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Berruga Fernández, TaliaORCID iD iconorcid.org/0000-0001-6459-1397
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Publications (9 of 9) Show all publications
Berruga Fernández, T. (2026). Chromosomal Hybrids: A source of globally-spread antibiotic-resistant pathogens. (Doctoral dissertation). Uppsala: Acta Universitatis Upsaliensis
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
Berruga Fernández, T., Huseby, D. L., Koshla, O., Shaukat, A., Katana, A., Sayed, R., . . . Hughes, D. (2026). Integrated conjugative elements drive the formation of pandemic clones of Escherichia coli with hybrid chromosomes. Molecular biology and evolution, 43(4), Article ID msag085.
Open this publication in new window or tab >>Integrated conjugative elements drive the formation of pandemic clones of Escherichia coli with hybrid chromosomes
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2026 (English)In: Molecular biology and evolution, ISSN 0737-4038, E-ISSN 1537-1719, Vol. 43, no 4, article id msag085Article in journal (Refereed) Published
Abstract [en]

Pathogenic multidrug-resistant bacteria with hybrid chromosomes have emerged as a significant global healthcare threat. These include the pandemic Escherichia coli ST1193, the product of homologous recombination events involving two phylogenetically distant strains of E. coli, in which mutant alleles of the widely separated genes, gyrA and parC, generating high-level fluoroquinolone resistance were acquired. The mechanisms and frequency of hybrid formation are poorly understood. We developed a robust hybrid selection procedure and applied it to 118 clinical UTI isolates of E. coli mixed with suitable recipient strains. Hybrids were selected from 39% of isolates. All hybrids were recombinants of donor and recipient chromosomal DNA (median length of donor DNA 367 kb), with 90% also acquiring conjugative mobile genetic elements (MGE) from the donor. We showed that individual conjugative plasmids, and integrative conjugative elements (ICE), from donors were sufficient to drive hybrid formation. These observations strongly support conjugative chromosomal DNA transfer as the major mechanism underlying hybrid formation. ICE are genome-integrated and passively propagated but when transferring to recipients they normally do so by excising and producing their own conjugation machinery. We found that ICE were responsible for the highest frequencies of hybrid chromosome formation. They could mobilize DNA around the full length of the chromosome, including the simultaneous acquisition of mutant variants of gyrA and parC, separated by ∼826 kb, generating highly fluoroquinolone-resistant bacteria in a single event. Bacterial hybrid chromosome formation driven by conjugative MGE may be an important and widespread mechanism in the emergence and evolution of high-risk bacterial pathogens.

Place, publisher, year, edition, pages
Oxford University Press, 2026
Keywords
bacterial evolution, hybrid chromosomes, antibiotic resistance, ICE, conjugative plasmids
National Category
Microbiology
Identifiers
urn:nbn:se:uu:diva-585561 (URN)10.1093/molbev/msag085 (DOI)001752850900001 ()41950494 (PubMedID)2-s2.0-105037763234 (Scopus ID)
Funder
Swedish Research Council, 2021-04814
Available from: 2026-05-06 Created: 2026-05-06 Last updated: 2026-05-28Bibliographically approved
Huseby, D. L., Cao, S., Zamaratski, E., Sooriyaarachchi, S., Ahmad, S., Bergfors, T., . . . Karlén, A. (2024). Antibiotic class with potent in vivo activity targeting lipopolysaccharide synthesis in Gram-negative bacteria. Proceedings of the National Academy of Sciences of the United States of America, 121(15), Article ID e2317274121.
Open this publication in new window or tab >>Antibiotic class with potent in vivo activity targeting lipopolysaccharide synthesis in Gram-negative bacteria
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2024 (English)In: Proceedings of the National Academy of Sciences of the United States of America, ISSN 0027-8424, E-ISSN 1091-6490, Vol. 121, no 15, article id e2317274121Article in journal (Refereed) Published
Abstract [en]

Here, we describe the identification of an antibiotic class acting via LpxH, a clinically unexploited target in lipopolysaccharide synthesis. The lipopolysaccharide synthesis pathway is essential in most Gram-negative bacteria and there is no analogous pathway in humans. Based on a series of phenotypic screens, we identified a hit targeting this pathway that had activity on efflux-defective strains of Escherichia coli. We recognized common structural elements between this hit and a previously published inhibitor, also with activity against efflux-deficient bacteria. With the help of X-ray structures, this information was used to design inhibitors with activity on efflux-proficient, wild-type strains. Optimization of properties such as solubility, metabolic stability and serum protein binding resulted in compounds having potent in vivo efficacy against bloodstream infections caused by the critical Gram-negative pathogens E. coli and Klebsiella pneumoniae. Other favorable properties of the series include a lack of pre-existing resistance in clinical isolates, and no loss of activity against strains expressing extended-spectrum-beta-lactamase, metallo-beta-lactamase, or carbapenemase-resistance genes. Further development of this class of antibiotics could make an important contribution to the ongoing struggle against antibiotic resistance.

