Related Experiment Video
Updated: Mar 18, 2026

Characterization of a Pathogenic Escherichia coli Strain Derived from Oreochromis spp. Farms Using Whole-Genome Sequencing
Published on: December 23, 2022
Separate F-Type Plasmids Have Shaped the Evolution of the H30 Subclone of Escherichia coli Sequence Type 131
Timothy J Johnson1, Jessica L Danzeisen1, Bonnie Youmans1
1Department of Veterinary and Biomedical Sciences, University of Minnesota, St. Paul, Minnesota, USA.
Abstract:
The extraintestinal pathogenic Escherichia coli (ExPEC) H30 subclone of sequence type 131 (ST131-H30) has emerged abruptly as a dominant lineage of ExPEC responsible for human disease. The ST131-H30 lineage has been well described phylogenetically, yet its plasmid complement is not fully understood. Here, single-molecule, real-time sequencing was used to generate the complete plasmid sequences of ST131-H30 isolates and those belonging to other ST131 clades. Comparative analyses revealed separate F-type plasmids that have shaped the evolution of the main fluoroquinolone-resistant ST131-H30 clades. Specifically, an F1:A2:B20 plasmid is strongly associated with the H30R/C1 clade, whereas an F2:A1:B- plasmid is associated with the H30Rx/C2 clade. A series of plasmid gene losses, gains, and rearrangements involving IS26 likely led to the current plasmid complements within each ST131-H30 sublineage, which contain several overlapping gene clusters with putative functions in virulence and fitness, suggesting plasmid-mediated convergent evolution. Evidence suggests that the H30Rx/C2-associated F2:A1:B- plasmid type was present in strains ancestral to the acquisition of fluoroquinolone resistance and prior to the introduction of a multidrug resistance-encoding gene cassette harboring bla CTX-M-15. In vitro experiments indicated a host strain-independent low frequency of plasmid transfer, differential levels of plasmid stability even between closely related ST131-H30 strains, and possible epistasis for carriage of these plasmids within the H30R/Rx lineages. IMPORTANCE A clonal lineage of Escherichia coli known as ST131 has emerged as a dominating strain type causing extraintestinal infections in humans. The evolutionary history of ST131 E. coli is now well understood. However, the role of plasmids in ST131's evolutionary history is poorly defined. This study utilized real-time, single-molecule sequencing to compare plasmids from various current and historical lineages of ST131. From this work, it was determined that a series of plasmid gains, losses, and recombinational events has led to the currently circulating plasmids of ST131 strains. These plasmids appear to have evolved to acquire similar gene clusters on multiple occasions, suggesting possible plasmid-mediated convergent evolution leading to evolutionary success. These plasmids also appear to be better suited to exist in specific strains of ST131 due to coadaptive mutations. Overall, a series of events has enabled the evolution of ST131 plasmids, possibly contributing to the lineage's success.
Insights
The dominant extraintestinal pathogenic Escherichia coli (ExPEC) ST131-H30 lineage evolved through plasmid gains and losses, leading to convergent evolution of virulence and fitness genes. Specific F-type plasmids are linked to distinct ST131-H30 clades, influencing their success.
Area of Science:
- Microbiology
- Genomics
- Evolutionary Biology
Background:
- The extraintestinal pathogenic Escherichia coli (ExPEC) ST131-H30 subclone is a major cause of human infections.
- While the phylogeny of ST131-H30 is known, its plasmid composition and evolution remain poorly understood.
- Plasmids are crucial for bacterial adaptation and virulence, but their specific role in ST131-H30 evolution requires elucidation.
Purpose of the Study:
- To fully characterize the plasmid complement of ST131-H30 isolates and other ST131 clades.
- To investigate the role of plasmids in the evolutionary success and adaptation of the ST131-H30 lineage.
- To understand the mechanisms driving plasmid evolution, including gene acquisition, loss, and rearrangement.
Main Methods:
- Single-molecule, real-time (SMRT) sequencing was employed to obtain complete plasmid sequences.
- Comparative genomic analyses were performed on plasmids from various ST131-H30 subclades and other ST131 clades.
- In vitro experiments assessed plasmid transfer frequency and stability within different ST131-H30 host strains.
Main Results:
- Distinct F-type plasmids (F1:A2:B20 and F2:A1:B-) are strongly associated with specific ST131-H30 clades (H30R/C1 and H30Rx/C2, respectively).
- Plasmid evolution involved gene gains, losses, and rearrangements, particularly involving IS26, leading to overlapping gene clusters related to virulence and fitness.
- The F2:A1:B- plasmid predates fluoroquinolone resistance acquisition and bla CTX-M-15 carriage in the H30Rx/C2 clade; plasmid transfer is infrequent but stability varies.
Conclusions:
- Plasmid-mediated convergent evolution, driven by gene cluster acquisition, likely contributed to the success of ST131-H30 sublineages.
- Specific plasmid types are co-adapted to particular ST131-H30 strains, suggesting epistatic interactions influencing plasmid carriage.
- Understanding plasmid evolution provides insights into the emergence and adaptability of dominant bacterial pathogens like ExPEC ST131.
Related Concept Videos
Modern Molecular Taxonomy
Evolutionary Relationships through Genome Comparisons

