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Updated: Apr 26, 2026

Zebrafish In Situ Spinal Cord Preparation for Electrophysiological Recordings from Spinal Sensory and Motor Neurons
Published on: April 18, 2017
Mmp25β facilitates elongation of sensory neurons during zebrafish development
Bryan D Crawford1, Michelle D Po, Pillai V Saranyan
1Department of Biology, University of New Brunswick, New Brunswick, Canada; Department of Biological Sciences, University of Alberta, Alberta, Canada; Department of Pharmacology, University of Alberta, Alberta, Canada.
Abstract:
Matrix metalloproteinases (MMPs) are a large and complex family of zinc-dependent endoproteinases widely recognized for their roles in remodeling the extracellular matrix (ECM) during embryonic development, wound healing, and tissue homeostasis. Their misregulation is central to many pathologies, and they have therefore been the focus of biomedical research for decades. These proteases have also recently emerged as mediators of neural development and synaptic plasticity in vertebrates, however, understanding of the mechanistic basis of these roles and the molecular identities of the MMPs involved remains far from complete. We have identified a zebrafish orthologue of mmp25 (a.k.a. leukolysin; MT6-MMP), a membrane-type, furin-activated MMP associated with leukocytes and invasive carcinomas, but which we find is expressed by a subset of the sensory neurons during normal embryonic development. We detect high levels of Mmp25β expression in the trigeminal, craniofacial, and posterior lateral line ganglia in the hindbrain, and in Rohon-Beard cells in the dorsal neural tube during the first 48 h of embryonic development. Knockdown of Mmp25β expression with morpholino oligonucleotides results in larvae that are uncoordinated and insensitive to touch, and which exhibit defects in the development of sensory neural structures. Using in vivo zymography, we observe that Mmp25β morphant embryos show reduced Type IV collagen degradation in regions of the head traversed by elongating axons emanating from the trigeminal ganglion, suggesting that Mmp25β may play a pivotal role in mediating ECM remodeling in the vicinity of these elongating axons.
Insights
Matrix metalloproteinase 25 (MMP25) is crucial for sensory neuron development in zebrafish. Its knockdown impairs touch sensitivity and axonal pathfinding, highlighting its role in neural extracellular matrix remodeling.
Area of Science:
- Neuroscience
- Developmental Biology
- Biochemistry
Background:
- Matrix metalloproteinases (MMPs) are key enzymes in extracellular matrix (ECM) remodeling, implicated in development and disease.
- MMPs are increasingly recognized for their roles in neural development and synaptic plasticity.
- The specific MMPs and mechanisms involved in vertebrate neural development are not fully understood.
Purpose of the Study:
- To identify and characterize the role of a zebrafish MMP25 orthologue (Mmp25β) in embryonic neural development.
- To investigate the function of Mmp25β in sensory neuron development and ECM remodeling.
Main Methods:
- Identification of a zebrafish mmp25 orthologue (Mmp25β).
- Analysis of Mmp25β expression patterns in developing zebrafish embryos.
- Knockdown of Mmp25β using morpholino oligonucleotides.
- Assessment of larval behavior (coordination, touch sensitivity) and sensory neural structure development.
- In vivo zymography to assess Type IV collagen degradation.
Main Results:
- Mmp25β is expressed in specific sensory neurons (trigeminal, craniofacial, posterior lateral line ganglia, Rohon-Beard cells) during early zebrafish embryonic development.
- Mmp25β knockdown results in uncoordinated larvae with impaired touch sensitivity and defective sensory neural development.
- Mmp25β morphants exhibit reduced Type IV collagen degradation near elongating trigeminal axons.
Conclusions:
- Zebrafish Mmp25β plays a significant role in sensory neural development.
- Mmp25β is involved in the remodeling of the ECM surrounding developing sensory axons.
- These findings suggest Mmp25β is a key mediator of neural development and axonal guidance.

