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Sur Chowdhury, C.

Publications and source records attributed to Sur Chowdhury, C..

2 recordsLinked to original sources

ATG5 suppresses type I IFN-dependent neutrophil swarming and NETosis

Inflammation is critical for controlling infections, but when left unchecked can cause tissue damage and disease. For tuberculosis, the leading cause of death due to infection1, host inflammation is responsible for the clinical symptoms2, morbidity2, and mortality3,4. Specifically, neutrophil-dominated inflammation is associated with tuberculosis disease progression3,5,6. Therefore, understanding how neutrophil functions are regulated during infection is important for developing ways to prevent disease. Atg5 was the first gene shown to specifically function within neutrophils to promote control of Mycobacterium tuberculosis7, the causative agent of tuberculosis. ATG5 is best studied for its role in autophagy8-11, however, the protective activity of ATG5 in neutrophils was unexpectedly independent of other autophagy proteins and remained elusive7. We report here that ATG5, but not other autophagy proteins, is required in neutrophils to suppress neutrophil NETosis and swarming that occur due to elevated type I interferon levels during M. tuberculosis infection. The elevated level of NETosis that results from loss of ATG5 expression contributes to the early susceptibility of Atg5fl/fl-LysM-Cre mice during M. tuberculosis infection. NETosis is associated with poor disease outcomes in tuberculosis12,13 and COVID-19 patients14,15, as well as during other inflammatory diseases in humans16,17. Our studies identify an essential regulator of NETosis and elucidate previously unappreciated roles for ATG5 during infection, which may inform the design of host-directed therapeutics modulating these pathways.

immunology↗

Type I IFN signaling mediates NET release to promote Mycobacterium tuberculosis replication and granuloma caseation

Neutrophils are the most abundant cell type in airways of tuberculosis patients. Recent investigations reported induction of neutrophil extracellular traps (NETs) during Mycobacterium tuberculosis (Mtb) infection, however, the molecular regulation and impact of NETosis on Mtb pathogenesis is unknown. We find that in response to Mtb infection in neutrophils, PAD4 citrullinates histones to decondense chromatin that gets packaged into vesicles for release as NETs in a manner that can maintain neutrophil viability and promote Mtb replication. Type I interferon, which has been associated with NETosis in numerous contexts but without a known mechanism, promotes formation of chromatin-containing vesicles and NET release. Analysis of nonhuman primate granulomas supports a model where neutrophils are exposed to type I interferon from macrophages as they migrate into the granuloma, where they release NETs that contribute to necrosis and caseation. Our data reveals NETosis as a promising target to inhibit Mtb replication and granuloma caseation.

microbiology↗