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Biology subjects

Antelo-Varela, M.

Publications and source records attributed to Antelo-Varela, M..

2 recordsLinked to original sources

Pervasive bacterial and prophage hybridization during chronic gut inflammation

Inflammatory bowel diseases (IBD) are modulated by microbiota composition, host genetics, and environmental factors1. Humans and other mammals are colonized by multiple strains of Escherichia coli, a species that expands in abundance in IBD patients2. The state of chronic inflammation characteristic of IBD is expected to intensify selective pressures on the gut microbial community, leading to distinct adaptive trajectories among its constituents. Here we couple in vivo experimental evolution with short- and long-read sequencing to test this hypothesis at the level of mutation and horizontal gene transfer (HGT). By colonizing IL10KO mice, a model of IBD3, and healthy wild-type mice with two strains of E. coli, we show that the tempo and mode of evolution are strain-specific and strongly shaped by host inflammatory status. Unique mutations associate with host inflammatory status independently of microbiota composition, and rates of transfer are diagnostic of chronic inflammation. Extensive transduction events occur in the inflamed gut, giving rise to hybrid clones that form a new genetic lineage, one that becomes dominant in this disease context. The high levels of recombination between prophages uncovered here point to a critical role of HGT and viral evolution in IBD.

microbiology↗

Mechanisms of P. aeruginosa resistance to Type VI Secretion System attacks

The Type VI Secretion System (T6SS) is a molecular nanomachine that injects toxic effector proteins into the environment or neighbouring cells, playing an important role in interbacterial competition and host antagonism during infection. Pseudomonas aeruginosa encodes three T6SSs. The H1-T6SS delivers toxins in response to attacks mediated by the T6SS of aggressive bacteria, suggesting that P. aeruginosa can resist T6SS assaults. The mechanisms of resistance are poorly characterized. Here, we performed a CRISPRi screen to identify pathways involved in resistance to T6SS effectors of Acinetobacter baylyi and Vibrio cholerae. We show that members of the GacA/GacS regulon, such as the mag operon or aas, and GacA-independent factors, such as the outer membrane protein OprF, confer resistance to different types of T6SS toxins. Interestingly, some of these T6SS resistance mechanisms lead to higher antibiotic susceptibility, suggesting complex evolutionary links between T6SS and antibiotic resistance.

microbiology↗