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De Bolle, X.

Publications and source records attributed to De Bolle, X..

2 recordsLinked to original sources

BNIP3L-mediated mitophagy triggered by Brucella in host cells is required for bacterial egress

The facultative intracellular pathogen Brucella abortus interacts with several organelles of the host cell to reach its replicative niche inside the endoplasmic reticulum. However, little is known about the interplay between the bacteria and the host cell mitochondria. Here, we showed that B. abortus triggers a strong mitochondrial network fragmentation accompanied by mitophagy and the formation of mitochondrial Brucella-containing vacuoles in the late steps of cellular infection. The expression of the mitophagy receptor BNIP3L induced by B. abortus is essential for these events and relies on the iron-dependent stabilization of the hypoxia-inducible factor 1 alpha. Functionally, BNIP3L-mediated mitophagy appears to be advantageous for bacterial exit of the host cell as BNIP3L depletion drastically reduced the number of reinfection events. Altogether, these findings highlight the intricate link between Brucella trafficking and the mitochondria during host cell infection.

microbiology↗

Lipopolysaccharide synthesis and traffic in the envelope of the pathogen Brucella abortus

Lipopolysaccharide is essential for most Gram-negative bacteria as it is a main component of the outer membrane. In the pathogen Brucella abortus, smooth lipopolysaccharide containing the O-antigen is required for virulence. Being part of the Rhizobiales, Brucella spp. display unipolar growth and lipopolysaccharide was shown to be incorporated at the active growth sites, i.e. the new pole and the division site. By localizing proteins involved in the lipopolysaccharide transport across the cell envelope, from the inner to the outer membrane, we show that the lipopolysaccharide incorporation sites are determined by the inner membrane complex of the lipopolysaccharide transport system. Moreover, we identify the main O-antigen ligase of Brucella spp involved in smooth lipopolysaccharide synthesis. Altogether, our data highlight a new layer of spatiotemporal organization of the lipopolysaccharide biosynthesis pathway and identify a new class of bifunctional O-antigen ligases.

microbiology↗