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Gomoryova, K.

Publications and source records attributed to Gomoryova, K..

4 recordsLinked to original sources

A Wnt-induced conformational phospho-switch in DVL3 controls interaction with Frizzled receptors and Wnt/β-catenin signaling

When Wnt ligands bind to Frizzled (FZD) receptors, Dishevelled protein (DVL) gets multiphosphorylated by Casein kinase 1 (CK1). Although, it is well known that DVL phosphorylation relays Wnt signals from receptors to downstream effectors, any mechanistic aspects of DVL function related to phosphorylation remain unresolved. Here, we uncovered a Wnt-induced DVL phospho-switch which is mutually exclusive with FZD engagement. CK1 multiphosphorylation changes dramatically the bulk electrostatics to promote DVL intramolecular coupling between the DEP domain and the adjacent disordered region. A panel of phospho-switch mutants demonstrated a switch-like coupling at the molecular level when a charge threshold is reached. Charge accumulation proximal to DEP proved to be a key functional event required, but not sufficient, for Wnt/{beta}-catenin signaling. Interestingly, the charge-dependent switch-like character of DVL controlled its association with FZD. By integrating findings at different levels, we propose a universal mechanism in which Wnt-induced DVL conformational phospho-switch outcompetes FZD binding and triggers DVL detachment from FZD.

molecular biology↗

Armed with PRICKLE(3)s: Stabilizing WNT/PCP complexes against RNF43-mediated ubiquitination

The human Prickle protein family, consisting of PRICKLE1, PRICKLE2, PRICKLE3, and PRICKLE4, is an integral component of the WNT/planar cell polarity (WNT/PCP) pathway and is essential for various cellular and developmental processes. Despite their significance, the detailed roles and involvement in molecular mechanisms of these proteins in cells remain not fully understood. In this study, we used enhanced proximity biotinylation (miniTurboID) combined with mass spectrometry to characterize the microenvironment of PRICKLE1-3. Our results reveal that PRICKLE3 is directly linked to the WNT/PCP pathway, primarily localizing at the plasma membrane and forming complexes with VANGL proteins. This observation prompted us to examine its role in the non-canonical WNT signalling pathway in more detail. Using an inducible expression system to achieve protein levels closer to physiological conditions, we found that PRICKLE3 enhances the stability of VANGL1 and VANGL2 by shielding them from Casein kinase 1 {varepsilon}-mediated phosphorylation. Furthermore, our results indicate that PRICKLE3 modulates WNT receptor complexes by negatively regulating the interaction between Casein kinase 1 {varepsilon} and ubiquitin ligase RNF43, resulting in decreased ubiquitination and increased stabilization of VANGL1/2 at the plasma membrane. Notably, these effects were specific to PRICKLE3, with PRICKLE1 showing no comparable activity. Contrary to previous findings based mainly on standard overexpression studies, neither PRICKLE3 nor PRICKLE1 influenced the levels or phosphorylation status of WNT proteins DISHEVELLED2 and DISHEVELLED3, which are the PRICKLE proteins binding partners. In summary, we have identified a key mechanism specific to PRICKLE3 that positively regulates WNT/PCP complexes by suppressing RNF43. Additionally, we present a comprehensive interactome and new tools for the functional specification of Prickle isoforms to support further research.

cell biology↗

Proximity interactomics identifies RAI14, EPHA2 and PHACTR4 as essential components of Wnt/planar cell polarity pathway in vertebrates

Wnt/planar cell polarity (Wnt/PCP) pathway is an evolutionarily conserved signaling cascade playing an inevitable role in cell biology. Deregulation of Wnt/PCP leads to severe developmental defects or cancer progression. Here, we applied proximity-dependent biotinylation (BioID) to capture the intracellular interactome of key Wnt/PCP components: transmembrane ROR1, ROR2 and VANGL2, and cytoplasmic DVL3 and PRICKLE1. Mapping of individual preys across the baits and subcellular compartments identified a group of 30 proteins that we tested by loss-of-function in zebrafish. Among those rai14, epha2 and phactr4 were essential for several Wnt/PCP-dependent processes such as zebrafish convergent extension, orientation of lateral organ cells, or migration of melanoma cells. Mechanistically, RAI14, EPHA2 and PHACTR4 connect the receptor complex to effector actomyosin. In summary, this study identified novel essential components of vertebrate WNT/PCP pathway and provides a detailed characterization of PCP complex composition that can serve as comprehensive resource for further analysis of Wnt/PCP function.

cell biology↗

A new mechanism of posttranslational polyglutamylation regulates phase separation and signaling of the Wnt pathway protein Dishevelled.

Polyglutamylation is a reversible post-translational modification that is catalyzed by enzymes from the tubulin tyrosine ligase-like (TTLL) family. Here, we found that TTLL11 generates a previously unknown type of polyglutamylation initiated by the addition of a glutamate residue to the free C-terminal carboxyl group of a substrate protein. TTLL11 efficiently polyglutamylates the Wnt signaling protein Disheveled 3 (DVL3), thereby changing the interactome of DVL3, as well as it increases its capacity to get phosphorylated, to undergo liquid-liquid phase separation (LLPS), and to act in the non-canonical Wnt pathway. Both carboxyterminal polyglutamylation and the resulting reduction in LLPS capacity of DVL3 were reverted by the deglutamylating enzyme CCP6, which demonstrates the causal relationship between TTLL11-mediated polyglutamylation and LLPS. We thus discovered a novel type of posttranslational modification, which significantly broadens the range of proteins that can be modified by polyglutamylation and provides the first evidence that polyglutamylation can act as a regulator of protein LLPS.

cell biology↗