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Direct Gene Knock-out of Axolotl Spinal Cord Neural Stem Cells via Electroporation of CAS9 Protein-gRNA Complexes
Published on: July 9, 2019
NSAID-mediated cyclooxygenase inhibition disrupts ectodermal derivative formation in axolotl embryos
Emma J Marshall1, Raneesh Ramarapu1, Tess A Leathers1
1Department of Anatomy, Physiology, and Cell Biology, University of California, Davis, Davis, CA, USA.
Abstract:
Embryonic exposures to non-steroidal anti-inflammatory drugs (NSAIDs) have been linked to preterm birth, neural tube closure defects, abnormal enteric innervation, and craniofacial malformations, potentially due to disrupted neural tube or neural crest (NC) cell development. Naproxen (NPX), a common non-steroidal anti-inflammatory drug (NSAID) used to relieve pain and inflammation, exerts its effects through non-selective cyclooxygenase (COX) inhibition. Our lab has identified that the cyclooxygenase (COX-1 and COX-2) isoenzymes are expressed during the early stages of vertebrate embryonic development, and that global inhibition of COX-1 and COX-2 function disrupts NC cell migration and differentiation in Ambystoma mexicanum (axolotl) embryos. NC cells differentiate into various adult tissues including craniofacial cartilage, bone, and neurons in the peripheral and enteric nervous systems. To investigate the specific phenotypic and molecular effects of NPX exposure on NC development and differentiation, and to identify molecular links between COX inhibition and NC derivative anomalies, we exposed late neurula and early tailbud stage axolotl embryos to various concentrations of NPX and performed immunohistochemistry (IHC) for markers of migratory and differentiating NC cells. Our results reveal that NPX exposure impairs the migration of SOX9+ NC cells, leading to abnormal development of craniofacial cartilage structures, including Meckel's cartilage in the jaw. NPX exposure also alters the expression of markers associated with peripheral and central nervous system (PNS and CNS) development, suggesting concurrent neurodevelopmental changes.
Insights
Non-steroidal anti-inflammatory drug (NSAID) exposure during embryonic development, specifically Naproxen (NPX), disrupts neural crest cell development. This leads to craniofacial malformations and potential neurodevelopmental issues in axolotl embryos.
Area of Science:
- Developmental Biology
- Pharmacology
- Teratology
Background:
- Embryonic exposure to NSAIDs is linked to birth defects, including craniofacial malformations.
- Neural crest (NC) cells are crucial for developing craniofacial structures and the peripheral nervous system.
- Cyclooxygenase (COX) enzymes are expressed during early vertebrate development.
Purpose of the Study:
- To investigate the effects of Naproxen (NPX), an NSAID, on neural crest cell development and differentiation.
- To identify molecular links between COX inhibition and NC derivative anomalies.
- To assess NPX-induced changes in craniofacial and neurodevelopmental markers.
Main Methods:
- Axolotl embryos were exposed to varying concentrations of NPX during neurula and tailbud stages.
- Immunohistochemistry (IHC) was used to analyze markers of NC cell migration and differentiation (e.g., SOX9).
- Expression patterns of PNS and CNS development markers were examined.
Main Results:
- NPX exposure significantly impaired the migration of SOX9+ neural crest cells.
- Abnormal development of craniofacial cartilage, including Meckel's cartilage, was observed.
- Altered expression of markers for peripheral and central nervous system development indicated concurrent neurodevelopmental changes.
Conclusions:
- Naproxen exposure disrupts embryonic neural crest cell migration and differentiation.
- NSAID-induced craniofacial and neurodevelopmental defects may stem from impaired NC cell development.
- Further research is needed to understand the precise molecular mechanisms linking COX inhibition to these developmental anomalies.

