Neuronal Growth

Neuronal growth is the process through which neurons extend, refine, and maintain their axons and dendrites, forming connections that support nervous system development and function. It depends on cytoskeletal remodeling and guidance signals that direct growth cones toward appropriate targets, while trophic factors and cell-adhesion molecules influence survival, branching, and synapse formation. In neuroscience, studying neuronal growth helps explain brain development, circuit organization, and neural plasticity. It also informs research on nerve injury, neurodegenerative disease, and regenerative strategies designed to restore damaged neural connections.

Neuronal Growth - 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

Inducing Dendritic Growth in Cultured Sympathetic Neurons

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Cited by 10 •

2012

We describe a protocol for using bone morphogenetic protein-7 (BMP-7) or Matrigel to selectively induce dendritic growth in primary sympathetic neurons dissociated from the superior cervical ganglia (SCG) of perinatal rats.

Neuronal Cell Cultures from Aplysia for High-Resolution Imaging of Growth Cones

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Cited by 18 •

2008

Aplysia californica neurons develop large growth cones in culture that are excellent for high-resolution imaging of growth cone motility and guidance. Here, we present a protocol for dissection and plating of Aplysia bag cell neurons as well as for setting up a chamber for live cell imaging.

Determining a Test Growth Hormone Effect on Kisspeptin Neurons using a Whole-Cell Patch Clamp

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2025

This video demonstrates the use of the whole-cell patch-clamp technique to measure responses in kisspeptin neurons from transfected mouse hypothalamic slices. The process involves achieving whole-cell configuration and recording membrane potential changes induced by the test hormone using current-clamp mode.

In Vitro Assessment of Aggregated Amyloid-β on Neuronal Growth Cone Collapse

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2025

This video demonstrates an in vitro assessment of neuronal growth cone collapse by amyloid-β (Aβ) aggregates. Treating the neurons with Aβ aggregates causes cytoskeletal destabilization, leading to the collapse of growth cones at the tip of the axons. The treated cells are compared with control cells to assess the extent of growth cone collapse.

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