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Published on: March 25, 2022
Cdc42 regulates cofilin during the establishment of neuronal polarity
Boyan K Garvalov1, Kevin C Flynn, Dorothee Neukirchen
1Axonal Growth and Regeneration Group, Max Planck Institute of Neurobiology, 82152 Martinsried, Germany.
Abstract:
The establishment of polarity is an essential process in early neuronal development. Although a number of molecules controlling neuronal polarity have been identified, genetic evidence about their physiological roles in this process is mostly lacking. We analyzed the consequences of loss of Cdc42, a central regulator of polarity in multiple systems, on the polarization of mammalian neurons. Genetic ablation of Cdc42 in the brain led to multiple abnormalities, including striking defects in the formation of axonal tracts. Neurons from the Cdc42 null animals sprouted neurites but had a strongly suppressed ability to form axons both in vivo and in culture. This was accompanied by disrupted cytoskeletal organization, enlargement of the growth cones, and inhibition of filopodial dynamics. Axon formation in the knock-out neurons was rescued by manipulation of the actin cytoskeleton, indicating that the effects of Cdc42 ablation are exerted through modulation of actin dynamics. In addition, the knock-outs showed a specific increase in the phosphorylation (inactivation) of the Cdc42 effector cofilin. Furthermore, the active, nonphosphorylated form of cofilin was enriched in the axonal growth cones of wild-type, but not of mutant, neurons. Importantly, cofilin knockdown resulted in polarity defects quantitatively analogous to the ones seen after Cdc42 ablation. We conclude that Cdc42 is a key regulator of axon specification, and that cofilin is a physiological downstream effector of Cdc42 in this process.
Insights
Loss of Cdc42 disrupts mammalian neuron polarization, impairing axon formation by affecting actin dynamics and cofilin activity. Cofilin acts as a downstream effector of Cdc42 in this critical developmental process.
Area of Science:
- Neuroscience
- Cell Biology
- Developmental Biology
Background:
- Neuronal polarity establishment is crucial for early brain development.
- Genetic evidence for the roles of polarity regulators in mammals is limited.
- Cdc42 is a known polarity regulator in various systems.
Purpose of the Study:
- To investigate the physiological role of Cdc42 in mammalian neuronal polarization.
- To elucidate the molecular mechanisms by which Cdc42 controls axon formation.
Main Methods:
- Genetic ablation of Cdc42 in mammalian brain.
- In vivo and in vitro analysis of neuronal polarity and axon formation.
- Assessment of cytoskeletal organization, growth cone morphology, and filopodial dynamics.
- Manipulation of the actin cytoskeleton and cofilin activity.
Main Results:
- Cdc42 deficiency caused severe defects in axonal tract formation and axonogenesis.
- Neurons lacking Cdc42 exhibited disrupted actin organization, enlarged growth cones, and reduced filopodial activity.
- Axon formation defects were rescued by modulating the actin cytoskeleton.
- Cdc42 loss led to increased cofilin phosphorylation (inactivation), with active cofilin localized to wild-type axonal growth cones.
- Cofilin knockdown mimicked Cdc42 ablation-induced polarity defects.
Conclusions:
- Cdc42 is essential for axon specification in mammalian neurons.
- Cdc42 regulates axon formation through modulation of actin dynamics.
- Cofilin is a key downstream effector of Cdc42 in neuronal polarity and axon development.
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