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Gastrulation01:56

Gastrulation

Gastrulation establishes the three primary tissues of an embryo: the ectoderm, mesoderm, and endoderm. This developmental process relies on a series of intricate cellular movements, which in humans transforms a flat, “bilaminar disc” composed of two cell sheets into a three-tiered structure. In the resulting embryo, the endoderm serves as the bottom layer, and stacked directly above it is the intermediate mesoderm, and then the uppermost ectoderm. Respectively, these tissue strata will form...
Determination01:51

Determination

During embryogenesis, cells become progressively committed to different fates through a two-step process: specification followed by determination. Specification is demonstrated by removing a segment of an early embryo, “neutrally” culturing the tissue in vitro—for example, in a petri dish with simple medium—and then observing the derivatives. If the cultured region gives rise to cell types that it would normally generate in the embryo, this means that it is specified. In contrast, determination...
Neurulation01:30

Neurulation

Neurulation is the embryological process which forms the precursors of the central nervous system and occurs after gastrulation has established the three primary cell layers of the embryo: ectoderm, mesoderm, and endoderm. In humans, the majority of this system is formed via primary neurulation, in which the central portion of the ectoderm—originally appearing as a flat sheet of cells—folds upwards and inwards, sealing off to form a hollow neural tube. As development proceeds, the anterior...
Development of the Sexual Organs in the Embryo and Fetus01:15

Development of the Sexual Organs in the Embryo and Fetus

Development of the reproductive organs in an embryo starts from a bipotential state. This means the early embryo can develop either male or female reproductive organs. The formation of these organs begins with the growth of gonadal ridges that arise from the intermediate mesoderm during the fifth week of development.
Near the gonadal ridges, two duct systems are present: the mesonephric ducts (Wolffian ducts) and paramesonephric ducts (Müllerian ducts). These ducts form the basis for the male...
Cleavage and Blastulation01:33

Cleavage and Blastulation

After a large-single-celled zygote is produced via fertilization, the process of cleavage occurs while zygotes travel through the uterine tube. Cleavage is a mitotic cell division that does not result in growth. With each round of successive cell division, daughter cells get increasingly smaller.
Embryonic Connective Tissues01:20

Embryonic Connective Tissues

During early development, the embryo forms two types of connective tissues— the mesenchyme and mucoid connective tissue.
The mesenchyme is the first connective tissue that emerges in the developing embryo. It consists of loosely arranged multipotent mesenchymal cells and reticular fibers in the extracellular matrix. This loose arrangement allows easy migration of cells, which is essential for germ layer positioning, patterning, and organ morphogenesis during embryonic development. Mesenchyme is...

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Related Experiment Video

Updated: May 22, 2026

Using Whole Mount in situ Hybridization to Link Molecular and Organismal Biology
12:50

Using Whole Mount in situ Hybridization to Link Molecular and Organismal Biology

Published on: March 31, 2011

PRC2 during vertebrate organogenesis: a complex in transition.

Issam Aldiri1, Monica L Vetter

  • 1Department of Neurobiology and Anatomy, University of Utah School of Medicine, Salt Lake City, UT 84132, USA.

Developmental Biology
|May 9, 2012
PubMed
Summary

Polycomb repressive complex 2 (PRC2) is crucial for cell differentiation during organ development. This review explores PRC2

Area of Science:

  • Developmental Biology
  • Epigenetics
  • Cellular Differentiation

Background:

  • Organogenesis involves progenitor cells exiting the cell cycle and undergoing differentiation.
  • This transition requires genetic reprogramming, including silencing proliferation genes and activating differentiation genes.
  • Epigenetic mechanisms are vital for cellular differentiation and maturation during organ development, crucial for regenerative medicine.

Purpose of the Study:

  • To review recent findings on the role of Polycomb repressive complex 2 (PRC2) in regulating proliferation-to-differentiation transitions.
  • To discuss the developmental functions of PRC2 in organogenesis.
  • To highlight outstanding questions regarding PRC2 regulation and mechanisms.

Main Methods:

  • Literature review of recent research on PRC2 function in organogenesis.

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Visualization of Chondrocyte Intercalation and Directional Proliferation via Zebrabow Clonal Cell Analysis in the Embryonic Meckel’s Cartilage
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Visualization of Chondrocyte Intercalation and Directional Proliferation via Zebrabow Clonal Cell Analysis in the Embryonic Meckel’s Cartilage

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Last Updated: May 22, 2026

Using Whole Mount in situ Hybridization to Link Molecular and Organismal Biology
12:50

Using Whole Mount in situ Hybridization to Link Molecular and Organismal Biology

Published on: March 31, 2011

Ex Vivo Culture of Pharyngeal Arches to Study Heart and Muscle Progenitors and Their Niche
07:04

Ex Vivo Culture of Pharyngeal Arches to Study Heart and Muscle Progenitors and Their Niche

Published on: July 20, 2015

Visualization of Chondrocyte Intercalation and Directional Proliferation via Zebrabow Clonal Cell Analysis in the Embryonic Meckel’s Cartilage
06:40

Visualization of Chondrocyte Intercalation and Directional Proliferation via Zebrabow Clonal Cell Analysis in the Embryonic Meckel’s Cartilage

Published on: October 21, 2015

  • Analysis of epigenetic mechanisms in cellular differentiation.
  • Examination of chromatin remodeling complexes in gene silencing.
  • Main Results:

    • PRC2, a chromatin remodeling complex, mediates gene silencing.
    • PRC2 plays a critical role in the step-wise transition from cell proliferation to differentiation.
    • Recent studies elucidate PRC2's involvement in regulating gene expression during organ development.

    Conclusions:

    • PRC2 is a key epigenetic regulator controlling cell fate decisions during organogenesis.
    • Understanding PRC2's function advances regenerative therapy research.
    • Further investigation is needed to fully elucidate PRC2's regulatory networks and action mechanisms.