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Published on: October 4, 2017
Glycosylation Weakens Skp1 Homodimerization in Toxoplasma gondii by Interrupting a Fuzzy Interaction
Abstract:
Skp1/Cullin-1/F-Box protein (SCF) complexes represent a major class of E3 ubiquitin ligases responsible for proteomic control throughout eukaryotes. Target specificity is mediated by a large set of F-box proteins (FBPs) whose F-box domains interact with Skp1 in a conserved, well-organized fashion. In the social amoeba Dictyostelium, Skp1 is regulated by oxygen-dependent glycosylation which alters Skp1's FBP interactome and inhibits homodimerization that is mediated in part by an ordered interface which overlaps with that of FBPs. Based on sedimentation velocity experiments, Skp1 from the intracellular pathogen Toxoplasma gondii exhibits a homodimerization Kd comparable to that of a previously measured FBP/Skp1 interaction. Glycosylation of Skp1's disordered C-terminal region (CTR) distal to the ordered homodimer interface significantly weakens Skp1 homodimerization, an effect reproduced by CTR deletion. Replacement with a randomized CTR sequence retains high affinity excluding an extension of the ordered dimer interface. Substitution by poly serine weakens the homodimer to a degree equal to its deletion, indicating a composition dependent effect. The contribution of the CTR to Skp1 homodimerization is canceled by high salt consistent with an electrostatic mechanism. All-atom molecular dynamics simulations suggest that the CTR promotes homodimerization via charge cluster interactions. Taken together, the data indicate that glycosylation weakens homodimerization by disrupting a C-terminal fuzzy interaction that functions in tandem with the ordered dimer interface, thereby freeing Skp1 for FBP binding. Thus, the CTR contributes to Skp1/Skp1 and Skp1/FBP interactions via independent mechanisms that are each influenced by O2, indicating multiple constraints on the evolution of its sequence.
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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