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Dtx2 Deficiency Induces Ependymo-Radial Glial Cell Proliferation and Improves Spinal Cord Motor Function Recovery.
- Source :
-
Stem cells and development [Stem Cells Dev] 2024 Oct; Vol. 33 (19-20), pp. 540-550. Date of Electronic Publication: 2024 Aug 09. - Publication Year :
- 2024
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Abstract
- Traumatic injury to the spinal cord can lead to significant, permanent disability. Mammalian spinal cords are not capable of regeneration; in contrast, adult zebrafish are capable of such regeneration, fully recovering motor function. Understanding the mechanisms underlying zebrafish neuroregeneration may provide useful information regarding endogenous regenerative potential and aid in the development of therapeutic strategies in humans. DELTEX proteins (DTXs) regulate a variety of cellular processes. However, their role in neural regeneration has not been described. We found that zebrafish dtx2 , encoding Deltex E3 ubiquitin ligase 2, is expressed in ependymo-radial glial cells in the adult spinal cord. After spinal cord injury, the heterozygous dtx2 mutant fish motor function recovered quicker than that of the wild-type controls. The mutant fish displayed increased ependymo-radial glial cell proliferation and augmented motor neuron formation. Moreover, her gene expression, downstream of Notch signaling, increased in Dtx2 mutants. Notch signaling inactivation by dominant-negative Rbpj abolished the increased ependymo-radial glia proliferation caused by Dtx2 deficiency. These results indicate that ependymo-radial glial proliferation is induced by Dtx2 deficiency by activating Notch-Rbpj signaling to improve spinal cord regeneration and motor function recovery.
- Subjects :
- Animals
Ependymoglial Cells metabolism
Ependymoglial Cells cytology
Motor Neurons metabolism
Signal Transduction genetics
Receptors, Notch metabolism
Receptors, Notch genetics
Neuroglia metabolism
Ubiquitin-Protein Ligases genetics
Ubiquitin-Protein Ligases metabolism
Motor Activity
Spinal Cord Regeneration
Mutation genetics
Zebrafish
Cell Proliferation genetics
Zebrafish Proteins genetics
Zebrafish Proteins metabolism
Spinal Cord Injuries metabolism
Spinal Cord Injuries genetics
Spinal Cord Injuries pathology
Spinal Cord Injuries physiopathology
Spinal Cord metabolism
Spinal Cord pathology
Recovery of Function
Subjects
Details
- Language :
- English
- ISSN :
- 1557-8534
- Volume :
- 33
- Issue :
- 19-20
- Database :
- MEDLINE
- Journal :
- Stem cells and development
- Publication Type :
- Academic Journal
- Accession number :
- 39001828
- Full Text :
- https://doi.org/10.1089/scd.2023.0247