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A One Health study of Klebsiella pneumoniae species complex plasmids shows a highly diverse and ecologically adaptable plasmidome

delete2026-02-01
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PRE
AI
M
Mia A. Winkler *
M
Marit A K Hetland
H
Håkon Kaspersen
R
Ragna Bakksjø
E
Eva Bernhoff
A
Aasmund Fostervold
J
Jane Hawkey
B
Bjørn-Tore Lunestad
N
Nachiket P. Marathe
N
Niclas Raffelsberger
Ø
Ørjan Samuelsen
M
Marianne Sunde
S
Sundsfjord Arnfinn
L
Lam, Margaret M. C.
I
Iren H. Löhr
DOI:10.1099/mgen.0.001629delete
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Abstract

Abstract

En 中文
Plasmids play a pivotal role in the horizontal gene transfer (HGT) of antimicrobial resistance (AMR) and virulence determinants among bacteria. Members of the Klebsiella pneumoniae species complex (KpSC) can colonize humans, animals and various environments and frequently cause nosocomial and community- acquired infections in humans. While plasmid- borne AMR genes are prevalent in clinical strains, the diversity, distribution and association of plasmids encoding AMR and virulence across ecological niches remain poorly characterized. Understanding the traits governing successful plasmid transmission within and between ecological niches is critical for developing effective AMR prevention strategies. Here, we identify ecological and structural factors shaping plasmid persistence and dissemination. We analysed the plasmidome (i.e. total genetic content attributable to plasmids) of 578 whole- genome sequenced KpSC isolates collected in Norway between 2001 and 2020 from human (n=453), animal (n=102) and marine (n=23) sources. Plasmids from complete hybrid assemblies were annotated and clustered to evaluate the plasmid diversity and content across niches. Additionally, the representativeness of this plasmid collection was determined by clustering with a global collection of 8,656 circularized KpSC plasmids. In total, 1,415 circularized plasmids were identified and grouped according to rearrangement distance using Pling, resulting in 130 clusters (>= 2 plasmids each), of which 36% (n=47) contained plasmids from more than one niche. The plasmids exhibited significant diversity, as 37% (n=524) remained singletons after clustering. AMR and virulence genes existed across diverse clusters and singletons but predominantly resided on 120-250 kbp conjugative or mobilizable plasmids harbouring various transposable elements. Human isolates carried higher overall plasmid burdens and harboured most AMR- encoding plasmids, while animal isolates were significantly enriched for virulence plasmids (P<0.001), largely due to iuc3 plasmids in pigs. Plasmids from human, animal and marine isolates formed shared genetic clusters spanning ecological boundaries, revealing the existence of widely distributed backbones already primed for AMR gene acquisition. The extensive diversity of KpSC plasmids highlights the dynamic nature of plasmid evolution, driven by HGT and selective pressures. The presence of variable clusters, marked by high genetic diversity, indicates a dynamic plasmidome capable of rapid adaptation to environmental pressures through the acquisition and rearrangement of accessory genes.
Keywords:
antimicrobial resistance
Klebsiella pneumoniae
one health
plasmids

Journal

Microbial Genomics cover
Microbial Genomics
IF:
4
Papers:
1.4K
Citations:
5.6K

Organization

N
Norwegian Veterinary Institute
Scholars:
953
Papers: 787
Citations: 803
I
institute of marine research - norway
Scholars:
2.3K
Papers: 2.0K
Citations: 2
M
monash university
Scholars:
7.5K
Papers: 3.4K
Citations: 0
U
uit the arctic university of tromso
Scholars:
9.7K
Papers: 8.6K
Citations: 10
Stavanger University Hospital cover
Stavanger University Hospital
Scholars:
228
Papers: 133
Citations: 2.4K
U
university hospital of north norway
Scholars:
125
Papers: 84
Citations: 0
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