Place, publisher, year, edition, pages
Proceedings of the National Academy of Sciences (PNAS), 2024
Keywords
antibiotics, structure-based drug design, lipopolysaccharide, Gram-negative, LpxH
National Category
Medicinal Chemistry Infectious Medicine Microbiology in the medical area Biochemistry Molecular Biology Organic Chemistry
Identifiers
urn:nbn:se:uu:diva-540058 (URN)10.1073/pnas.2317274121 (DOI)001314718600002 ()38579010 (PubMedID)2-s2.0-85194757767 (Scopus ID)
Funder
Swedish Research CouncilSwedish Research Council
Available from: 2024-10-11 Created: 2024-10-11 Last updated: 2025-02-20Bibliographically approved
Durcik, M., Cotman, A. E., Toplak, Z., Mozina, S., Skok, Z., Szili, P. E., . . . Masic, L. P. (2023). New Dual Inhibitors of Bacterial Topoisomerases with Broad-Spectrum Antibacterial Activity and In Vivo Efficacy against Vancomycin-Intermediate Staphylococcus aureus. Journal of Medicinal Chemistry, 66(6), 3968-3994
Open this publication in new window or tab >>New Dual Inhibitors of Bacterial Topoisomerases with Broad-Spectrum Antibacterial Activity and In Vivo Efficacy against Vancomycin-Intermediate Staphylococcus aureus
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2023 (English)In: Journal of Medicinal Chemistry, ISSN 0022-2623, E-ISSN 1520-4804, Vol. 66, no 6, p. 3968-3994Article in journal (Refereed) Published
Abstract [en]

A new series of dual low nanomolar benzothiazole inhibitors of bacterial DNA gyrase and topoisomerase IV were developed. The resulting compounds show excellent broad-spectrum antibacterial activities against Gram-positive Enterococcus faecalis, Enterococcus faecium and multidrug resistant (MDR) Staphylococcus aureus strains [best compound minimal inhibitory concentrations (MICs): range, <0.03125–0.25 μg/mL] and against the Gram-negatives Acinetobacter baumannii and Klebsiella pneumoniae (best compound MICs: range, 1–4 μg/mL). Lead compound 7a was identified with favorable solubility and plasma protein binding, good metabolic stability, selectivity for bacterial topoisomerases, and no toxicity issues. The crystal structure of 7a in complex with Pseudomonas aeruginosa GyrB24 revealed its binding mode at the ATP-binding site. Expanded profiling of 7a and 7h showed potent antibacterial activity against over 100 MDR and non-MDR strains of A. baumannii and several other Gram-positive and Gram-negative strains. Ultimately, in vivo efficacy of 7a in a mouse model of vancomycin-intermediate S. aureus thigh infection was also demonstrated.

Place, publisher, year, edition, pages
American Chemical Society (ACS), 2023
National Category
Medicinal Chemistry Microbiology in the medical area Infectious Medicine
Identifiers
urn:nbn:se:uu:diva-501871 (URN)10.1021/acs.jmedchem.2c01905 (DOI)000948036100001 ()36877255 (PubMedID)
Funder
EU, FP7, Seventh Framework ProgrammeWellcome trust, 110072/Z/15/ZEU, Horizon 2020, H2020-ERC-2014-CoG 648364
Available from: 2023-05-16 Created: 2023-05-16 Last updated: 2023-05-16Bibliographically approved
Becker, K., Cao, S., Nilsson, A., Erlandsson, M., Hotop, S.-K., Kuka, J., . . . Hobbie, S. N. (2021). Antibacterial activity of apramycin at acidic pH warrants wide therapeutic window in the treatment of complicated urinary tract infections and acute pyelonephritis. EBioMedicine, 73, Article ID 103652.
Open this publication in new window or tab >>Antibacterial activity of apramycin at acidic pH warrants wide therapeutic window in the treatment of complicated urinary tract infections and acute pyelonephritis
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2021 (English)In: EBioMedicine, E-ISSN 2352-3964, Vol. 73, article id 103652Article in journal (Refereed) Published
Abstract [en]

Background: The clinical-stage drug candidate EBL-1003 (apramycin) represents a distinct new subclass of aminoglycoside antibiotics for the treatment of drug-resistant infections. It has demonstrated best-in-class coverage of resistant isolates, and preclinical efficacy in lung infection models. However, preclinical evidence for its utility in other disease indications has yet to be provided. Here we studied the therapeutic potential of EBL-1003 in the treatment of complicated urinary tract infection and acute pyelonephritis (cUTI/AP).

