Axonal Network Formation

Axonal network formation is the process by which developing neurons extend axons, navigate through tissue, and establish interconnected communication pathways. Axon growth cones sense chemical and physical guidance cues, reorganize their cytoskeleton, and advance toward target cells; subsequent branching and synapse formation refine these connections into functional circuits. In neuroscience, studying this process helps explain how neural networks develop, adapt, and recover after injury. Experimental models of axonal growth support research on neurodevelopmental disorders, neurodegenerative disease, neural regeneration, and engineered neural tissues, while imaging and culture methods reveal how molecular signals and cellular interactions shape connectivity.

Axonal Network Formation - Related Videos

Research

JoVE EoE - Danio rerio (zebrafish)

Two-Photon Laser Axotomy: A Method to Injure Axons in Zebrafish Embryos and Observe Axonal Recovery

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2023

This video describes the method to injure axons in zebrafish embryos using two photon laser axotomy and observing axonal recovery from injury.

A Microbiomechanical System for Studying Varicosity Formation and Recovery in Central Neuron Axons

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Cited by 4 •

2018

This protocol describes a physiologically relevant, pressurized fluid approach for rapid and reversible induction of varicosities in neurons.

Visualization of Thalamocortical Axon Branching and Synapse Formation in Organotypic Cocultures

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2018

This protocol describes a method for simultaneous imaging of thalamocortical axon branching and synapse formation in organotypic cocultures of the thalamus and cerebral cortex. Individual thalamocortical axons and their presynaptic terminals are visualized by a single cell electroporation technique with DsRed and GFP-tagged synaptophysin.

Laser Nanosurgery of Cerebellar Axons In Vivo

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Cited by 7 •

2014

Two-photon imaging, coupled to laser nanodissection, are useful tools to study degenerative and regenerative processes in the central nervous system with subcellular resolution. This protocol shows how to label, image, and dissect single climbing fibers in the cerebellar cortex in vivo.

Quadruple Immunostaining of the Olfactory Bulb for Visualization of Olfactory Sensory Axon Molecular Identity Codes

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2017

Olfactory sensory neurons express a wide variety of axon-sorting molecules to establish proper neural circuitry. This protocol describes an immunohistochemical staining method to visualize combinatorial expressions of axon-sorting molecules at the axon termini of olfactory sensory neurons.

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