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Krasilia, A.

Publications and source records attributed to Krasilia, A..

2 recordsLinked to original sources

Pan-cancer multi-omics analysis identifies non-canonical oncogenic functions beyond DNA replication of the POLE2 subunit of DNA Polymerase epsilon

DNA polymerase epsilon (Pol{varepsilon}) is essential for high-fidelity leading-strand synthesis. It comprises a catalytic subunit, POLE and three accessory subunits, including POLE2. In contrast to POLE, the biological functions and clinical significance of POLE2 remain unexplored. POLE2 is vital for the assembly of Pol{varepsilon} and for interactions with the CMG helicase. Yeast studies show that dysfunction of its ortholog, Dpb2, cause genomic instability and impaired cell cycle progression. To investigate the significance of POLE2, this study provides a comprehensive multi-omics analysis across tumor types. We show that POLE2 upregulation is associated with decreased overall survival in a cancer-type-specific manner. Its expression levels, rather than copy number variation, emerge as a more reliable prognostic marker. POLE2 expression regulatory mechanisms include promoter methylation, isoform usage, and epigenetic regulators. Elevated POLE2 mRNA levels are rarely followed by increased protein levels, possibly due to abundant non-coding isoforms. The localization of mutations in POLE2 in cancer samples suggests an effect on its interaction with the catalytic subunit of Pol{varepsilon}. Co-expression and pathway enrichment analyses reveal a connection between POLE2 and transcriptional regulation involving E2F, EZH2, and RB. Our findings highlight POLE2 as a contributor to genome stability, a candidate cancer biomarker, and a possible therapeutic target.

cancer biology↗

The effects of CDC45 mutations on DNA replication and genome stability

Cdc45 is a non-catalytic subunit of the CMG helicase complex and is recruited to the autonomously replicating sequence at the onset of DNA replication. Cdc45 protein is required for the initiation of the DNA replication process as well as for the nascent DNA strand synthesis. It interacts with Mcm2 and Psf1 elements of CMG helicase, as well as with Sld3, and initiation factor, and Pol2, the catalytic subunit of DNA polymerase epsilon (Pol {varepsilon}). In this study, we analyzed the effects of amino acid substitutions in Cdc45 regions involved in the interaction of this protein with Mcm2-7 (Cdc45-1), Psf1 (Cdc45-26), and Sld3 (Cdc45-25, Cdc45-35). We found that mutations in CDC45 result in defective DNA replication. At the restrictive temperature, mutant cells are unable to initiate DNA replication, while in permissive conditions, they demonstrate DNA synthesis delay. Moreover, we observed increased mutation rates, mainly dependent on DNA polymerase zeta (Pol {zeta}), as well as increased incidence of replication errors. These findings contribute to our understanding of Cdc45s function in eukaryotic cells. Changes in the cell functioning observed in this study, related to the defect in Cdc45 function, may be helpful in understanding some diseases associated with CDC45.

genetics↗