Single-molecule dynamics of Dishevelled at the plasma membrane and Wnt pathway activation

Wenzhe Ma1, Maorong Chen2, Hong Kang1

  • 1Department of Systems Biology, Harvard Medical School, Boston, MA 02115.

Insights

Dishevelled (Dvl) proteins form dynamic complexes at the cell membrane during Wnt signaling. Wnt3a stimulation increases Dvl2 concentration and oligomerization, enhancing complex stability and duration.

Area of Science:

  • Cell biology
  • Molecular signaling
  • Biophysics

Background:

  • Dishevelled (Dvl) is a key nonenzymatic component of the Wnt signaling pathway.
  • Current models propose Dvl forms membrane complexes with Fzd and LRP5/6 receptors to regulate β-catenin, but direct evidence is limited.

Purpose of the Study:

  • To investigate the native size and dynamics of membrane-bound Dvl complexes during Wnt pathway activation.
  • To determine the factors controlling Dvl complex behavior.

Main Methods:

  • CRISPR/Cas9-induced homologous recombination to tag dishevelled2 (Dvl2) with mEGFP.
  • Single-molecule level observation using total internal reflection fluorescence (TIRF) microscopy.

Main Results:

  • Membrane-bound Dvl2 is predominantly monomeric (mean size 1.1) without Wnt.
  • Wnt3a stimulation increases membrane Dvl2 concentration (0.12/μm² to 0.54/μm²) and oligomerization (weighted mean size 1.5).
  • Increased Dvl2 concentration enhances its affinity for Fzd, driving oligomerization and increasing complex dwell time (2-3 min vs. <1 s for monomers).

Conclusions:

  • Dvl2 oligomerization is concentration-dependent and mediated by increased affinity for Fzd, independent of LRP5/6.
  • Oligomerized Dvl2 complexes exhibit significantly longer membrane dwell times.
  • Dvl acts as a dynamic scaffold, modulating its assembly and stability at the membrane in response to Wnt ligands.

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