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Loss of Cdk5rap2 triggers cellular senescence via β-catenin-mediated downregulation of WIP1

Xidi Wang; Patrick Sipila; Zizhen Si; Jesusa L. Rosales; Xu Gao; Ki-Young Lee

2020-07-11 cell biology
10.1101/2020.07.09.194761 bioRxiv
Show abstract

Loss-of-function mutations in Cdk5rap2 is associated with the developmental disorders, primary microcephaly and primordial dwarfism, but the underlying molecular link remains obscure. Here, we show that Cdk5rap2 loss in BJ-5ta human fibroblasts triggers senescence that is associated with proliferation defect, which is manifested as small body size in Cdk5rap2an/an mice. In fibroblasts, Cdk5rap2 loss induces p53 Ser15 phosphorylation that correlates with decreased level of the p53 phosphatase, WIP1. Ectopic WIP1 expression reverses senescence in Cdk5rap2-depleted cells, linking senescence to WIP1 downregulation. Cdk5rap2 interacts with GSK3{beta}, increasing inhibitory Ser9 phosphorylation in GSK3{beta}, which phosphorylates and tags {beta}-catenin for degradation. Thus, Cdk5rap2 loss decreases GSK3{beta} Ser9 phosphorylation and increases GSK3{beta} activity, reducing {beta}-catenin that affects expression of NF-{kappa}B target genes, including WIP1. Consequently, Cdk5rap2 or {beta}-catenin depletion downregulates WIP1. GSK3{beta} Inhibition in Cdk5rap2-depleted cells restores {beta}-catenin and WIP1 levels, reducing p53 Ser15 phosphorylation and preventing senescence. Conversely, WIP1 inhibition increases p53 Ser15 phosphorylation and senescence in Cdk5rap2-depleted cells lacking GSK3{beta} activity. Senescence through GSK3{beta}/{beta}-catenin downregulation of WIP1 may contribute to the developmental disorders associated with Cdk5rap2 loss-of-function.

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