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Dahmen, S. N.

Publications and source records attributed to Dahmen, S. N..

3 recordsLinked to original sources

Topoisomerase IIIα resolves inter- and intra-molecular intertwines during DNA replication

Resolution of topological stress is crucial for genome integrity. Vertebrate topoisomerase II (TOP2) resolves catenanes to relieve topological stress and unlink daughter molecules during DNA replication. Topoisomerase III (TOP3) can also resolve catenanes, but its direct role during DNA replication, substrate specificity, and relevant binding partners remain unclear. Here we show that TOP3 becomes crucial when TOP2 function is compromised. We find that in Xenopus egg extracts, TOP3 promotes replication fork progression and daughter strand unlinking specifically during replication termination. TOP3 can carry out this role independently of its binding partners RMI1-RMI2 and the BLM helicase by acting on lagging-strand single-stranded DNA (ssDNA). Strikingly, elevated lagging-strand ssDNA drives formation of intramolecular ssDNA intertwines, which are ordinarily resolved by TOP3. Thus, TOP3 resolves intermolecular linkages to promote fork progression during termination and resolves intramolecular linkages that arise when high levels of ssDNA are present during DNA replication.

biochemistry↗

Resolution of collapsed forks is separate from completion of DNA synthesis

Replication fork collapse at single-strand DNA breaks (SSBs) poses a serious threat to genome stability. Using Xenopus egg extracts, we show that a replication fork encountering an SSB on either the leading- or lagging-strand template produces a single-ended double-strand break (seDSB). These broken ends are efficiently resolved by homologous recombination to yield D-loops and erroneous end-to-end fusions. Surprisingly, DNA synthesis downstream of an seDSB is highly inefficient. In contrast, when two forks converge at an SSB, they generate a double-ended DSB (deDSB) that efficiently completes DNA synthesis through double-strand break repair that is not dependent on homologous recombination. Leading, but not lagging, seDSBs can undergo extensive nucleolytic degradation that disassembles the divergent fork. These secondary collapse events efficiently resolve seDSBs but without completion of DNA synthesis. Moreover, PARP inhibition can enhance fork collapse at unmodified SSBs but not at abasic site SSBs, contrary to expectations. Our findings distinguish end resolution from replication completion and demonstrate flexibility in how PARP inhibition affects fork collapse.

biochemistry↗

Leading and lagging strand abasic sites differentially affect vertebrate replisome progression but involve analogous bypass mechanisms

Abasic sites are one of the most frequent forms of DNA damage that interfere with DNA replication. However, abasic sites exhibit complex effects because they can be processed into other types of DNA damage. Thus, it remains poorly understood how abasic sites affect replisome progression, which replication-coupled repair pathways they elicit, and whether this is affected by the template strand that is damaged. Using Xenopus egg extracts, we developed an approach to analyze replication of DNA containing a site-specific, stable abasic site on the leading or lagging strand template. We show that abasic sites robustly stall synthesis of nascent DNA strands but exert different effects when encountered on the leading or lagging strand template. At a leading strand AP site, replisomes stall [~]100 bp from the lesion until it is bypassed or a converging fork triggers termination. At a lagging strand abasic site, replisome progression is unaffected and lagging strands are reprimed downstream, generating a post-replicative gap, which is then bypassed. Despite different effects on replisome progression, both leading and lagging strand abasic sites rely on translesion DNA synthesis for bypass. Our results detail similarities and differences between how leading and lagging strand AP sites affect vertebrate DNA replication.

biochemistry↗