Jove
Visualize
Contact Us
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Concept Videos

Spinal Cord01:26

Spinal Cord

The spinal cord, a critical component of the central nervous system, extends from the base of the brainstem to the lumbar region of the vertebral column. It is essential for maintaining physical stability and facilitating communication between the brain and peripheral parts of the body.
Spinal Cord Injury ll: Pathophysiology01:14

Spinal Cord Injury ll: Pathophysiology

Spinal cord injury progresses through two interconnected phases: primary injury and secondary injury.Primary InjuryPrimary injury happens at the moment of trauma and involves immediate mechanical damage to the spinal cord.Compression happens when broken vertebrae, herniated discs, or accumulating blood (such as a hematoma) press directly against the spinal cord, distorting its normal shape and function. In cases of contusion, the cord is bruised by a blunt force (like penetrating injuries or...
Secondary Spinal Cord Injury llI: Pathophysiology01:25

Secondary Spinal Cord Injury llI: Pathophysiology

Early Ischemia and Ionic ImbalanceWithin minutes of spinal cord injury, a secondary cascade begins, progressing over hours to weeks. Vascular damage reduces blood flow, causing ischemia and mitochondrial dysfunction. ATP depletion leads to ion pump failure, membrane depolarization, sodium influx, potassium efflux, and water accumulation, resulting in cellular swelling. Increased intracellular calcium further disrupts mitochondria and accelerates cellular injury.Excitotoxicity and Neuronal...
Satellite Stem Cells and Muscular Dystrophy01:21

Satellite Stem Cells and Muscular Dystrophy

Satellite stem cells or myosatellite cells are quiescent stem cells that Alexander Mauro first identified in 1961. These cells are located between the sarcolemma, the plasma membrane of muscle fibers, and the basal lamina, the connective tissue sheath covering it. These mononucleated cells are activated in response to muscle injury, can transform into myoblasts, and may form or repair muscle fibers. Myosatellite cells can provide additional myonuclei for muscle regeneration or return to a...
Neurogenesis and Regeneration of Nervous Tissue01:15

Neurogenesis and Regeneration of Nervous Tissue

In the CNS, neurogenesis, the birth of new neurons from stem cells, is limited to the hippocampus in adults. In other regions of the brain and spinal cord, neurogenesis is almost non-existent due to inhibitory influences from neuroglia, especially oligodendrocytes, and the absence of growth-stimulating cues. The myelin produced by oligodendrocytes in the CNS inhibits neuronal regeneration. Furthermore, astrocytes proliferate rapidly after neuronal damage, forming scar tissue that physically...
Nervous Tissue: Myelin01:25

Nervous Tissue: Myelin

The myelin sheath is a multilayered lipid and protein covering that insulates the axon of a neuron, enhancing the speed of nerve impulse conduction. Axons without this sheath are referred to as unmyelinated. Two types of neuroglia, Schwann cells in the peripheral nervous system (PNS) and oligodendrocytes in the central nervous system (CNS) are responsible for producing myelin sheaths.
Schwann cells begin to form myelin sheaths around axons during fetal development. They wrap around a small...

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Traumatic brain injury from a peripheral axis perspective: Uncovering the roles of liver and adipose tissue in temperature regulation.

Progress in neurobiology·2025
Same author

Trophic factors intervention regenerates the nestin-expressing cell population in a model of perinatal excitotoxicity: Implications for perinatal brain injury and prematurity.

Integrative molecular medicine·2022
Same author

BLOC-1 deficiency causes alterations in amino acid profile and in phospholipid and adenosine metabolism in the postnatal mouse hippocampus.

Scientific reports·2017
Same author

Exercise facilitates the action of dietary DHA on functional recovery after brain trauma.

Neuroscience·2013
Same author

A method for deriving homogenous population of oligodendrocytes from mouse embryonic stem cells.

Developmental neurobiology·2012
Same author

Exercise influences hippocampal plasticity by modulating brain-derived neurotrophic factor processing.

Neuroscience·2011

Related Experiment Video

Updated: Jun 14, 2026

Generation of Oligodendrocytes and Oligodendrocyte-Conditioned Medium for Co-Culture Experiments
09:05

Generation of Oligodendrocytes and Oligodendrocyte-Conditioned Medium for Co-Culture Experiments

Published on: February 9, 2020

Voluntary exercise increases oligodendrogenesis in spinal cord.

W Krityakiarana1, A Espinosa-Jeffrey, C A Ghiani

  • 1Intellectual and Developmental Disability Research Center, Semel Institute for Neuroscience and Human Behavior Department of Neurobiology, David Geffen, School of Medicine at UCLA, Los Angeles, California 90095, USA.

The International Journal of Neuroscience
|April 9, 2010
PubMed
Summary

Voluntary exercise promotes oligodendrocyte generation in the spinal cord. This suggests exercise may aid recovery from spinal cord injury.

More Related Videos

Preparation of Rat Oligodendrocyte Progenitor Cultures and Quantification of Oligodendrogenesis Using Dual-infrared Fluorescence Scanning
11:11

Preparation of Rat Oligodendrocyte Progenitor Cultures and Quantification of Oligodendrogenesis Using Dual-infrared Fluorescence Scanning

Published on: February 17, 2016

Differentiation of Embryonic Stem Cells into Oligodendrocyte Precursors
08:11

Differentiation of Embryonic Stem Cells into Oligodendrocyte Precursors

Published on: May 19, 2010

Related Experiment Videos

Last Updated: Jun 14, 2026

Generation of Oligodendrocytes and Oligodendrocyte-Conditioned Medium for Co-Culture Experiments
09:05

Generation of Oligodendrocytes and Oligodendrocyte-Conditioned Medium for Co-Culture Experiments

Published on: February 9, 2020

Preparation of Rat Oligodendrocyte Progenitor Cultures and Quantification of Oligodendrogenesis Using Dual-infrared Fluorescence Scanning
11:11

Preparation of Rat Oligodendrocyte Progenitor Cultures and Quantification of Oligodendrogenesis Using Dual-infrared Fluorescence Scanning

Published on: February 17, 2016

Differentiation of Embryonic Stem Cells into Oligodendrocyte Precursors
08:11

Differentiation of Embryonic Stem Cells into Oligodendrocyte Precursors

Published on: May 19, 2010

Area of Science:

  • Neuroscience
  • Regenerative Medicine
  • Exercise Physiology

Background:

  • Exercise is known to boost hippocampal neurogenesis.
  • The impact of exercise on spinal cord oligodendrocyte generation remains unexplored.

Purpose of the Study:

  • To investigate the effects of voluntary exercise on oligodendrogenesis in the thoracic spinal cord of adult mice.
  • To determine if exercise influences neural stem/progenitor cell proliferation and differentiation in the spinal cord.

Main Methods:

  • Adult nestin-GFP transgenic mice underwent voluntary exercise for 7 and 14 days.
  • Nestin-GFP expression was analyzed in the spinal cord's ependymal area, white matter, and gray matter.
  • Expression of oligodendrocyte markers (transferrin, CNPase) was quantified.

Main Results:

  • Voluntary exercise increased nestin-GFP expression around the ependymal area after 7 and 14 days.
  • Seven days of exercise significantly elevated nestin-GFP expression in both white and gray matter.
  • Markers for immature oligodendrocytes (transferrin, CNPase) were significantly increased after 7 days of exercise.

Conclusions:

  • Voluntary exercise positively influences oligodendrogenesis in the intact spinal cord.
  • Exercise may promote the generation of new oligodendrocytes in the spinal cord.
  • These findings highlight the potential of exercise as a complementary therapy for spinal cord injury.