Methods: A combination of data-base mining, antimicrobial susceptibility testing, time-kill experiments, and four murine infection models was used in a comprehensive assessment of the microbiological coverage and efficacy of EBL-1003 against Gram-negative uropathogens. The pharmacokinetics and renal toxicology of EBL-1003 in rats was studied to assess the therapeutic window of EBL-1003 in the treatment of cUTI/AP.

Findings: EBL-1003 demonstrated broad-spectrum activity and rapid multi-log CFU reduction against a phenotypic variety of bacterial uropathogens including aminoglycoside-resistant clinical isolates. The basicity of amines in the apramycin molecule suggested a higher increase in positive charge at urinary pH when compared to gentamicin or amikacin, resulting in sustained drug uptake and bactericidal activity, and consequently in potent efficacy in mouse infection models. Renal pharmacokinetics, biomarkers for toxicity, and kidney histopathology in adult rats all indicated a significantly lower nephrotoxicity of EBL-1003 than of gentamicin.

Interpretation: This study provides preclinical proof-of-concept for the efficacy of EBL-1003 in cUTI/AP. Similar efficacy but lower nephrotoxicity of EBL-1003 in comparison to gentamicin may thus translate into a higher safety margin and a wider therapeutic window in the treatment of cUTI/API.

Place, publisher, year, edition, pages
ElsevierElsevier BV, 2021
Keywords
Anti-bacterial agents, proton-motive force, delta pH, permeability, drug uptake, urinary tract, efficacy, nephrotoxicity
National Category
Pharmacology and Toxicology
Identifiers
urn:nbn:se:uu:diva-460225 (URN)10.1016/j.ebiom.2021.103652 (DOI)000721615900014 ()34740109 (PubMedID)
Funder
EU, FP7, Seventh Framework Programme, 115583Swedish Research Council, 2018-05501Swedish Foundation for Strategic Research, RIF14-0078European Commission, 2018-05501
Available from: 2022-01-14 Created: 2022-01-14 Last updated: 2024-01-15Bibliographically approved
Berruga-Fernández, T., Robesyn, E., Korhonen, T., Penttinen, P. & Jansa, J. M. (2021). Risk assessment for the transmission of Middle East respiratory syndrome coronavirus (MERS-CoV) on aircraft: a systematic review. Epidemiology and Infection, 149, Article ID e142.
Open this publication in new window or tab >>Risk assessment for the transmission of Middle East respiratory syndrome coronavirus (MERS-CoV) on aircraft: a systematic review
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2021 (English)In: Epidemiology and Infection, ISSN 0950-2688, E-ISSN 1469-4409, Vol. 149, article id e142Article, review/survey (Refereed) Published
Abstract [en]

Middle East respiratory syndrome coronavirus (MERS-CoV) causes a potentially fatal respiratory disease. Although it is most common in the Arabian Peninsula, it has been exported to 17 countries outside the Middle East, mostly through air travel. The Risk Assessment Guidelines for Infectious Diseases transmitted on Aircraft (RAGIDA) advise authorities on measures to take when an infected individual travelled by air. The aim of this systematic review was to gather all available information on documented MERS-CoV cases that had travelled by air, to update RAGIDA. The databases used were PubMed, Embase, Scopus and Global Index Medicus; Google was searched for grey literature and hand searching was performed on the EU Early Warning and Response System and the WHO Disease Outbreak News. Forty-seven records were identified, describing 21 cases of MERS that had travelled on 31 flights. Contact tracing was performed for 17 cases. Most countries traced passengers sitting in the same row and the two rows in front and behind the case. Only one country decided to trace all passengers and crew. No cases of in-flight transmission were observed; thus, considering the resources it requires, a conservative approach may be appropriate when contact tracing passengers and crew where a case of MERS has travelled by air.

Place, publisher, year, edition, pages
Cambridge University Press, 2021
Keywords
Aircraft, coronavirus infection, in-flight transmission, MERS-CoV, Middle East respiratory syndrome coronavirus, travel, RAGIDA
National Category
Infectious Medicine Public Health, Global Health and Social Medicine
Identifiers
urn:nbn:se:uu:diva-453387 (URN)10.1017/S095026882100131X (DOI)000664319100001 ()34108058 (PubMedID)
Available from: 2021-09-17 Created: 2021-09-17 Last updated: 2025-02-20Bibliographically approved
Berruga Fernández, T., Henriksson, S., Borowiec, K., Huseby, D. L. & Hughes, D.Biological barriers to chromosomal hybrid formation in Escherichia coli.
Open this publication in new window or tab >>Biological barriers to chromosomal hybrid formation in Escherichia coli
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(English)Manuscript (preprint) (Other academic)
Abstract [en]

