Functional Regeneration

Functional regeneration is the restoration of lost physiological function after tissue damage, extending beyond structural repair to recover how cells, organs, or neural circuits operate. In neuroscience, it can involve axonal regrowth, remyelination, synaptic plasticity, and reorganization of surviving circuits, allowing signals to travel through repaired or newly adapted pathways. Studying these mechanisms helps explain recovery after spinal cord injury, stroke, and peripheral nerve damage, while guiding rehabilitation strategies, regenerative therapies, and neuroprosthetic design. Functional regeneration therefore provides a framework for evaluating whether an intervention restores meaningful nervous-system performance rather than simply producing anatomical repair.

Functional Regeneration - Related Videos

Research

JoVE Journal - Biology
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Pharmacological and Functional Genetic Assays to Manipulate Regeneration of the Planarian Dugesia japonica

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Cited by 17 •

2011

An attractive model for studying stem cell differentiation within a live animal is the planarian flatworm. Regeneration is studied by simple amputation experiments that are easily performed in a basic laboratory and are amenable to pharmacological and genetic (in vivo RNAi) manipulation as detailed by protocols in this article.

Education

JoVE Science Education - Advanced Biology

An Introduction to Aging and Regeneration

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2023

Tissues are maintained through a balance of cellular aging and regeneration. Aging refers to the gradual loss of cellular function, and regeneration is the repair of damaged tissue generally mediated by preexisting adult or somatic stem cells. Scientists are interested in understanding the biological mechanisms behind these two complex processes. By doing so, researchers may be able to use somatic stem cells to treat degenerative diseases and develop therapies that could delay the effects of...

Research

JoVE Journal - Neuroscience
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Investigating Functional Regeneration in Organotypic Spinal Cord Co-cultures Grown on Multi-electrode Arrays

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Cited by 4 •

2015

Here we present a protocol that is based on spinal cord slices cultured on multi-electrode arrays to study functional regeneration of propriospinal connections in vitro.

Studying the Regeneration of Functional Connections between Spinal Cord Slices Using a Multi-Electrode Array

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2025

The video demonstrates the functional regeneration of propriospinal connections using a multi-electrode array (MEA)-based assay. The spinal cord slices are placed on the MEA and are allowed to fuse. The fused slices are mechanically separated by creating a lesion, inducing propriospinal neurons to grow over the lesion and connect the slices. The electrical activity of the slices is assessed to identify the regeneration of functional connections.

Research

JoVE Journal - Biology
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A System for Culturing Iris Pigment Epithelial Cells to Study Lens Regeneration in Newt

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Cited by 7 •

2011

In newt, the lens regenerates always from the dorsal iris by transdifferentiation of the iris pigmented epithelial cells (IPEs). Here we describe a procedure to culture dorsal and ventral newt IPE cells and their implantation to the newt eye. The implanted cells are then studied by tissue sectioning and immunohistochemistry.

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