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Burlet, D.

Publications and source records attributed to Burlet, D..

2 recordsLinked to original sources

CRY-NLRP3 complexes define a circadian checkpoint controlling inflammasome activation

Innate immune sensors such as the NLRP3 inflammasome can trigger inflammatory responses within minutes, raising the question of how circadian clocks influence such rapid decisions. Here, we identify a protein-level circadian checkpoint that links core clock components to NLRP3 inflammasome activation. We show that NLRP3 associates with the circadian repressors CRY1 and CRY2, forming oscillatory complexes that restrain inflammasome activation and rapidly dissociate upon stimulation. Pharmacological stabilization of CRY proteins preserves CRY-NLRP3 association and attenuates inflammasome assembly, IL-1{beta} secretion and pyroptotic cell death in primary human macrophages. In synchronized macrophages, both NLRP3 inflammasome activation and its inhibition by the NLRP3 inhibitor MCC950 vary with circadian time. Finally, a subset of NLRP3 variants reported in cohorts of patients with Cryopyrin-Associated Periodic Syndromes (CAPS), a group of hereditary fever syndromes caused by mutations in NLRP3, weaken CRY binding and are associated with altered time-of-day patterns of inflammasome activation and MCC950 responsiveness. Together, these findings define CRY-NLRP3 complexes as a circadian checkpoint that modulates inflammasome activity and drug response, revealing time of day as a critical dimension of NLRP3-driven inflammation.

immunology↗

The inflammasome sensor NLRP3 interacts with REV7 to maintain genome integrity through homologous recombination

DNA double strand break (DSB) is a highly toxic lesion that can generate genome instability, a major source of tumorigenesis. DSBs are mainly repaired by non-homologous end joining (NHEJ) or homologous recombination (HR). The selection of the DSB repair pathway primarily depends on the DNA resection of the DSB ends. Indeed, HR is initiated by resection at the DSB generating 3 single stranded extension. The shieldin complex prevents resection fostering DSB repair toward NHEJ. Here, we reveal that the inflammasome sensor NLRP3 facilitates DNA end resection to promote the HR pathway in an inflammasome-independent manner. Strikingly, NLRP3 silencing decreases HR efficiency, as evidenced by RAD51 foci and functional HR assays. Mechanistically, we describe that NLRP3 interacts with REV7, a subunit of the shieldin complex, and its depletion increases REV7 recruitment to IR-induced DSBs. Similar to cancer cells harboring HR mutated genes, we find that NLRP3 deficient cells are sensitive to PARP inhibitors (PARPi) and exhibit an epistatic relationship with BRCA1 deficiency. Remarkably, loss of REV7 in NLRP3-depleted cells induces PARPi resistance by restoring HR. This study unravels the crucial role of the innate immune receptor NLRP3 in regulating the selection of DSB repair pathways to maintain genome integrity.

molecular biology↗