Integrated conjugative elements can drive the transfer of chromosomal DNA from one Escherichia coli strain into another, generating strains with hybrid chromosomes. Several pandemic virulent multidrug-resistant strains of E. coli are chromosomal hybrids. Here we show that the frequency of hybrid formation can differ by orders of magnitude depending on the parental combination. However, the donor-recipient characteristics affecting hybridization efficiency are poorly understood. The laboratory workhorse strain E. coli MG1655 is significantly more proficient as a recipient in hybrid generation than E. coli ATCC25922, the strain used for quality control in antibiotic susceptibility testing. Focusing on these two strains we tested several hypotheses to identify barriers to hybrid formation. Among these, we found that relative conjugation efficiency correlated with hybrid formation frequency. To explore this, we used transposon mutagenesis to identify genes in ATCC25922 whose inactivation relieves a conjugation barrier. Among the first 1500 mutants tested we isolated and identified one that was 500-fold more conjugation-permissive than the parental strain. Whole genome sequencing identified this candidate ‘barrier’ gene as a protein-coding sequence on plasmid 3. Understanding the barrier mechanism will require further study. We are currently testing whether inactivation of this gene also increases chromosomal hybrid formation. The importance of this work is that it could significantly deepen our understanding of preferred pathways of HGT, something that will have broad application in both clinical and evolutionary biology.

Keywords
chromosomal hybrids, O-antigen, conjugation, clinical isolates
National Category
Microbiology
Identifiers
urn:nbn:se:uu:diva-586140 (URN)
Available from: 2026-05-12 Created: 2026-05-12 Last updated: 2026-05-12
Berruga Fernández, T., Kawaguchi, J., Huseby, D. L. & Hughes, D.Clinical isolates of Klebsiella pneumoniae can transfer chromosomal DNA into Escherichia coli to create novel bacteria with stable hybrid chromosomes.
Open this publication in new window or tab >>Clinical isolates of Klebsiella pneumoniae can transfer chromosomal DNA into Escherichia coli to create novel bacteria with stable hybrid chromosomes
(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
bacterial evolution, hybrid chromosomes, antibiotic resistance, ICE, conjugative plasmids
National Category
Microbiology
Identifiers
urn:nbn:se:uu:diva-586139 (URN)
Available from: 2026-05-12 Created: 2026-05-12 Last updated: 2026-05-12
Lindahl, O., Berruga Fernández, T., Soekhoe, J., Huseby, D. L. & Hughes, D.The evolutionary maintenance of amino acid prototrophy in Escherichia coli.
Open this publication in new window or tab >>The evolutionary maintenance of amino acid prototrophy in Escherichia coli
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(English)Manuscript (preprint) (Other academic)
Abstract [en]

Escherichia coli is a prototroph and can synthesize all twenty proteinogenic amino acids when required to grow in minimal medium. There are approximately sixty protein-coding genes individually essential for amino acid synthesis. This is a large mutational target for the accumulation of detrimental mutations. E. coli can rewire biosynthetic pathways in response to mutational damage but the limits of this capacity are poorly understood. Here, to address evolutionary robustness, we asked whether and how the phenotypes of irreversible mutations causing auxotrophy could be suppressed or bypassed in the absence of horizontal gene transfer (HGT). Spontaneous suppressors could be selected for only ten of fifty-nine mutants tested (detection limit ~7x10-11). Mechanisms of suppression included: regional amplifications; mutations increasing gene or operon expression; mutations relaxing enzyme specificity; and mutations causing biochemical pathway diversions. Overall, the data show that spontaneous suppression of auxotrophy caused by an irreversible mutation is an evolutionary survival mechanism relevant only to a minority of the genes essential for amino acid synthesis. As a consequence, the essential genetic foundations for amino acid prototrophy are expected to be degraded over time by mutations (Muller’s ratchet) and metabolic rewiring alone will be insufficient to counteract this effect. This implies that maintaining phenotypes, including prototrophy in E. coli, and potentially other bacterial species, is likely to be reliant on HGT of housekeeping genes to counteract the effects of inevitable mutational inactivation. Accordingly, chromosomal HGT in bacteria may be critical for survival across diverse environmental niches. 

Keywords
Muller’s ratchet, auxotrophy, compensatory evolution, tandem amplification, amino acid biosynthesis, biosynthetic pathway diversion
National Category
Microbiology
Identifiers
urn:nbn:se:uu:diva-586141 (URN)
Available from: 2026-05-12 Created: 2026-05-12 Last updated: 2026-05-12
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ORCID iD: ORCID iD iconorcid.org/0000-0001-6459-1397

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