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Gelot, C.

Publications and source records attributed to Gelot, C..

2 recordsLinked to original sources

Polymerase Theta Inhibition Kills Homologous Recombination Deficient Tumors

PARP inhibitors (PARPi) have become a new line of therapy for Homologous Recombination (HR)-deficient cancers. However, resistance to PARPi has emerged as a major clinical problem. DNA polymerase theta (POL{theta}) is synthetic lethal with HR and a druggable target in HR-deficient cancers. Here, we identified the antibiotic Novobiocin (NVB) as a specific POL{theta} inhibitor that selectively kills HR-deficient tumor cells in vitro and in vivo. NVB directly binds to the POL{theta} ATPase domain, inhibits its ATPase activity, and phenocopies POL{theta} depletion. BRCA-deficient tumor cells and those with acquired PARPi resistance are sensitive to NVB in vitro and in vivo. Increased POL{theta} expression levels predict NVB sensitivity. The mechanism of NVB-mediated cell death in PARPi resistant cells is the accumulation of toxic RAD51 foci, which also provides a pharmacodynamic biomarker for NVB response. Our results demonstrate that NVB may be useful alone or in combination with PARPi in treating HR-deficient tumors, including those with acquired PARPi resistance. One Sentence SummaryWe identified Novobiocin as a specific POL{theta} inhibitor that selectively kills naive and PARPi resistance HR-deficient tumors in vitro and in vivo.

cancer biology

An adaptive pre-DNA-damage-response protects genome integrity

The DNA damage response (DDR) interrupts cell cycle progression to restore genome integrity. However, unchallenged proliferating cells are continually exposed to endogenous stress, raising the question of a stress-threshold for DDR activation. Here, we identified a stress threshold below which primary human fibroblasts, activate a cell-autonomous response that not activates full DDR and not arrests cell cycle progression. We characterized this "pre-DDR" response showing that it triggers the production of reactive oxygen species (ROS) by the NADPH oxidases DUOX1 and DUOX2, under the control of NF-{kappa}B and PARP1. Then, replication stress-induced ROS (RIR) activates the FOXO1 detoxifying pathway, preventing the nuclear accumulation of the pre-mutagenic 8-oxoGuanine lesion, upon endogenous as well as exogenous pro-oxidant stress. Increasing the replication stress severity above the threshold triggers the canonical DDR, leading to cell cycle progression arrest, but also to RIR suppression. These data reveal that cells adapt their response to stress severity, unveiling a tightly regulated "pre-DDR" adaptive response that protects genome integrity without arresting cell cycle progression.

cell biology