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Zakusilo, G.

Publications and source records attributed to Zakusilo, G..

2 recordsLinked to original sources

Long Non-Coding RNA Generated from CDKN1A Gene by Alternative Polyadenylation Regulates p21 Expression during DNA Damage Response

Alternative Polyadenylation (APA) is an emerging mechanism for dynamic changes in gene expression. Previously, we described widespread APA occurrence in introns during the DNA damage response (DDR). Here, we show that a DNA damage activated APA event occurs in the first intron of CDKN1A, inducing an alternate last exon (ALE)-containing lncRNA. We named this lncRNA SPUD (Selective Polyadenylation Upon Damage). SPUD localizes to polysomes in the cytoplasm and is detectable as multiple isoforms in available high throughput studies. SPUD has low abundance compared to the CDKN1A full-length isoform and is induced in cancer and normal cells under a variety of DNA damaging conditions in part through p53 transcriptional activation. RNA binding protein (RBP) HuR and the transcriptional repressor CTCF regulate SPUD levels. SPUD induction increases p21 protein, but not CDKN1A full-length levels, affecting p21 functions in cell-cycle, CDK2 expression, and cell viability. Like CDKN1A full-length isoform, SPUD can bind two competitive p21 translational regulators, the inhibitor calreticulin and the activator CUGBP1; SPUD can change their association with CDKN1A full-length in a DDR-dependent manner. Together, these results show a new regulatory mechanism by which a lncRNA controls p21 expression post-transcriptionally, highlighting lncRNA relevance in DDR progression and cellcycle.

molecular biology↗

Neotelomere formation by human telomerase

The maintenance of genome integrity requires that telomerase action be limited to telomeres and not convert DSBs into neotelomeres. Using the breakpoint sequence from an apparent germline neotelomere formation event, we developed an assay to detect and quantify telomeric repeat addition at Cas9-programmed DSBs in human cells. The data show that telomerase can add telomeric repeats to DSBs and that this process can generate functional neotelomeres. Neotelomere formation is increased when telomerase is overexpressed, suggesting that in most human cells, low (or absent) telomerase activity limits the deleterious effects of de novo telomere addition. We show that neotelomere formation at DSBs is inhibited by long-range resection and the accompanying activation of ATR signaling. Our findings reveal that telomerase can cause genome instability by generating neotelomeres at DSBs. We propose that neotelomere formation can promote tumorigenesis by ending detrimental breakage-fusion-bridge cycles in cancer cells whose genome alterations engender dicentric chromosomes.

cancer biology↗