Neuronal activation in the axolotl brain promotes tail regeneration.

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Main Authors: Walker, S E, Yu, K, Burgess, S, Echeverri, K
Format: Artículo científico
Language:en
Published: NPJ Regenerative medicine 2025
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author Walker, S E
Yu, K
Burgess, S
Echeverri, K
author_facet Walker, S E
Yu, K
Burgess, S
Echeverri, K
Walker, S E
Yu, K
Burgess, S
Echeverri, K
collection PubMed - marine biology
contents Neuronal activation in the axolotl brain promotes tail regeneration. Walker, S E Yu, K Burgess, S Echeverri, K The axolotl retains a remarkable capacity for regenerative repair and is one of the few vertebrate species capable of regenerating its brain and spinal cord after injury. To date, studies investigating axolotl spinal cord regeneration have placed particular emphasis on understanding how cells immediately adjacent to the injury site respond to damage to promote regenerative repair. How neurons outside of this immediate injury site respond to an injury remains unknown. Here, we identify a population of dpErk/etv1 glutamatergic neurons in the axolotl telencephalon that are activated in response to injury and are essential for tail regeneration. Furthermore, these neurons project to the hypothalamus where they upregulate the neuropeptide neurotensin in response to injury. Together, these findings identify a unique population of neurons in the axolotl brain whose activation is necessary for successful tail regeneration, and sheds light on how neurons outside of the immediate injury site respond to an injury.
format Artículo científico
id pubmed_40341072
institution PubMed
language en
publishDate 2025
publisher NPJ Regenerative medicine
record_format pubmed
spellingShingle Neuronal activation in the axolotl brain promotes tail regeneration.
Walker, S E
Yu, K
Burgess, S
Echeverri, K
Neuronal activation in the axolotl brain promotes tail regeneration. Walker, S E Yu, K Burgess, S Echeverri, K The axolotl retains a remarkable capacity for regenerative repair and is one of the few vertebrate species capable of regenerating its brain and spinal cord after injury. To date, studies investigating axolotl spinal cord regeneration have placed particular emphasis on understanding how cells immediately adjacent to the injury site respond to damage to promote regenerative repair. How neurons outside of this immediate injury site respond to an injury remains unknown. Here, we identify a population of dpErk/etv1 glutamatergic neurons in the axolotl telencephalon that are activated in response to injury and are essential for tail regeneration. Furthermore, these neurons project to the hypothalamus where they upregulate the neuropeptide neurotensin in response to injury. Together, these findings identify a unique population of neurons in the axolotl brain whose activation is necessary for successful tail regeneration, and sheds light on how neurons outside of the immediate injury site respond to an injury.
title Neuronal activation in the axolotl brain promotes tail regeneration.
url https://pubmed.ncbi.nlm.nih.gov/40341072/