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Walter, Johannes

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Walter

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Johannes

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Walter, Johannes

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Now showing 1 - 4 of 4
  • Publication

    Molecular watchdogs on genome patrol

    (eLife Sciences Publications, Ltd, 2014) Chistol, Gheorghe; Walter, Johannes

    By removing various obstacles from single strands of DNA, an enzyme called Pif1 clears the way for other enzymes that act on DNA.

  • Publication

    The mechanism of DNA replication termination in vertebrates

    (2015) Dewar, James M.; Budzowska, Magda; Walter, Johannes

    Eukaryotic DNA replication terminates when replisomes from adjacent replication origins converge. Termination involves local completion of DNA synthesis, decatenation of daughter molecules, and replisome disassembly. Termination has been difficult to study because termination events are generally asynchronous and sequence non-specific. To overcome these challenges, we paused converging replisomes with a site-specific barrier in Xenopus egg extracts. Upon removal of the barrier, forks underwent synchronous and site-specific termination, allowing mechanistic dissection of this process. We show that DNA synthesis does not slow detectably as forks approach each other and that leading strands pass each other unhindered before undergoing ligation to downstream lagging strands. Dissociation of CMG helicases occurs only after the final ligation step, and is not required for completion of DNA synthesis, strongly suggesting that converging CMGs pass one another and dissociate from double-stranded DNA. This termination mechanism allows rapid completion of DNA synthesis while avoiding premature replisome disassembly

  • Publication

    DNA interstrand cross-link repair requires replication fork convergence

    (2014) Zhang, Jieqiong; Dewar, James M.; Budzowska, Magda; Motnenko, Anna; Cohn, Martin A.; Walter, Johannes

    DNA interstrand cross-links (ICLs) prevent strand separation during DNA replication and transcription and are therefore extremely cytotoxic. In metazoans, a major pathway of ICL repair is coupled to DNA replication and requires the Fanconi anemia pathway. In most current models, collision of a single DNA replication fork with an ICL is sufficient to initiate repair. In contrast, we show here that in Xenopus egg extracts, two DNA replication forks must converge on an ICL to trigger repair. When only one fork reaches the ICL, the replicative CMG helicase fails to unload from the stalled fork, and repair is blocked. Arrival of a second fork, even when substantially delayed, rescues repair. We conclude that ICL repair requires a replication-induced X-shaped DNA structure surrounding the lesion, and we speculate how this requirement helps maintain genomic stability in S phase.

  • Publication

    TRAIP is a master regulator of DNA interstrand crosslink repair

    (Springer Nature, 2019-03) Wu, Alexander; Semlow, Daniel; Kamimae-Lanning, Ashley N.; Kochenova, Olga; Chistol, Gheorghe; Hodskinson, Michael R.; Amunugama, Ravindra; Sparks, Justin; Wang, Meng; Deng, Lin; Mimoso, Claudia; Low, Emily; Patel, Ketan J.; Walter, Johannes

    Cells often utilize multiple pathways to repair the same DNA lesion, and pathway choice has profound implications for the fidelity of genome maintenance. DNA interstrand cross-links (ICLs) block DNA replication and transcription by covalently linking the two strands of DNA, and the cytotoxicity of ICLs is exploited for chemotherapy. In Xenopus egg extracts, replication fork collision with ICLs initiates two distinct repair pathways. The NEIL3 glycosylase can cleave the cross-link1, but if this fails, the Fanconi anemia (FA) proteins incise the phosphodiester backbone surrounding the ICL, generating a double-strand break (DSB) intermediate that is repaired by homologous recombination2. How the simpler NEIL3 pathway is prioritized over the FA pathway, which can cause genomic rearrangements, is unknown. Here, we show that the E3 ubiquitin ligase TRAIP regulates both pathways. TRAIP appears to associate with the leading edge of the replisome, ubiquitylating any protein in the replisome’s path, including the replicative DNA helicase CMG (CDC45-MCM2-7-GINS) when two replisomes converge at an ICL. In this setting, short ubiquitin chains recruit NEIL3 through direct binding, whereas longer chains are required for CMG unloading by the p97 ATPase, enabling the FA pathway. Our results identify TRAIP as a master regulator of replisome stability and ICL repair pathway choice.