Progenitor Maturation

Progenitor maturation is the biological process through which partially specialized progenitor cells acquire the identity and functional properties of mature cells, making it essential for tissue development and repair. In neuroscience, neural progenitors mature through coordinated changes in gene expression, cellular morphology, and signaling responses that guide their progression toward neuronal or glial fates. Studying this process helps explain how nervous systems form, how neural cell types become functionally integrated, and why maturation may be disrupted in disease. It also supports research using stem-cell-derived neural models for developmental studies, disease modeling, and potential regenerative strategies.

Progenitor Maturation - Related Videos

Research

JoVE Journal - Developmental Biology

Hypoxic Preconditioning of Marrow-derived Progenitor Cells As a Source for the Generation of Mature Schwann Cells

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Cited by 5 •

2017

Marrow stromal cells (MSCs) with neural potential exist within the bone marrow. Our protocol enriches this population of cells via hypoxic preconditioning and thereafter directs them to become mature Schwann cells.

Differentiation of Neural Progenitor Cells into Neurons

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2025

The video showcased a cell culture method for differentiating neural progenitor cells into neurons. By incubating cells in a nutrient-rich medium supplemented with growth factors, the progenitor cells matured into neurons with developed axons and dendrites. A stabilizing agent ensured cell viability and protected against oxidative damage throughout the differentiation process.

Differentiation and Maturation of Human Embryonic Stem Cells into Neural Organoids

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2025

In this video, a stepwise protocol for Human embryonic stem cells into neural organoids is demonstrated. The method involves inducing neuronal rosette formation, followed by controlled maturation and final culturing on a hydrophobic membrane to achieve fully developed neural organoids.

Generating Mature Cerebellar Organoids From Induced Pluripotent Stem Cells Using Single-Use Bioreactors

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2025

This video demonstrates a technique for generating mature cerebellar organoids from induced pluripotent stem cells (iPSCs) using a single-use 3D bioreactor. The bioreactor facilitates iPSC aggregate formation, which then undergoes treatment with a series of culture media enriched in growth factors and chemokines that induce the differentiation of the iPSC aggregates into mature cerebellar organoids. Subsequently, the organoids are harvested and cryopreserved for further analysis.

Education

JoVE Core - Cell Biology

Maturation of Endosomes

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2023

The early endosome containing internalized molecules matures through transformations in its location, morphology, intraluminal pH, and membrane protein composition. Together, these changes result in a more acidic late endosome that contains multiple intraluminal vesicles; therefore, the late endosome is also called a multivesicular body (MVB). Changes in location The maturing endosome moves along microtubules from the periphery of the cell towards the perinuclear region. This movement of the...

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