Glycosylation Weakens Skp1 Homodimerization in Toxoplasma gondii by Interrupting a Fuzzy Interaction

Biochemistry
|April 29, 2025
PubMed

Insights

Skp1 glycosylation in Toxoplasma gondii weakens homodimerization by disrupting a disordered C-terminal region. This disruption frees Skp1 for F-box protein binding, crucial for E3 ubiquitin ligase function.

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Eukaryotic Cell Biology

Background:

  • Skp1/Cullin-1/F-Box protein (SCF) complexes are vital E3 ubiquitin ligases controlling protein levels.
  • F-box proteins (FBPs) confer target specificity to SCF complexes by interacting with Skp1.
  • Skp1 regulation by oxygen-dependent glycosylation impacts FBP interactions and homodimerization in Dictyostelium.

Purpose of the Study:

  • Investigate Skp1 homodimerization in Toxoplasma gondii.
  • Determine the role of the C-terminal region (CTR) and glycosylation in Skp1 homodimerization.
  • Elucidate the mechanism by which Skp1 homodimerization is regulated.

Main Methods:

  • Sedimentation velocity experiments to measure homodimerization constants (Kd).
  • Site-directed mutagenesis to delete or replace the CTR.
  • All-atom molecular dynamics simulations to model CTR interactions.

Main Results:

  • Toxoplasma gondii Skp1 exhibits significant homodimerization.
  • Glycosylation and deletion of the CTR weaken Skp1 homodimerization.
  • CTR promotes homodimerization via charge cluster interactions, modulated by salt concentration.

Conclusions:

  • Skp1 CTR disruption by glycosylation weakens homodimerization, facilitating FBP binding.
  • The CTR utilizes independent mechanisms for Skp1/Skp1 and Skp1/FBP interactions.
  • Oxygen levels influence Skp1 interactions, suggesting evolutionary constraints on its sequence.

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