Rohon-beard Neuron

Rohon-beard neurons are transient primary sensory neurons found in the developing spinal cord of many anamniote vertebrates, where they provide an early pathway for sensing the embryo’s environment. During development, these dorsal neurons extend peripheral axons into the skin and central axons along the spinal cord, allowing mechanical stimuli to activate signals that reach nascent sensorimotor circuits. They later undergo programmed cell death or are replaced as dorsal root ganglion neurons establish mature sensory pathways. Because their differentiation, axon guidance, synaptic connections, and elimination can be observed in model organisms such as zebrafish, Rohon-beard neurons are valuable for studying neural development, sensory circuit assembly, and regeneration.

Rohon-beard Neuron - Related Videos

Research

JoVE Journal - Neuroscience

Zebrafish In Situ Spinal Cord Preparation for Electrophysiological Recordings from Spinal Sensory and Motor Neurons

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Cited by 3 •

2017

This manuscript describes methods for electrophysiological recordings from spinal neurons of zebrafish embryos and larvae. The preparation maintains neurons in situ and often involves minimum dissection. These methods allow for the electrophysiological study of a variety of spinal neurons, from the initial electrical excitability acquisition through the early larval stages.

Zebrafish Optogenetics: Activating Genetically Modified Somatosensory Neuron to Study Larval Behavioral Responses

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2023

This video describes optogenetic techniques by activating genetically modified somatosensory neurons and recording elicited behavioral response with a high-speed video camera.

Optogenetic Activation of Zebrafish Somatosensory Neurons using ChEF-tdTomato

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Cited by 6 •

2013

Optogenetic techniques have made it possible to study the contribution of specific neurons to behavior. We describe a method in larval zebrafish for activating single somatosensory neurons expressing a channelrhodopsin variant (ChEF) with a diode-pumped solid state (DPSS) laser and recording the elicited behaviors with a high-speed video camera.

Research

JoVE Journal - Neuroscience
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Inducing Plasticity of Astrocytic Receptors by Manipulation of Neuronal Firing Rates

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Cited by 8 •

2014

Here we describe an adaptation of protocols used to induce homeostatic plasticity in neurons for the study of plasticity of astrocytic G protein-coupled receptors. Recently used to examine changes in astrocytic group I mGluRs in juvenile mice, the method can be applied to measure scaling of various astrocytic GPCRs, in tissue from adult mice in situ and in vivo, and to gain a better appreciation of the sensitivity of astrocytic receptors to changes in neuronal activity.

Direct Neuronal Reprogramming of Mouse Astrocytes into Neurons

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2025

This video showcases the direct reprogramming of astrocytes expressing transforming factors into neurons. Transformation factors trigger a cascade of molecular events facilitating astrocyte-to-neuron conversion. The process is further supported by supplying specific agents and supplements through a neuronal differentiation medium.

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