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Chhetri, G.

Publications and source records attributed to Chhetri, G..

2 recordsLinked to original sources

PAF15-PCNA assembly exhaustion governs lagging strand replication and replisome integrity

Genome replication in eukaryotic cells is surveyed by the S-phase checkpoint, which orchestrates sequential replication origin activation to avoid exhaustion of hitherto poorly defined rate-limiting replisome components. Here, we find that excessive activation of replication origins depletes chromatin-bound PCNA and lagging strand components, thereby limiting additional PCNA loading at new origins when checkpoint control is disrupted. PAF15 (PCNA-associated factor 15) emerges as a dosage-sensitive regulator of PCNA, delineating the dynamic range of global genome duplication and defining distinct roles for PCNA on the leading and lagging strands. Through its high-affinity PIP motif and interaction within the DNA encircling channel of PCNA, PAF15 stabilizes PCNA exclusively on the lagging strand, optimizing and rate-limiting lagging strand processing. On the other hand, misregulation of PAF15--whether by overexpression or mislocalization to the leading strand--impairs replication fork progression and leads to cell death. These defects are mitigated by TIMELESS and CLASPIN, which restrain PAF15-PCNA interactions beyond the lagging strand. E2F4-mediated repression orchestrates PAF15 expression in normal and cancer cells, maintaining its optimal dosage for lagging strand-specific interactions with PCNA. Thus, the S-phase checkpoint functions in concert to restrict origin activation when lagging strand PAF15-PCNA assembly is exhausted, linking a previously concealed strand-specific rate limitation to overall replication dynamics.

biochemistry↗

53BP1 interacts with the RNA primer from Okazaki fragments to support their processing during unperturbed DNA replication

RNA-binding proteins are found at replication forks, but their direct interaction with DNA-embedded RNA species that inevitably shape physiological DNA replication remains unexplored. Here we report that 53BP1, involved in the DNA damage and replication stress response, is an RNA-binding protein that directly interacts with Okazaki fragments, in the absence of any external stress. The bulk chromatin association of 53BP1 shows dramatic dependence on PRIM1, which synthesizes the RNA primer of Okazaki fragments. The direct recruitment of 53BP1 to nascent DNA shows susceptibility to in situ ribonuclease A treatment. Conversely, depletion of FEN1, which results in the accumulation of uncleaved RNA primers, leads to an upregulation of 53BP1 levels at the replication forks, suggesting that RNA primers contribute to the recruitment of 53BP1 at the lagging DNA strand. 53BP1 depletion induces an accumulation of S phase poly(ADP-ribose), which constitutes a sensor of unligated Okazaki fragments. Collectively, our data indicate that 53BP1, distinct from its canonical mode of chromatin-binding, is anchored at the replication fork through its RNA-binding activity, highlighting the role of an RNA-protein interaction at DNA replication forks.

molecular biology↗