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Soory, A.

Publications and source records attributed to Soory, A..

2 recordsLinked to original sources

Bidirectional regulation between AP-1 and SUMO genes modulates inflammatory signaling during Salmonella Typhimurium infection

Gram-negative bacterium Salmonella Typhimurium (STm) is the causative agent of gastroenteritis. Among the various gut pathogens, STm is still one of the most frequent culprits posing a significant health challenge. STm utilizes its effector proteins to highjack host cell processes. Alteration of SUMOylation, a post-translational modification mechanism, is one such change caused by STm. STm mediated simultaneous downregulation of SUMO-pathway genes, Ubc9 and PIAS1, is required for an efficient infection. In the present study, the regulation of SUMO pathway genes during STm infection was investigated. Promoters of both UBC9 and PIAS1, were seen to harbor binding motifs of AP-1, Activator protein-1 (c-Jun:c-Fos heterodimers or c-Jun:c-Jun homodimers). Using electrophoretic mobility shift assays, a direct binding of c-Fos to the identified motifs was observed. Perturbation of c-Fos led to changes in expression of Ubc9 and PIAS1, while its SUMO-modifications resulted in differential regulation of its target genes. In line with this, STm infection of fibroblasts with SUMOylation deficient c-Fos (c-FOS-KOSUMO-def-FOS) resulted in uncontrolled activation of target genes, as revealed by 3mRNA-Seq analysis and mathematical modelling, resulting in massive activation of inflammatory pathways. Infection of c-FOS-KOSUMO-def-FOS cells favored STm replication, indicating misdirected immune mechanisms in these cells. Finally, chromatin Immuno-precipitation assays confirmed a context dependent differential binding and release of AP-1 to/from target genes due to its Phosphorylation and SUMOylation respectively. Overall, our data point towards existence of a bidirectional cross-talk between c-Fos and the SUMO pathway and highlighting its importance in AP-1 function relevant to STm infections and beyond. Author summaryFood borne infections caused Salmonella Typhimurium pose a major health challenge in developing and developed world. Unfortunately, many aspects of Salmonella-host crosstalk still remain unknown. In the current work, using sophisticated computational tools along with cell culture experiments and mathematical modeling, we demonstrate how Salmonella controls SUMOylation, a post-translational modification (PTM) pathway of host. SUMOylation governs fundamental processes of the host cell, and its alteration is required for a successful Salmonella infection. We show that SUMO-pathway genes, Ubc9 and Pias1, are direct target genes of AP-1 transcription factor. C-Fos, a component of AP-1 transcriptionally regulates SUMO-genes by binding to their promoters. During Salmonella infection, a selective activation of target genes of c-Fos was observed. The selective regulation of target genes relied on c-fos PTMs. Experimental perturbation of c-Fos PTMs led to global transcriptional dysregulation including immune hyperactivation. Thus, we show existence of a complex interplay between the SUMO-pathway genes and AP-1 transcription factors which mediate selective gene regulation during Salmonella infection.

microbiology↗

SUMOylation of Jun fine-tunes the Drosophila gut immune response

Post-translational modification by the small ubiquitin-like modifier, SUMO can modulate the activity of its conjugated proteins. The transcriptional regulator Jun, a member of the AP-1, complex is one such SUMO target. We find that Jra, the Drosophila Jun ortholog, is a regulator of the Pseudomonas entomophila induced gut immune gene regulatory network, modulating the expression of a few thousand genes, as measured by quantitative RNA sequencing. Decrease in Jra in gut enterocytes is protective, suggesting that reduction of Jra signaling favors the host over the pathogen. In Jra, lysines 29 and 190 are SUMO conjugation targets, with the JraK29R+K190R double mutant being SUMO conjugation resistant (SCR). Interestingly, a JraSCR fly line, generated by CRISPR/Cas9 based genome editing, is more sensitive to infection, with adults showing a weakened host response and increased proliferation of Pseudomonas. Transcriptome analysis of the guts of JraSCR and JraWT flies suggests that lack of SUMOylation of Jra significantly changes core elements of the immune gene regulatory network, that include antimicrobial agents, secreted ligands, feedback regulators, and transcription factors. SUMOylation attenuates Jra activity, with the master immune regulator Relish being an important transcriptional target. Our study implicates Jra as a major immune regulator, with dynamic SUMO conjugation/deconjugation modulating the kinetics of the gut transcriptional immune response.

genetics↗