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Moshkovsky, A. R.

Publications and source records attributed to Moshkovsky, A. R..

2 recordsLinked to original sources

The self-regulated response of the Wnt pathway to an oncogenic mutation in β-catenin

Oncogenic mutations in {beta}-catenin can inhibit degradation of {beta}-catenin by preventing phosphorylation of its degron. Degron phosphorylation is mediated by the Axin scaffold, Casein Kinase 1 (CK1) and Glycogen Synthase Kinase 3 (GSK3). We studied an oncogenic form of {beta}-catenin with a deletion of serine 45 (S45), a site that is phosphorylated by the kinase CK1. When the S45 site is phosphorylated, it promotes the GSK3-mediated phosphorylations of the {beta}-catenin degron. Deletion of S45 would be expected to prevent GSK3-mediated phosphorylation of the mutant protein and thus block degradation. We found that the S45 mutant was still phosphorylatable by GSK3, and its expression increased the concentration of Axin, restoring the rate of GSK3-mediated phosphorylation to levels comparable to those observed for the wild-type {beta}-catenin. We conclude that there is one core mechanism for creating the phosphodegron for both primed and unprimed {beta}-catenin, which involves the generation of an Axin-GSK3 complex. SIGNIFICANCEUnderstanding how the Wnt pathway responds to mutations in {beta}-catenin phosphodegron can reveal important properties of the pathway in normal and cancer cells and is valuable for the design of more effective therapeutic strategies.

systems biology↗

The non-redundant nature of the Axin2 regulatory network in the canonical Wnt signaling pathway

Axin is one of two essential scaffolds in the canonical Wnt pathway that converts signals at the plasma membrane to signals inhibiting the degradation of {beta}-catenin, leading to its accumulation and specific gene activation. In vertebrates there are two forms of Axin, Axin1 and Axin2, which are similar at the protein level and genetically redundant. We show here that differential regulation of the two genes on the transcriptional and proteostatic level confers robustness and differential responsiveness that can be used in tissue specific regulation. Such subtle features may distinguish other redundant gene pairs that are commonly found in vertebrates through gene knockout experiments. Significance StatementThe mystery of two functionally redundant Axin genes in all vertebrates are can now be explained by the demonstration that they form a nested proteostatic and transcriptional feedback system that confers regulatory options in different developmental settings, a form of dynamic versatility that may explain the widespread occurrence of closely related seemingly redundant genes with similar functions.

systems biology↗