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Cardina, J. A.

Publications and source records attributed to Cardina, J. A..

2 recordsLinked to original sources

A human high-fidelity DNA polymerase holoenzyme has a wide range of lesion bypass activities

During replication, lagging strand lesions are initially encountered by high-fidelity DNA polymerase (pol) holoenzymes comprised of pol {delta} and the PCNA sliding clamp. To proceed unhindered, pol {delta} holoenzymes must bypass lesions without stalling. This entails dNMP incorporation opposite the lesion (insertion) and the 5 template nucleotide (extension). Historically, it was viewed that high-fidelity pol holoenzymes stall upon encountering lesions, activating DNA damage tolerance pathways that are ultimately responsible for lesion bypass. Our recent study of 4 prominent lesions revealed that human pol {delta} holoenzymes support insertion and/or bypass for multiple lesions and the extents of these activities depends on the lesion and pol {delta} proofreading. In the present study, we expand these analyses to other prominent lesions. Collectively, analyses of 10 lesions from both studies reveal that the insertion and bypass efficiencies of pol {delta} holoenzymes each span a complete range (0 - 100%). Consequently, the fates of pol {delta} holoenzymes upon encountering lesions are quite diverse. Furthermore, pol {delta} proofreading promoted holoenzyme progression at 7 of the 10 lesions and did not deter progression at any. Altogether, the results significantly alter our understanding of the replicative capacity of high-fidelity pol holoenzymes and their functional role(s) in lesion bypass.

biochemistry↗

High resolution studies of DNA lesion bypass by human DNA polymerase δ holoenzymes

During DNA replication, DNA lesions present in lagging strand templates are initially encountered by DNA polymerase {delta} (pol {delta}). The historical view for what transpires from these encounters is that replication of the afflicted lagging strand template abruptly stops, activating DNA damage tolerance (DDT) pathways that replicate the offending lesion and adjacent DNA sequence, allowing pol {delta} to resume downstream. However, qualitative studies observed that human pol {delta} is capable of replicating various DNA lesions, albeit to unknown extents, which raises issues regarding the roles of pol {delta} and DDT in the replication of DNA lesions. To address these issues, we re-constituted human lagging strand replication to quantitatively characterize initial encounters of pol {delta} holoenzymes with DNA lesions. The results indicate that pol {delta} holoenzymes support stable dNTP incorporation opposite and beyond multiple lesions and the extent of these activities depends on the lesion and pol {delta} proofreading. Furthermore, after encountering a given DNA lesion, subsequent dissociation of pol {delta} is distributed around the lesion and a portion of pol {delta} does not dissociate at all. The distributions of these events are dependent on the lesion and pol {delta} proofreading. These results challenge our understanding of DNA lesion replication and DDT.

biochemistry↗