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Sartori, A. A.

Publications and source records attributed to Sartori, A. A..

5 recordsLinked to original sources

Non-canonical ATR signalling via NBS1 phosphorylation propagates fork slowing from stressed to unperturbed nuclear regions

DNA replication forks frequently encounter obstacles and remodel into four-way junctions to actively slow DNA fork progression. Fork slowing can also spread to undamaged forks via an ATR-dependent mechanism that remained elusive. Here, using mild genotoxic stress, we show that fork slowing and reversal require full ATR activity, but no canonical ATR activators and signalling partners, defining a non-canonical ATR pathway distinct from origin firing control. Phospho-proteomics in S-phase cells under checkpoint-blind replication stress identified a subset of ATR-dependent phospho-sites, such as S343 on NBS1, the regulatory subunit of the MRN complex. This residue is essential to stimulate MRN exonuclease activity in vitro and required in cells for global fork slowing upon mild DNA damage. Ultimately, local UV-C micro-irradiation reveals that ATR-dependent MRN-stimulated resection dampens DNA synthesis at lesions and propagates fork slowing to undamaged chromatin, supporting MRN-mediated ssDNA exposure as a mean to coordinate replication slowdown across the nucleus.

cell biology↗

CIP2A Mediates the Recruitment of the SLX4-MUS81-XPF Tri-Nuclease Complex in Mitosis and Protects Against Replication Stress

DNA replication stress frequently elicits problems in mitosis because incompletely replicated chromosomes or replication intermediates physically link sister chromatids together and prevent their proper segregation during anaphase. We and others recently discovered a mitotic role for the CIP2A oncoprotein, which is critically implicated in chromosome stability maintenance and chromosome fragment clustering during mitosis. In addition, in homologous recombination deficient (HRD) cells, CIP2A is essential and may thus constitute a new drug target in HRD cancers. Yet, the precise mechanisms by which CIP2A suppresses chromosomal instability during mitosis and thus allows for the survival of HRD cancer cells remain largely elusive. Here we characterize CIP2As role in DNA replication stress responses. We show that upon replication stress, wild-type cells show an elevated accumulation of CIP2A foci during mitosis, indicating its involvement in the mitotic response to replication stress. Defective DNA replication leads to the accumulation of under-replicated DNA, which can be carried into mitosis. We demonstrate that in the absence of CIP2A, cells fail to recruit the SLX4-MUS81-XPF (SMX) tri-nuclease complex to sites of under-replicated DNA in mitosis, resulting in a high incidence of lagging chromosomes during anaphase and subsequent micronuclei formation. In a subset of cell lines, we also observed CIP2A-dependent mitotic DNA synthesis (MiDAS) upon replication stress. However, our data suggest that MiDAS and SMX recruitment are not functionally linked. This novel role of CIP2A in managing under-replicated DNA may provide insights into the molecular mechanisms underlying therapeutic vulnerabilities in cancer cells.

cell biology↗

USP7 deubiquitinase stabilizes FAN1 to support DNA crosslink repair and suppress CAG repeat expansion

Human FAN1 is a structure-specific endonuclease critical for the repair of DNA interstrand crosslinks (ICLs) and the excision of extrahelical CAG repeats-whose pathological expansion underlies Huntingtons disease (HD), a progressive and currently incurable neurodegenerative disorder. However, mechanisms of post-translational regulation of FAN1 are still largely unknown. Here, we identify the ubiquitin-specific protease 7 (USP7) as new interactor of FAN1. USP7 stabilizes FAN1 protein levels in a deubiquitination-dependent manner, preventing FAN1 from proteasomal degradation. Consequently, we demonstrate that USP7 depletion leads to reduced chromatin association of FAN1 and increased cellular hypersensitivity following ICL damage. Moreover, we find that loss of USP7 accelerates CAG repeat expansion in an HD cellular model. Collectively, our findings establish USP7 as a critical regulator of FAN1 activity in the maintenance of genome stability, highlighting potential therapeutic opportunities for cancer and HD.

molecular biology↗

The PIN1-p38-CtIP signaling axis protects stalled replication forks from deleterious degradation

Human CtIP plays a critical role in homologous recombination (HR) by promoting the resection of DNA double-strand breaks. Moreover, CtIP maintains genome stability through protecting stalled replication forks from nucleolytic degradation. However, the upstream signaling mechanisms governing the molecular switch between these two CtIP-dependent processes remain largely elusive. Here, we show that phosphorylation of CtIP by the p38 stress kinase and subsequent PIN1-mediated CtIP cis-to-trans isomerization is required for fork stabilization but dispensable for HR. We found that stalled forks are degraded in cells expressing non-phosphorylatable CtIP or lacking PIN1-p38 activity, while expression of a CtIP trans-locked mutant overcomes the requirement for PIN1-p38 in fork protection. We further reveal that Brca1-deficient mammary tumor cells that have acquired PARPi resistance regain chemosensitivity after PIN1 or p38 inhibition. Collectively, our findings identify the PIN1-p38-CtIP signaling pathway as a critical regulator of replication fork integrity.

molecular biology↗

H2AX promotes replication fork degradation and chemosensitivity in BRCA-deficient tumours

Histone H2AX plays a key role in DNA damage signalling in the surrounding regions of DNA double-strand breaks (DSBs)1,2. In response to DNA damage, H2AX becomes phosphorylated on serine residue 139 (known as {gamma}H2AX), resulting in the recruitment of the DNA repair effectors 53BP1 and BRCA13-6. Here, by studying resistance to poly(ADP-ribose) polymerase (PARP) inhibitors in BRCA1/2-deficient mammary tumours7,8, we identify a novel function for {gamma}H2AX in orchestrating drug-induced replication fork degradation. Mechanistically, {gamma}H2AX-dependent replication fork degradation is elicited by the inhibition of CtIP-mediated fork protection. As a result, H2AX loss restores replication fork stability and increases chemoresistance in BRCA1/2-deficient tumour cells without restoring homology-directed DNA repair, as highlighted by the lack of DNA damage-induced RAD51 foci. Furthermore, in the attempt to discover acquired genetic vulnerabilities, we find that ATM inhibition overcomes PARP inhibitor (PARPi) resistance in H2AX-deficient tumours by interfering with CtIP-mediated fork protection of stalled forks. In summary, our results demonstrate a novel role for H2AX in replication fork biology in BRCA-deficient tumours and establish a function of H2AX separable from its classical role in DNA damage signalling and DSB repair.

cancer biology↗