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Published on: May 20, 2020
Pathogenic human L1-CAM mutations reduce the adhesion-dependent activation of EGFR
Kakanahalli Nagaraj1, Lars V Kristiansen, Adam Skrzynski
1Department of Cell and Developmental Biology, University of Michigan, Ann Arbor, 48109-2200, USA.
Abstract:
L1-cell adhesion molecule (L1-CAM) belongs to a functionally conserved group of neural cell adhesion molecules that are implicated in many aspects of nervous system development. In many neuronal cells the adhesive function of L1-type CAMs induces cellular signaling processes that involves the activation of neuronal tyrosine protein kinases and among other functions regulates axonal growth and guidance. Mutations in the human L1-CAM gene are responsible for a complex neurodevelopmental condition, generally referred to as L1 syndrome. Several pathogenic L1-CAM mutations have been identified in humans that cause L1 syndrome in affected individuals without affecting the level of L1-CAM-mediated homophilic cell adhesion when tested in vitro. In this study, an analysis of two different pathogenic human L1-CAM molecules indicates that although both induce normal L1-CAM-mediated cell aggregation, they are defective in stimulating human epidermal growth factor receptor tyrosine kinase activity in vitro and are unable to rescue L1 loss-of-function conditions in a Drosophila transgenic model in vivo. These results indicate that the L1 syndrome-associated phenotype might involve the disruption of L1-CAM's functions at different levels. Either by reducing or abolishing L1-CAM protein expression, by interfering with L1-CAM's cell surface expression, by reducing L1-CAM's adhesive ability or by impeding further downstream adhesion-dependent signaling processes.
Insights
Mutations in L1-cell adhesion molecule (L1-CAM) cause L1 syndrome by disrupting downstream signaling, not just cell adhesion. This study reveals defects in tyrosine kinase activity and rescue models for pathogenic L1-CAM variants.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- L1-cell adhesion molecule (L1-CAM) is crucial for nervous system development, regulating axonal growth and guidance.
- Mutations in the L1-CAM gene cause L1 syndrome, a complex neurodevelopmental disorder.
- Some L1-CAM mutations cause L1 syndrome without affecting homophilic cell adhesion in vitro.
Purpose of the Study:
- To investigate the functional impact of pathogenic L1-CAM mutations.
- To determine if L1-CAM's signaling capabilities are affected by mutations causing L1 syndrome.
- To analyze the in vitro and in vivo consequences of specific L1-CAM pathogenic variants.
Main Methods:
- Analysis of two pathogenic human L1-CAM molecules.
- In vitro assessment of L1-CAM-mediated cell aggregation and tyrosine kinase activity.
- In vivo rescue experiments using a Drosophila transgenic model for L1 loss-of-function.
Main Results:
- Pathogenic L1-CAM molecules induced normal cell aggregation but showed defects in stimulating tyrosine kinase activity.
- These variants failed to rescue L1 loss-of-function conditions in a Drosophila model.
- The findings suggest L1 syndrome can arise from disruptions beyond L1-CAM's adhesive function.
Conclusions:
- L1 syndrome may result from impaired L1-CAM signaling pathways, not solely reduced adhesion.
- Pathogenic L1-CAM mutations can disrupt downstream signaling, impacting neuronal development.
- Understanding these distinct molecular defects is crucial for L1 syndrome research.
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