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Biology subjects

Coquery, E.

Publications and source records attributed to Coquery, E..

2 recordsLinked to original sources

Colonization, translocation, and evolution of opportunistic pathogens during hospital-associated infections

Many commensal bacteria that peacefully reside in the human microbiome are also able to cause acute opportunistic infections. Emerging evidence suggests that within-host evolution contributes to infection, but the genetic mechanisms facilitating the progression of opportunistic pathogens from carriage to acute infection remain unknown. Here, we prospectively collected native samples from four microbiome niches of 13 critically ill patients to assess the evolutionary dynamics leading up to infection. Among three patients we have observed eleven healthcare-associated infections (HAI) caused by nine pathogen species. Leveraging a culture-based approach, we demonstrate that the microbiome is frequently (73%) colonized by the pathogen lineage already before or at the time of diagnosis. Moreover, we identify a short-lived, non-synonymous mutation (F126L) within the fimbriae regulator gene fimZ of Enterobacter hormaechei, first detectable within the gut and subsequently associated with HAI before becoming replaced by body-wide sweeps of independent treatment-associated mutations. Despite fimZ [F126L] being globally undetected, we can show in vitro and in vivo that the F126L mutation leads to elevated biofilm formation, cell adhesion and virulence, suggesting a role during HAI. Our work highlights the power of prospective, population-wide investigation of pathogens to elucidate rapid evolution linked to disease.

microbiology↗

Bradyrhizobium hardenbergiae sp. nov., isolated from Hardenbergia violacea in Australia, represents a novel basal lineage of the B. elkanii supergroup

Bradyrhizobia are widespread across the Australian continent, where they are essential to Australian ecosystems by helping legumes to compensate nutrient deficiencies and low fertility of Australian soils. Among the Bradyrhizobium genospecies identified during a survey of Australian native rhizobia communities in 1994-1995, genospecies L appeared to be only distantly related to any Bradyrhizobium lineages known at the time. We take advantage of the recent sequencing of the genome of strain BDV5419, the original strain corresponding to Bradyrhizobium genospecies L, to re-assess this lineage taxonomic status. We characterized further strain BDV5419 based on morpho-physiological traits and determined its phylogenetic relationships with the type strains of the 88 currently known Bradyrhizobium species based on sequence comparisons of SSU rRNA genes and complete genomes. The digital DNA-DNA hybridization relatedness with any type strain was less than 33% and both SSU rRNA gene and genome phylogenies confirmed that this strain does not belong to any formerly described species within the Bradyrhizobium genus. Whereas its position within the lineage encompassing the B. elkanii and B. jicamae supergroups is unresolved in the SSU rDNA phylogeny, strain BDV5419 appears to be one of most basal lineages of the B. elkanii supergroup in the genome comparison. All data thus support the description of the novel species Bradyrhizobium hardenbergiae sp. nov. which type strain is BDV5419T (= CFBP 9111T = LMG 32897T), isolated from a nodule of Hardenbergia violaceae in Black Mountain Nature Reserve, in Canberra, ACT, Australia.

microbiology↗