FBH1 Reverses Stalled Replication Forks via Sequential Unwinding of Nascent Strands
Mendia-Garcia, J.; Peacock, E. M.; Aicart-Ramos, C.; Eichman, B. F.; Moreno-Herrero, F.
Show abstract
Replication fork reversal is a DNA damage tolerance mechanism important for genome stability that entails annealing of parental DNA to push the fork backwards. F-box helicase 1 (FBH1) is a 3'-5' ssDNA translocase and SCF (SKP-CUL1-F box) E3 ubiquitin ligase that catalyzes fork reversal and limits aberrant recombination, yet how its helicase activity drives strand annealing is unknown. Here, using single-molecule and biochemical assays, we show that SCFFBH1 reverses forks through a two-stage reaction in which translocation on the lagging strand template while remaining affixed at the junction destabilizes the leading strand duplex to ultimately displace the nascent leading strand. Reversal is force-sensitive and does not generate a four-way junction, revealing an annealing-independent mechanism distinct from those of SMARCAL1, HLTF, and ZRANB3. These results establish the importance of nascent strand unwinding to fork reversal and suggest the existence of distinct pathways that produce unique DNA structures, which has implications for fork restart and its measurement in cells.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Polymerase theta-helicase promotes end joining by stripping single-stranded DNA-binding proteins and bridging DNA ends 98%
- RADX condenses single-stranded DNA to antagonize RAD51 loading 97%
- Nanopore tweezers measurements of RecQ conformational changes reveal the energy landscape of helicase motion 96%
Similar papers in this journal
- Changing protein-DNA interactions promote ORC binding site exchange during replication origin licensing. 96%
- Recombination-independent recognition of DNA homology for meiotic silencing in Neurospora crassa 96%
- Sequence-dependent mechanochemical coupling of helicase translocation and unwinding at single-nucleotide resolution. 96%
Similar papers in this journal
Similar papers in this journal
- Structures of RecBCD in complex with phage-encoded inhibitor proteins reveal distinctive strategies for evasion of a bacterial immunity hub 95%
- The Nse5/6-like SIMC1-SLF2 Complex Localizes SMC5/6 to Viral Replication Centers 95%
- The interplay of RNA:DNA hybrid structure and G-quadruplexes determines the outcome of R-loop-replisome collisions 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.