Sarah Jordan, Priyanka Paul Biswas, Maria L. Alberdi, Jake Samuel, Zuza Kozic, Rita Berkachy, Vishwas Mishra, Nazila Kamaly, Oscar Ces, Jyoti S. Choudhary, Julia Sanchez‐Garrido, Abigail Clements, Gad Frankel
Abstract Enteropathogenic Escherichia coli (EPEC) and Citrobacter rodentium (CR) are extracellular enteric attaching and effacing (A/E) pathogens of humans and mice, respectively. Their virulence relies on intimate bacterial attachment and a network of type III secretion system effectors. Here, through systematic reduction and redesign of the effector network in CR, we develop an attenuated strain, CRV (CR Vaccine), encoding a subset of ten effectors. CRV colonises C57BL/6 mice ~100-fold lower than wild type CR (CR WT ) without causing overt pathogenesis. Moreover, C3H/HeN mice, which succumb to CR WT infection, survive CRV challenge. Vaccination with CRV confers protection against subsequent CR WT infection in both mouse strains. Serological analysis reveals a repertoire of dominant CR antigens, including the O-antigen, the virulence factors intimin, EspA and Tir and the outer membrane proteins Lpp, OmpA, MetQ and CARC (an AIDA-like autotransporter). We show that CR WT and CRV immunisation elicits comparable B cell and antibody responses, which is contingent on intimate bacterial attachment. A corresponding EPEC strain ( E. coli Vaccine, ECV) effectively colonises epithelial cells in a gut-on-chip model. These findings establish effector network minimisation as a generalisable strategy for rational bacterial attenuation and live-attenuated vaccine design.