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CDK5RAP2 loss-of-function causes premature cell senescence via the GSK3β/β-catenin-WIP1 pathway
Xidi Wang1,2, Patrick Sipila1, Zizhen Si2
1Department of Cell Biology & Anatomy, Arnie Charbonneau Cancer and Alberta Children's Hospital Research Institutes, Cumming School of Medicine, University of Calgary, Calgary, AB, Canada.
Abstract:
Developmental disorders characterized by small body size have been linked to CDK5RAP2 loss-of-function mutations, but the mechanisms underlying which remain obscure. Here, we demonstrate that knocking down CDK5RAP2 in human fibroblasts triggers premature cell senescence that is recapitulated in Cdk5rap2an/an mouse embryonic fibroblasts and embryos, which exhibit reduced body weight and size, and increased senescence-associated (SA)-β-gal staining compared to Cdk5rap2+/+ and Cdk5rap2+/an embryos. Interestingly, CDK5RAP2-knockdown human fibroblasts show increased p53 Ser15 phosphorylation that does not correlate with activation of p53 kinases, but rather correlates with decreased level of the p53 phosphatase, WIP1. Ectopic WIP1 expression reverses the senescent phenotype in CDK5RAP2-knockdown cells, indicating that senescence in these cells is linked to WIP1 downregulation. CDK5RAP2 interacts with GSK3β, causing increased inhibitory GSK3β Ser9 phosphorylation and inhibiting the activity of GSK3β, which phosphorylates β-catenin, tagging β-catenin for degradation. Thus, loss of CDK5RAP2 decreases GSK3β Ser9 phosphorylation and increases GSK3β activity, reducing nuclear β-catenin, which affects the expression of NF-κB target genes such as WIP1. Consequently, loss of CDK5RAP2 or β-catenin causes WIP1 downregulation. Inhibition of GSK3β activity restores β-catenin and WIP1 levels in CDK5RAP2-knockdown cells, reducing p53 Ser15 phosphorylation and preventing senescence in these cells. Conversely, inhibition of WIP1 activity increases p53 Ser15 phosphorylation and senescence in CDK5RAP2-depleted cells lacking GSK3β activity. These findings indicate that loss of CDK5RAP2 promotes premature cell senescence through GSK3β/β-catenin downregulation of WIP1. Premature cell senescence may contribute to reduced body size associated with CDK5RAP2 loss-of-function.
Insights
Loss of CDK5RAP2 causes premature cell senescence and small body size by downregulating WIP1 through the GSK3β/β-catenin pathway. Restoring WIP1 or inhibiting GSK3β prevents senescence in CDK5RAP2-deficient cells.
Area of Science:
- Cell Biology
- Genetics
- Developmental Biology
Background:
- Loss-of-function mutations in CDK5RAP2 are linked to developmental disorders with small body size.
- The precise mechanisms by which CDK5RAP2 deficiency leads to these phenotypes remain unclear.
Purpose of the Study:
- To elucidate the molecular mechanisms linking CDK5RAP2 loss to premature cell senescence and reduced body size.
- To investigate the role of the GSK3β/β-catenin pathway and WIP1 in CDK5RAP2-deficient cells.
Main Methods:
- Knockdown of CDK5RAP2 in human fibroblasts and analysis of Cdk5rap2-deficient mouse embryonic fibroblasts and embryos.
- Assessment of cell senescence markers (SA-β-gal staining, p53 Ser15 phosphorylation).
- Investigation of protein-protein interactions (CDK5RAP2 with GSK3β) and pathway analysis (GSK3β, β-catenin, WIP1, NF-κB).
Main Results:
- CDK5RAP2 knockdown induced premature cell senescence, characterized by increased SA-β-gal staining and p53 Ser15 phosphorylation.
- Senescence was linked to decreased WIP1 levels and activity, independent of p53 kinases.
- CDK5RAP2 loss led to reduced GSK3β Ser9 phosphorylation, increased GSK3β activity, decreased nuclear β-catenin, and subsequent WIP1 downregulation.
- Restoring WIP1 or inhibiting GSK3β activity prevented senescence in CDK5RAP2-deficient cells.
Conclusions:
- Loss of CDK5RAP2 promotes premature cell senescence via GSK3β/β-catenin-mediated downregulation of WIP1.
- This mechanism may explain the reduced body size observed in CDK5RAP2 loss-of-function-associated developmental disorders.
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