Logo: to the web site of Uppsala University

uu.sePublications from Uppsala University
Change search
CiteExportLink to record
Permanent link

Direct link
Cite
Citation style
  • apa
  • ieee
  • modern-language-association
  • vancouver
  • Other style
More styles
Language
  • de-DE
  • en-GB
  • en-US
  • fi-FI
  • nn-NO
  • nn-NB
  • sv-SE
  • Other locale
More languages
Output format
  • html
  • text
  • asciidoc
  • rtf
Clinical isolates of Klebsiella pneumoniae can transfer chromosomal DNA into Escherichia coli to create novel bacteria with stable hybrid chromosomes
Uppsala University, Disciplinary Domain of Medicine and Pharmacy, Faculty of Medicine, Department of Medical Biochemistry and Microbiology.ORCID iD: 0000-0001-6459-1397
Uppsala University, Disciplinary Domain of Medicine and Pharmacy, Faculty of Medicine, Department of Medical Biochemistry and Microbiology.ORCID iD: 0009-0007-1690-5946
Uppsala University, Disciplinary Domain of Medicine and Pharmacy, Faculty of Medicine, Department of Medical Biochemistry and Microbiology.ORCID iD: 0000-0001-9974-578x
Uppsala University, Disciplinary Domain of Science and Technology, Biology, Department of Cell and Molecular Biology, Microbiology and Immunology. Uppsala University, Disciplinary Domain of Medicine and Pharmacy, Faculty of Medicine, Department of Medical Biochemistry and Microbiology, Infection and Immunity.ORCID iD: 0000-0002-7456-9182
(English)Manuscript (preprint) (Other academic)
Abstract [en]

Horizontal gene transfer (HGT) between bacterial species is an important contributor to the development of multidrug-resistant (MDR) clinical pathogens. One example is the transfer of MDR conjugative plasmids from Klebsiella pneumoniae into Escherichia coli occurring within co-infected human hosts. Here, we asked whether, in mixed-species bacterial populations, we could also detect the transfer of chromosomal DNA. To address this, we screened 50 K. pneumoniae clinical isolates for their ability to generate chromosomal hybrids with E. coli as recipient. We found that 7/50 (14%) generated chromosomal hybrids at frequencies above our limit of detection (~10-11) up to a frequency of 5x10-10. Genome sequence analysis of 28 hybrids revealed multiple underlying mechanisms of DNA transfer and recombination. These included two different mechanisms by which a region of the E. coli chromosome was replaced with K. pneumoniae chromosomal DNA (Hfr-like mechanisms, with up to 586 kb of K. pneumoniae DNA acquired), and three different mechanisms by which F’-like plasmids carrying K. pneumoniae chromosomal DNA were created and transferred into E. coli. Accordingly, clinical isolates of K. pneumoniae have the ability to transfer, not just plasmids, but also intrinsically non-mobile chromosomal DNA into E. coli to create novel hybrid strains. Several of the isolated hybrids acquired genes related to virulence or antibiotic resistance. Chromosomal hybrids were stable after evolution in rich media and had a 70-95% fitness compared to MG1655. The results provide insights into the mechanisms involved in creating bacteria with novel hybrid chromosomes, which may have important implications for bacterial evolution, and the spread of antibiotic resistance and virulence genes.

Keywords [en]
bacterial evolution, hybrid chromosomes, antibiotic resistance, ICE, conjugative plasmids
National Category
Microbiology
Identifiers
URN: urn:nbn:se:uu:diva-586139OAI: oai:DiVA.org:uu-586139DiVA, id: diva2:2059331
Available from: 2026-05-12 Created: 2026-05-12 Last updated: 2026-05-12
In thesis
1. Chromosomal Hybrids: A source of globally-spread antibiotic-resistant pathogens
Open this publication in new window or tab >>Chromosomal Hybrids: A source of globally-spread antibiotic-resistant pathogens
2026 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Antibiotic susceptible bacteria can develop resistance to antibiotics through different genetic pathways. Among the most important are mutations occurring within the genome, and the acquisition through horizontal genetic transfer (HGT) of additional genes that can reduce susceptibility to antibiotics, located in mobile genetic elements such as plasmids. The discovery of pathogenic strains of Escherichia coli and Klebsiella pneumoniae that have a chromosome with at least 20% (> 1 Mb) of DNA originating from a foreign strain suggest that an alternative pathway remains unexplored: the conjugative transfer of large areas of chromosomal DNA, generating bacterial strains with hybrid chromosomes. The projects presented in this thesis focused on studying different aspects about the generation of chromosomal hybrids.  

We first designed and implemented a conjugation method that allows for the selection of bacteria with hybrid chromosomes from large populations and found that a large proportion of clinical strains of E. coli are capable of mobilizing their chromosome and can generate hybrids. Genome sequencing showed that several Mb of foreign DNA could be integrated into the recipient’s chromosome. Multiple resistance genes and alleles could be acquired simultaneously and without direct selection are maintained stably by the hybrid. Furthermore, we showed that any one conjugative mobile element, be it plasmid or ICE, was itself sufficient to mobilize the chromosome. 

In the second project, we studied interspecies hybrids of K. pneumoniae clinical isolates and E. coli laboratory strains. We found chromosomal hybrids to be stable in the absence of selective pressure and fit for growth. 

Third, we initiated a study to identify biological barriers that inhibit the formation of chromosomal hybrids in nature. We used both phenotypic selection and transposon generated mutants of the clinical E. coli strain ATCC25922 to identify genes which, when inactivated, lower the conjugation barrier to the formation of hybrids.  

Finally, we explored whether E. coli could maintain prototrophy in the absence of HGT by acquiring compensatory mutations within its genome. We found that compensatory bypass mechanisms in mutants with gene deletions causing auxotrophy were accessible only to a handful of pathways for amino acid synthesis. 

These results highlight the importance of HGT in bacterial survival and evolution. 

Place, publisher, year, edition, pages
Uppsala: Acta Universitatis Upsaliensis, 2026. p. 60
Series
Digital Comprehensive Summaries of Uppsala Dissertations from the Faculty of Medicine, ISSN 1651-6206 ; 2281
Keywords
bacterial evolution, hybrid chromosomes, antibiotic resistance, ICE, conjugative plasmids
National Category
Microbiology
Research subject
Microbiology; Medical Science
Identifiers
urn:nbn:se:uu:diva-586142 (URN)978-91-513-2879-9 (ISBN)
Public defence
2026-09-04, Sal IV, Biskopsgatan 3, Uppsala, 13:00 (English)
Opponent
Supervisors
Available from: 2026-06-11 Created: 2026-05-12 Last updated: 2026-06-11

Open Access in DiVA

No full text in DiVA

Authority records

Berruga Fernández, TaliaHuseby, Douglas L.Hughes, Diarmaid

Search in DiVA

By author/editor
Berruga Fernández, TaliaKawaguchi, JunHuseby, Douglas L.Hughes, Diarmaid
By organisation
Department of Medical Biochemistry and MicrobiologyMicrobiology and ImmunologyInfection and Immunity
Microbiology

Search outside of DiVA

GoogleGoogle Scholar

urn-nbn

Altmetric score

urn-nbn
Total: 11 hits
CiteExportLink to record
Permanent link

Direct link
Cite
Citation style
  • apa
  • ieee
  • modern-language-association
  • vancouver
  • Other style
More styles
Language
  • de-DE
  • en-GB
  • en-US
  • fi-FI
  • nn-NO
  • nn-NB
  • sv-SE
  • Other locale
More languages
Output format
  • html
  • text
  • asciidoc
  • rtf