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Kozik, Z.

Publications and source records attributed to Kozik, Z..

4 recordsLinked to original sources

ARID1A stabilises non-homologous end joining factors at DNA breaks induced by the G4 ligand pyridostatin

ARID1A is a subunit of the BAF chromatin remodelling complex that is frequently mutated in cancer. It is challenging to predict how ARID1A loss impacts cancer therapy response because it participates in many different cellular pathways. G quadruplex (G4) binding ligands, such as pyridostatin, have shown anticancer effects, but the pathways and genetic determinants involved in the response to G4 ligands are still not fully understood. Here, we show that ARID1A deficient cells are selectively sensitive to pyridostatin when compared with isogenic controls. Sensitivity to pyridostatin was apparent in ovarian and colorectal cancer cell line models, and in vivo studies suggest that G4 ligands hold promise for treating ARID1A deficient cancers. While we find that ARID1A impacts on pyridostatin-induced transcriptional responses, we find that pyridostatin-mediated toxicity in ARID1A-deficient cells is driven by defective DNA repair of topoisomerase-induced breaks. We show that ARID1A-deficient cells are unable to efficiently accumulate non-homologous end joining proteins on chromatin following pyridostatin exposure. These data uncover a role for ARID1A in the cellular response to G4 ligands, and link remodelling to G4 ligand-induced transcriptional and DNA damage responses.

molecular biology↗

The accessory type III secretion system effectors shape intestinal inflammatory infection outcomes

Injection of effectors via a type III secretion system (T3SS) is an infection strategy shared by various Gram-negative bacterial pathogens, many infecting mucosal surfaces. While individual T3SS effectors are well characterized, their network-level organization and the distinction between core and accessory effectors remain incompletely understood. Here, by systematically dissecting the T3SS effector network of the enteric mouse pathogen Citrobacter rodentium (CR) we identified a subset of 12 accessory effectors that, while dispensable for colonization, significantly alter infection outcomes. A strain lacking the accessory effectors (CRM12) remained virulent in susceptible mouse hosts yet resulted in reduced epithelial barrier damage, inflammation, and immune cell infiltration in resistant mice. Deep proteomic analysis specifically targeting CR-attached colonic epithelial cells revealed that, despite lacking 39% of its effector repertoire, infection with CRM12 results in similar changes to global protein expression as seen in mice infected with the wild-type strain, though key regulators of barrier integrity were differentially expressed. Using a host model with impaired barrier repair, we confirmed that accessory effectors shape infection outcomes without significantly impacting virulence. This study refines the concept of core and accessory effectors, providing a basis for further studies into effector-driven host adaptation.

microbiology↗

IL-18 activates mucosal group 2 innate lymphoid cells following enteric bacterial infection

Group 3 innate lymphoid cells (ILC3s) play a major role in protecting against infection with the enteric mouse pathogen Citrobacter rodentium, used to model infections with enteropathogenic and enterohaemorrhagic Escherichia coli. ILC3s-secreted IL-22, shown to be indispensable for protection against C. rodentium infection, induces secretion of IL-18, antimicrobial peptides and nutritional immunity proteins as well as activation of tissue regeneration processes. While ILC2s have traditionally been associated with immune responses to helminth infection and allergic inflammation via the production of type 2 cytokines (e.g. IL-4, IL-5, IL-9 and IL-13), more recently they have been implicated in protection against Clostridium difficile and Helicobacter pylori infections. Here we show that colonic lamina propria ILC2s proliferate in response to C. rodentium infection and secrete IL-4, IL-5 and IL-13, which are involved in maintenance of the intestinal barrier function, tissue repair and mucus secretion. When stimulated with IL-18, colonic ILC2s from uninfected naive mice secreted type 2 cytokines. Injection of IL-18 binding protein (IL18BP), at 2- and 3-days post C. rodentium infection, blocked activation of ILC2s. These data show that ILC2s are activated in response to infection with an enteric Gram-negative pathogen, where stimulation with IL-18 plays a role in inducing proliferation and secretion of type 2 cytokines. Author SummaryWhile group 3 innate lymphoid cells (ILC3s) play a key role in protecting from bacterial infections, ILC2s are mainly associated with immune responses to helminth infection. Here we investigated if ILC2s are activated in responses to infection with the enteric mouse pathogen Citrobacter rodentium. We show that in infected mice, gut ILC2s expand and secreted type 2 cytokines. ILC2 isolated from uninfected mice were activated by IL-18. Consistently, administration of IL-18 binding protein into C. rodentium-infected mice inhibited ILC2 activation. These findings suggest that gut ILC2s are activated by Gram negative enteric pathogens, which is mediated in part by IL-18.

immunology↗

The mitotic CIP2A-TOPBP1 axis facilitates mitotic pathway choice between MiDAS and MMEJ

Mitotic DNA double-strand breaks (DSBs) accumulate in response to replication stress or BRCA1/2 deficiency posing a significant threat to genome stability as repair by non-homologous end-joining (NHEJ) and homologous recombination (HR) is inactivated in mitosis. Mitotic cells instead rely on the mechanisms of microhomology mediated end-joining (MMEJ) and mitotic DNA synthesis (MiDAS). However, how these pathways are regulated in mitosis remains unknown. Here we reveal the CIP2A-TOPBP1 complex facilitates recruitment of SMX complex components to mitotic chromatin marked by CIP2A, through a CDK1-dependent interaction between TOPBP1 BRCT 1/2 and SLX4 phospho-threonine1260, that drives MiDAS. Furthermore, CIP2A promotes the recruitment of Pol{theta} to facilitate mitotic MMEJ. This defines a mechanistic framework for mitotic DSB repair, where simultaneous disruption of MiDAS and MMEJ pathways underpins the synthetic lethality observed in BRCA1/2-deficient cells following CIP2A depletion. These findings provide critical insights into mitotic DNA repair and highlights therapeutic opportunities in HR deficient tumours.

molecular biology↗