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Updated: Jun 28, 2026

Zebrafish In Situ Spinal Cord Preparation for Electrophysiological Recordings from Spinal Sensory and Motor Neurons
Published on: April 18, 2017
Secondary motoneurons in juvenile and adult zebrafish: axonal pathfinding errors caused by embryonic nicotine
Evdokia Menelaou1, Kurt R Svoboda
1Department of Biological Sciences, Louisiana State University, Baton Rouge, Louisiana 70803, USA.
Abstract:
Nicotine is a drug of abuse that has been reported to have many adverse effects on the developing nervous system. We previously demonstrated that embryonic exposure to nicotine alters axonal pathfinding of spinal secondary motoneurons in zebrafish. We hypothesize that these changes will persist into adulthood. The Tg(isl1:GFP) line of zebrafish, which expresses green fluorescent protein (GFP) in a subtype of spinal secondary motoneurons, was used to investigate potential long-term consequences of nicotine exposure on motoneuron development. Anatomical characterization of Tg(isl1:GFP) zebrafish ranging between 3 and 30 days postfertilization (dpf) was initially performed in fixed tissue to characterize axonal trajectories in larval and juvenile fish. Tg(isl1:GFP) embryos were transiently exposed to 5-30 microM nicotine. They were then rescued from nicotine and raised into later stages of life (3-30 dpf) and fixed for microscopic examination. Morphological analysis revealed that nicotine-induced abnormalities in secondary motoneuron anatomy were still evident in juvenile fish. Live imaging of Tg(isl1:GFP) zebrafish using fluorescent stereomicroscopy revealed that the nicotine-induced changes in motoneuron axonal pathfinding persisted into adulthood. We detected abnormalities in 37-dpf fish that were transiently exposed to nicotine as embryos. These fish were subsequently imaged over a 7-week period of time until they were approximately 3 months of age. These pathfinding errors of spinal secondary motoneuron axons detected at 37 dpf persisted within the same fish until 86 dpf, the latest age analyzed. These findings indicate that exposure to nicotine during embryonic development can have permanent consequences for motoneuron anatomy in zebrafish.
Insights
Embryonic nicotine exposure permanently alters zebrafish spinal motoneuron anatomy. These developmental changes in axonal pathfinding persist into adulthood, indicating long-term neurodevelopmental consequences.
Area of Science:
- Neuroscience
- Developmental Biology
- Toxicology
Background:
- Nicotine is a widely abused substance with known adverse effects on the developing nervous system.
- Previous research indicated embryonic nicotine exposure disrupts axonal pathfinding in zebrafish spinal secondary motoneurons.
Purpose of the Study:
- To investigate if nicotine-induced alterations in motoneuron axonal pathfinding during embryonic development persist into adulthood.
- To determine the long-term consequences of early-life nicotine exposure on neuronal anatomy.
Main Methods:
- Utilized the Tg(isl1:GFP) zebrafish line for visualizing spinal secondary motoneurons.
- Embryos were exposed to varying concentrations of nicotine (5-30 microM) and then rescued.
- Performed anatomical characterization using fixed tissue and live imaging from larval to adult stages (3-86 dpf).
Main Results:
- Nicotine-induced abnormalities in motoneuron anatomy were observed in juvenile zebrafish.
- Live imaging confirmed that axonal pathfinding errors persisted into adulthood.
- Pathfinding defects detected at 37 days postfertilization (dpf) remained evident up to 86 dpf.
Conclusions:
- Embryonic nicotine exposure leads to permanent deficits in motoneuron axonal pathfinding in zebrafish.
- These findings highlight the lasting impact of early-life nicotine exposure on nervous system development.

