AI Article Synopsis

  • SPOP gene mutations are linked to increased DNA hypermethylation in prostate cancer, suggesting a role in cancer progression.
  • SPOP normally targets the GLP protein for degradation, but mutations lead to the accumulation of GLP and G9a, resulting in elevated global DNA methylation levels.
  • Targeting DNA methylation with inhibitors like 5-azacytidine shows promise in reversing tumor suppressor gene silencing and improving treatment outcomes in prostate cancer related to SPOP mutations.

Article Abstract

Mutations in SPOP E3 ligase gene are reportedly associated with genome-wide DNA hypermethylation in prostate cancer (PCa) although the underlying mechanisms remain elusive. Here, we demonstrate that SPOP binds and promotes polyubiquitination and degradation of histone methyltransferase and DNMT interactor GLP. SPOP mutation induces stabilization of GLP and its partner protein G9a and aberrant upregulation of global DNA hypermethylation in cultured PCa cells and primary PCa specimens. Genome-wide DNA methylome analysis shows that a subset of tumor suppressor genes (TSGs) including FOXO3, GATA5, and NDRG1, are hypermethylated and downregulated in SPOP-mutated PCa cells. DNA methylation inhibitor 5-azacytidine effectively reverses expression of the TSGs examined, inhibits SPOP-mutated PCa cell growth in vitro and in mice, and enhances docetaxel anti-cancer efficacy. Our findings reveal the GLP/G9a-DNMT module as a mediator of DNA hypermethylation in SPOP-mutated PCa. They suggest that SPOP mutation could be a biomarker for effective treatment of PCa with DNA methylation inhibitor alone or in combination with taxane chemotherapeutics.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8481544PMC
http://dx.doi.org/10.1038/s41467-021-25951-3DOI Listing

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