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Biology subjects

Hill, P. W. S.

Publications and source records attributed to Hill, P. W. S..

2 recordsLinked to original sources

Salmonella Effector SteE Reprogrammes the Macrophage Regulatory Network to Drive Specific Hyperactivation of STAT3 Target Genes

The ability of Salmonella Typhimurium to exploit macrophages as a niche for survival, replication and dissemination is central to its pathogenesis. The effector SteE, which polarises macrophages into an anti-inflammatory state, is critical during invasive disease. SteE operates via an unprecedented mechanism, reprogramming the host serine/threonine kinase GSK3 to perform tyrosyl-directed phosphorylation of neosubstrates, including the immune transcription factors STAT1 and STAT3. Here, we demonstrate that SteE-driven transcriptional reprogramming relies critically and specifically on STAT3 phosphorylation and DNA binding. By activating STAT3 via a non-canonical pathway, bypassing endogenous negative feedback mechanisms, SteE drives hyperactivation of STAT3 target genes, surpassing the effects of canonical IL10 signalling. Hyperactivation correlates with elevated phosphorylated STAT3 in the macrophage nucleus, facilitating opening of chromatin regions not accessible during endogenous cytokine signalling. Overall, our study illustrates how hijacking of a signalling pathway by SteE dramatically reshapes the macrophage gene regulatory network to enhance Salmonella immune evasion.

cell biology↗

Defining the ordered pathway for ZAP-mediated RNA decay

Zinc-finger Antiviral Protein (ZAP)-mediated RNA decay (ZMD) restricts replication of viruses containing CpG dinucleotide clusters. However, why ZAP isoforms differ in antiviral activity and how they recruit cofactors to mediate RNA decay is unclear. Therefore, we determined the ordered events of the ZMD pathway. The long ZAP isoform preferentially binds viral RNA and has distinct binding motifs compared to the short isoform. The endoribonuclease KHNYN then cleaves viral RNA at positions of ZAP binding. The 5 cleavage fragment undergoes TUT4/TUT7-mediated 3 uridylation and degradation by DIS3L2. The 3 cleavage fragment is degraded by XRN1. ZAP and TRIM25 interact with KHNYN, TUT7, DIS3L2 and XRN1 in a RNase-resistant manner. Viral infection promotes the interaction between TRIM25 with these enzymes, leading to viral RNA decay while also decreasing the abundance of cellular transcripts. Overall, the long isoform of ZAP recruits key enzymes to assemble an RNA decay complex on viral RNA.

immunology↗