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Published on: October 21, 2021
SRC-1 controls growth cone polarity and protrusion with the UNC-6/Netrin receptor UNC-5 in Caenorhabditis elegans
Snehal S Mahadik1, Emily K Burt1, Erik A Lundquist1
1Program in Molecular, Cellular and Developmental Biology, Department of Molecular Biosciences, University of Kansas, Lawrence, KS, United States of America.
Abstract:
The Polarity/Protusion model of UNC-6/Netrin function in axon repulsion does not rely on a gradient of UNC-6/Netrin. Instead, the UNC-5 receptor polarizes the VD growth cone such that filopodial protrusions are biased to the dorsal leading edge. UNC-5 then inhibits growth cone protrusion ventrally based upon this polarity, resulting in dorsally-biased protrusion and dorsal migration away from UNC-6/Netrin. While previous studies have shown that UNC-5 inhibits growth cone protrusion by destabilizing actin, preventing microtubule + end entry, and preventing vesicle fusion, the signaling pathways involved are unclear. The SRC-1 tyrosine kinase has been previously shown to physically interact with and phosphorylate UNC-5, and to act with UNC-5 in axon guidance and cell migration. Here, the role of SRC-1 in VD growth cone polarity and protrusion is investigated. A precise deletion of src-1 was generated, and mutants displayed unpolarized growth cones with increased size, similar to unc-5 mutants. Transgenic expression of src-1(+) in VD/DD neurons resulted in smaller growth cones, and rescued growth cone polarity defects of src-1 mutants, indicating cell-autonomous function. Transgenic expression of a putative kinase-dead src-1(D831A) mutant caused a phenotype similar to src-1 loss-of-function, suggesting that this is a dominant negative mutation. The D381A mutation was introduced into the endogenous src-1 gene by genome editing, which also had a dominant-negative effect. Genetic interactions of src-1 and unc-5 suggest they act in the same pathway on growth cone polarity and protrusion, but might have overlapping, parallel functions in other aspects of axon guidance. src-1 function was not required for the effects of activated myr::unc-5, suggesting that SRC-1 might be involved in UNC-5 dimerization and activation by UNC-6, of which myr::unc-5 is independent. In sum, these results show that SRC-1 acts with UNC-5 in growth cone polarity and inhibition of protrusion.
Insights
The SRC-1 tyrosine kinase works with UNC-5 to control axon growth cone polarity and limit protrusions, guiding cell migration independently of UNC-6/Netrin gradients.
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- Axon guidance is crucial for neural circuit formation.
- The UNC-6/Netrin and UNC-5 pathway mediates axon repulsion.
- SRC-1 tyrosine kinase interacts with UNC-5 in cell migration.
Purpose of the Study:
- Investigate the role of SRC-1 in VD growth cone polarity and protrusion.
- Elucidate the signaling mechanisms of UNC-5 in axon guidance.
Main Methods:
- Generated precise deletion mutants of src-1.
- Utilized transgenic expression of wild-type and mutant src-1.
- Employed genome editing to introduce specific mutations into the endogenous src-1 gene.
- Analyzed genetic interactions between src-1 and unc-5.
Main Results:
- src-1 mutants exhibit unpolarized, enlarged growth cones, similar to unc-5 mutants.
- SRC-1 functions cell-autonomously in growth cone polarity.
- Kinase-dead SRC-1 mutants display dominant-negative effects.
- src-1 and unc-5 genetically interact in growth cone polarity and protrusion.
Conclusions:
- SRC-1 acts in concert with UNC-5 to regulate growth cone polarity and inhibit protrusion.
- SRC-1 is essential for UNC-5-mediated axon guidance.
- SRC-1 may be involved in UNC-5 activation by UNC-6.
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