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◇ bioRxiv2026-09-10· cell biology

Molecular mechanisms behind the functional (non)redundancy of CK1 paralogs in the Wnt pathway

T. Gybel, K. Gömöryova, J. Coufalova, T. Cihalova, S. Bologna, M. Micka, R. S. Ganji, D. Potesil, O. Sedo, T. W. Radaszkiewicz, Z. Zdrahal, K. Tripsianes, G. P. Sapkota, V. Bryja

原始摘要(英文原文)· Original abstract
The casein kinase 1 (CK1) family of serine/threonine protein kinases consists of seven isoforms in humans. CK1 family members are important regulators of the Wnt/{beta}-catenin signaling pathway. Using a comprehensive panel of CRISPR/Cas9-generated knockout cell lines, we demonstrated the opposing roles of endogenous CK1 (negative, via phosphorylation of {beta}-catenin in the destruction complex) and CK1{delta}/{epsilon} (positive, via phosphorylation of DVL in the signalosome), while no phenotype was observed for CK1{gamma}1/2/3 triple knockout cells. Using in vitro kinase assays and TurboID-based interactomics, we revealed that this functional divergence between CK1 and CK1{epsilon} is not due to the intrinsically different capacity to phosphorylate {beta}-catenin or DVL but rather due to different affinities for the destruction complex and signalosome in the cellular environment. Through functional analysis of CK1-CK1{epsilon} chimeras containing both N-terminal and C-terminal domain swaps, we identified the N-terminal lobe of CK1 and the C-terminus of CK1{epsilon} as determinants mediating increased affinity towards the degradasome and signalosome, respectively. We further show that the CK1 N-lobe not only drives cellular activity toward {beta}-catenin but also underlies the CK1-specific interaction with the scaffolding protein SACK1G (also known as FAM83G and PAWS1). Additionally, despite clearly distinct physiological roles of CK1 and CK1{delta}/{epsilon}, we provide evidence that, in the absence of CK1, CK1{delta} and CK1{epsilon} can physically and functionally substitute for CK1 in the {beta}-catenin destruction complex. This rewires CK1{delta} and CK1{epsilon} as negative regulators acting via phosphorylation of {beta}-catenin in the destruction complex. These findings resolve prior contradictions by (i) clarifying context-dependent CK1 roles, (ii) identifying mechanistic determinants navigating CK1 and CK1{epsilon} to different substrates, and (iii) defining the limitations of these affinity-based subcellular distributions that become apparent especially in the physical absence of the physiological, high-affinity kinase. An important implication of our findings is the identification of a mechanism that changes the ultimate outcome of CK1{delta}/{epsilon} inhibitor treatment from Wnt/{beta}-catenin pathway inhibition to its robust activation.
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Molecular mechanisms behind the functional (non)redundancy of CK1 paralogs in the Wnt pathway — 科研速览 Science Skim