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Updated: Dec 15, 2025

A Caenorhabditis elegans Model System for Amylopathy Study
Published on: May 17, 2013
Caenorhabditis elegans Flamingo FMI-1 controls dendrite self-avoidance through F-actin assembly
Hao-Wei Hsu1, Chien-Po Liao1, Yueh-Chen Chiang1
1Institute of Molecular Medicine and Center of Precision Medicine, College of Medicine, National Taiwan University, Taipei 10002, Taiwan.
Abstract:
Self-avoidance is a conserved mechanism that prevents crossover between sister dendrites from the same neuron, ensuring proper functioning of the neuronal circuits. Several adhesion molecules are known to be important for dendrite self-avoidance, but the underlying molecular mechanisms are incompletely defined. Here, we show that FMI-1/Flamingo, an atypical cadherin, is required autonomously for self-avoidance in the multidendritic PVD neuron of Caenorhabditis elegans The fmi-1 mutant shows increased crossover between sister PVD dendrites. Our genetic analysis suggests that FMI-1 promotes transient F-actin assembly at the tips of contacting sister dendrites to facilitate their efficient retraction during self-avoidance events, probably by interacting with WSP-1/N-WASP. Mutations of vang-1, which encodes the planar cell polarity protein Vangl2 previously shown to inhibit F-actin assembly, suppress self-avoidance defects of the fmi-1 mutant. FMI-1 downregulates VANG-1 levels probably through forming protein complexes. Our study identifies molecular links between Flamingo and the F-actin cytoskeleton that facilitate efficient dendrite self-avoidance.
Insights
Flamingo (FMI-1) is crucial for preventing sister dendrite crossovers in neurons. It promotes actin assembly and interacts with VANG-1 to ensure proper neuronal circuit function.
Area of Science:
- Neuroscience
- Cell Biology
- Developmental Biology
Background:
- Self-avoidance is essential for neuronal circuit integrity, preventing dendrite crossovers.
- Adhesion molecules play roles in self-avoidance, but mechanisms remain unclear.
Purpose of the Study:
- Investigate the role of FMI-1/Flamingo in PVD neuron self-avoidance in *C. elegans*.
- Elucidate the molecular mechanisms by which FMI-1 regulates dendrite self-avoidance.
Main Methods:
- Genetic analysis of *fmi-1* mutants in *C. elegans* PVD neurons.
- Investigated interactions between FMI-1, VANG-1, and the F-actin cytoskeleton.
Main Results:
- *fmi-1* mutants exhibit increased sister PVD dendrite crossovers.
- FMI-1 promotes transient F-actin assembly at dendrite tips, facilitating retraction.
- FMI-1 downregulates VANG-1 levels, likely via protein complex formation.
Conclusions:
- FMI-1/Flamingo is autonomously required for dendrite self-avoidance.
- Identified molecular links between Flamingo and F-actin cytoskeleton in self-avoidance.
- FMI-1 and VANG-1 pathways cooperate to ensure proper neuronal wiring.
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