Mengping He, Jinju Cai, Huihui Wu, Tianqi Xu, Haijie Zhang, Zhiqiang Wang, Yuan Liu
Salmonella 4,[5],12:i:- has emerged as a leading cause of non-typhoidal salmonellosis globally, yet the mechanisms governing its intracellular survival and pathogenic adaptation remain unclear. Herein, through transposon-insertion sequencing, we identify nlpD, a peptidoglycan hydrolase activator essential for maintaining membrane stability and facilitating bacterial division, as a critical gene for Salmonella infection. nlpD-deficient Salmonella exhibits significantly diminished survival in both in vitro and in vivo settings. Mechanistically, nlpD deletion disrupts peptidoglycan and lipopolysaccharide homeostasis, rendering Salmonella more vulnerable to oxidative and acidic stresses within phagosomes. Accumulated cell wall components robustly activate the toll-like receptor-mediated NF-κB signaling pathway, driving M1 macrophage polarization and autophagy-lysosomal activation to eliminate intracellular bacteria. An FDA-approved drug screen identifies ketoconazole as an NlpD-targeting compound that reduces bacterial loads in murine models. Our findings establish NlpD as a critical regulator that limits M1-polarized inflammatory responses, highlighting its potential as a therapeutic vulnerability against Salmonella 4,[5],12:i:- infection.