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. 2023 Jul 6;83(13):2316-2331.e7.
doi: 10.1016/j.molcel.2023.06.010. Epub 2023 Jun 29.

Glucose-induced CRL4COP1-p53 axis amplifies glycometabolism to drive tumorigenesis

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Free article

Glucose-induced CRL4COP1-p53 axis amplifies glycometabolism to drive tumorigenesis

Yang Su et al. Mol Cell. .
Free article

Abstract

The diabetes-cancer association remains underexplained. Here, we describe a glucose-signaling axis that reinforces glucose uptake and glycolysis to consolidate the Warburg effect and overcome tumor suppression. Specifically, glucose-dependent CK2 O-GlcNAcylation impedes its phosphorylation of CSN2, a modification required for the deneddylase CSN to sequester Cullin RING ligase 4 (CRL4). Glucose, therefore, elicits CSN-CRL4 dissociation to assemble the CRL4COP1 E3 ligase, which targets p53 to derepress glycolytic enzymes. A genetic or pharmacologic disruption of the O-GlcNAc-CK2-CSN2-CRL4COP1 axis abrogates glucose-induced p53 degradation and cancer cell proliferation. Diet-induced overnutrition upregulates the CRL4COP1-p53 axis to promote PyMT-induced mammary tumorigenesis in wild type but not in mammary-gland-specific p53 knockout mice. These effects of overnutrition are reversed by P28, an investigational peptide inhibitor of COP1-p53 interaction. Thus, glycometabolism self-amplifies via a glucose-induced post-translational modification cascade culminating in CRL4COP1-mediated p53 degradation. Such mutation-independent p53 checkpoint bypass may represent the carcinogenic origin and targetable vulnerability of hyperglycemia-driven cancer.

Keywords: CK2; CRL4(COP1); CSN; O-GlcNAcylation; glucose sensing; glycometabolism; neddylation; overnutrition-associated cancer; p53 degradation; ubiquitylation.

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Conflict of interest statement

Declaration of interests The authors declare no competing interests.

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