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Updated: Jul 2, 2026

Modeling Paracrine Noncanonical Wnt Signaling In Vitro
Published on: December 10, 2021
Wnt regulates axon behavior through changes in microtubule growth directionality: a new role for adenomatous
Silvia A Purro1, Lorenza Ciani, Monica Hoyos-Flight
1Research Department of Cell and Developmental Biology, University College London, London WC1E 6BT, United Kingdom.
Abstract:
Axon guidance and target-derived signals control axonal behavior by regulating the cytoskeleton through poorly defined mechanisms. In particular, how these signaling molecules regulate the growth and directionality of microtubules is not well understood. Here we examine the effect of Wnts on growth cone remodeling, a process that precedes synapse formation. Time-lapse recordings reveal that Wnt3a rapidly inhibits growth cone translocation while inducing growth cone enlargement. These changes in axonal behavior are associated with changes in the organization of microtubules. Time-lapse imaging of EB3-GFP (green fluorescent protein)-labeled microtubule plus-ends demonstrates that Wnt3a regulates microtubule directionality, resulting in microtubule looping, growth cone pausing, and remodeling. Analyses of Dishevelled-1 (Dvl1) mutant neurons demonstrate that Dvl1 is required for Wnt-mediated microtubule reorganization and axon remodeling. Wnt signaling directly affects the microtubule cytoskeleton by unexpectedly inducing adenomatous polyposis coli (APC) loss from microtubule plus-ends. Consistently, short hairpin RNA knockdown of APC mimics Wnt3a function. Together, our findings define APC as a key Wnt signaling target in the regulation of microtubule growth direction.
Insights
Wnt signaling controls axon growth direction by altering microtubule organization. This process involves Dishevelled-1 (Dvl1) and the adenomatous polyposis coli (APC) protein, crucial for microtubule remodeling during axon guidance.
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- Axon guidance relies on cytoskeletal regulation by signaling molecules.
- Mechanisms linking Wnt signaling to microtubule dynamics in growth cones are unclear.
Purpose of the Study:
- Investigate Wnt signaling's impact on growth cone remodeling and microtubule organization.
- Identify key molecular players in Wnt-mediated axon guidance.
Main Methods:
- Time-lapse imaging of growth cones and microtubule plus-ends (EB3-GFP).
- Analysis of Dishevelled-1 (Dvl1) mutant neurons.
- Short hairpin RNA (shRNA) knockdown of adenomatous polyposis coli (APC).
Main Results:
- Wnt3a inhibited growth cone translocation and promoted enlargement.
- Wnt3a altered microtubule directionality, causing looping and pausing.
- Dvl1 is essential for Wnt-induced microtubule and axon remodeling.
- Wnt signaling caused adenomatous polyposis coli (APC) loss from microtubule plus-ends.
Conclusions:
- Wnt signaling directly regulates microtubule cytoskeleton dynamics.
- Adenomatous polyposis coli (APC) is a critical Wnt signaling target for controlling microtubule growth direction.
- Findings elucidate a novel mechanism in Wnt-mediated axon guidance.
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