Deep Ectoderm Cells

Deep ectoderm cells are the inner population of ectodermal cells in an early embryo, where they help generate tissues such as the nervous system and surface epithelium. During gastrulation and neurulation, these cells change shape, migrate, and respond to signaling gradients, including pathways that regulate neural specification and the balance between neural and epidermal fates. Studying deep ectoderm cells helps researchers understand germ-layer organization, tissue patterning, and the cellular origins of the brain, spinal cord, and skin. Their behavior also provides a foundation for investigating developmental disorders and for improving stem-cell differentiation into ectoderm-derived tissues.

Deep Ectoderm Cells - Related Videos

Research

JoVE Journal - Biology

Separation of Mouse Embryonic Facial Ectoderm and Mesenchyme

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Cited by 23 •

2013

A protocol for separation of embryo facial ectoderm and mesenchyme is described. We use Dispase II to treat whole embryos first, dissect whole facial prominences out, and then separate the facial ectoderm and mesenchyme.

Assessing Signaling Properties of Ectodermal Epithelia During Craniofacial Development

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Cited by 7 •

2011

This article describes a tissue transplantation technique that was designed to test the signaling and patterning properties of surface cephalic ectoderm during craniofacial development.

Polarized Translocation of Fluorescent Proteins in Xenopus Ectoderm in Response to Wnt Signaling

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Cited by 2 •

2011

Xenopus embryonic ectoderm has become an attractive model for studies of cell polarity. An assay is described, in which subcellular distribution of fluorescent proteins is assessed in ectoderm cells. This protocol will help address questions related to spatial control of signaling.

Targeting of Deep Brain Structures with Microinjections for Delivery of Drugs, Viral Vectors, or Cell Transplants

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Cited by 23 •

2010

In this article, we show a method to make glass capillary needles with a 50-μm lumen. This technique significantly reduces the brain damage, minimizes passive diffusion of drugs and allows a precise targeting into the rodent brain.

In vivo Imaging of Deep Cortical Layers using a Microprism

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Cited by 11 •

2009

Right-angle microprisms inserted into the mouse neocortex allows for deep imaging of multiple cortical layers with a viewpoint typically found in slice. One-millimeter microprisms offer a wide field-of-view (~900 μm) and spatial resolutions sufficient to resolve dendritic spines. We demonstrate layer V neuronal imaging and neocortical vascular imaging using microprisms.

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