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Methods in Molecular Biology (Clifton, N.J.)|October 19, 2017
Dynamic Architecture of Eukaryotic DNA Replication Forks In Vivo, Visualized by Electron MicroscopyRalph Zellweger, Massimo LopesCell Reports|April 7, 2016
Nascent DNA Proteomics Reveals a Chromatin Remodeler Required for Topoisomerase I Loading at Replication ForksCyril Ribeyre, Ralph Zellweger, Maeva Chauvin, et al.EMBO Reports|May 10, 2018
Tel1/ATM prevents degradation of replication forks that reverse after topoisomerase poisoningLuca Menin, Sebastian Ursich, Camilla Trovesi, et al.The Journal of Cell Biology|March 4, 2015
Rad51-mediated replication fork reversal is a global response to genotoxic treatments in human cellsRalph Zellweger, Damian Dalcher, Karun Mutreja, et al.Cell Reports|September 6, 2018
ATR-Mediated Global Fork Slowing and Reversal Assist Fork Traverse and Prevent Chromosomal Breakage at DNA Interstrand Cross-LinksKarun Mutreja, Jana Krietsch, Jeannine Hess, et al.Nature Communications|October 18, 2017
Replication fork reversal triggers fork degradation in BRCA2-defective cellsSofija Mijic, Ralph Zellweger, Nagaraja Chappidi, et al.Genes & Development|December 4, 2013
Deregulated origin licensing leads to chromosomal breaks by rereplication of a gapped DNA templateKai J Neelsen, Isabella M Y Zanini, Sofija Mijic, et al.Nature Communications|February 16, 2016
A short G1 phase imposes constitutive replication stress and fork remodelling in mouse embryonic stem cellsAkshay K Ahuja, Karolina Jodkowska, Federico Teloni, et al.Molecular Cell|November 25, 2019
Fork Cleavage-Religation Cycle and Active Transcription Mediate Replication Restart after Fork Stalling at Co-transcriptional R-LoopsNagaraja Chappidi, Zuzana Nascakova, Barbora Boleslavska, et al.The EMBO Journal|November 1, 2016
The MMS22L-TONSL heterodimer directly promotes RAD51-dependent recombination upon replication stressWojciech Piwko, Lucie J Mlejnkova, Karun Mutreja, et al.Pageof 2