforming growth factor-beta, or TGF-β, signaling pathways leads to hESCs differentiation into neural progenitor cells, or NPCs.

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