Axonal Tract Engineering

Axonal tract engineering is the design of biological or biomaterial-based structures that guide axon growth and reconnect separated regions of the nervous system. In neuroscience, it combines principles of neural development, tissue engineering, and regenerative medicine by providing aligned physical pathways and supportive chemical or cellular cues that direct axonal extension toward specific targets. Researchers use engineered scaffolds, extracellular matrix components, and supportive cells to promote tract formation across damaged neural tissue. This approach may help restore communication after spinal cord or brain injury, improve models of neural development and disease, and advance strategies for repairing complex circuits.

Axonal Tract Engineering - Related Videos

Research

JoVE Journal - Bioengineering
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Axon Stretch Growth: The Mechanotransduction of Neuronal Growth

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Cited by 30 •

2011

A unique tissue engineering method was developed to elongate numerous nerve fibers in culture by recapitulating axon stretch growth; a form of nervous system growth whereby nerves elongate in conjunction with growth of the enlarging body.

Research

JoVE Journal - Neuroscience

Retrograde Loading of Nerves, Tracts, and Spinal Roots with Fluorescent Dyes

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Cited by 5 •

2012

We describe a simple and low cost technique for introducing high concentration of fluorescent and calcium-sensitive dyes into neurons or any neuronal tract using a polyethylene suction pipette.

BioMEMS: Forging New Collaborations Between Biologists and Engineers

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Cited by 1 •

2007

This video describes the fabrication and use of a microfluidic device to culture central nervous system (CNS) neurons. This device is compatible with ...

Anatomically Inspired Three-dimensional Micro-tissue Engineered Neural Networks for Nervous System Reconstruction, Modulation, and Modeling

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Cited by 40 •

2017

This manuscript details the fabrication of micro-tissue engineered neural networks: three-dimensional micron-sized constructs comprised of long aligned axonal tracts spanning aggregated neuronal population(s) encased in a tubular hydrogel. These living scaffolds can serve as functional relays to reconstruct or modulate neural circuitry or as biofidelic test-beds mimicking gray-white matter neuroanatomy.

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.

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