Classification and molecular characteristics of tet(X)-carrying plasmids in Acinetobacter species

Chong Chen1,2,3, Ping-Yu Huang2,3, Chao-Yue Cui4

  • 1Joint International Research Laboratory of Agriculture and Agri-Product Safety, Ministry of Education of China, Institutes of Agricultural Science and Technology Development, Yangzhou University, Yangzhou, China.

Frontiers in Microbiology
|September 9, 2022
PubMed

Insights

Plasmid-mediated tet(X) genes in Acinetobacter compromise tigecycline effectiveness. This study classifies these plasmids, finding the dominant GR31 group and identifying mobile genetic elements that confer multidrug resistance, raising clinical concerns.

Area of Science:

  • Microbiology
  • Genetics
  • Molecular Biology

Background:

  • Plasmid-mediated tet(X) genes in Acinetobacter species are a growing threat to tigecycline, a last-resort antibiotic.
  • The classification and homology of these tet(X)-positive plasmids are poorly understood, hindering effective control strategies.

Purpose of the Study:

  • To classify tet(X)-positive Acinetobacter plasmids using genome-based typing.
  • To analyze their structural characteristics, transferability, and in vivo impact.
  • To understand the genetic basis of tigecycline resistance in Acinetobacter.

Main Methods:

  • Genome-based replicon typing was used to classify 34 plasmids from nine Acinetobacter species.
  • Structural analysis, conjugation, and in vivo Galleria mellonella infection models were employed.
  • Plasmid sequencing identified tet(X) gene variants and associated mobile genetic elements.

Main Results:

  • Twenty-eight plasmids belonged to the Rep_3 superfamily, classified into six homology groups, with GR31 being dominant (82.1%).
  • tet(X3)-positive plasmids were primarily in GR31, while a tet(X6)-positive plasmid was unclassified.
  • tet(X)-positive GR31 plasmids shared common replication, stability, and accessory modules, with ISCR2 frequently adjacent to tet(X) genes. Mobile plasmids conferred multidrug resistance and increased tigecycline resistance in vivo.

Conclusions:

  • The study provides a comprehensive classification of tet(X)-positive Acinetobacter plasmids, highlighting the prevalence of the GR31 group.
  • The findings reveal the genetic structure and mobility of these plasmids, emphasizing their role in spreading multidrug resistance.
  • The increased tigecycline resistance and mortality in vivo underscore the clinical significance of these plasmids and the urgent need for further research and control measures.

Related Concept Videos

Plasmids01:28

Plasmids

Plasmids are extrachromosomal DNA molecules found in bacteria, archaea, and some eukaryotic microbes like yeast. These small, circular DNA structures typically contain fewer than 30 genes, although some may exist linearly. Plasmids vary in their number within a cell, known as copy number. Single-copy plasmids are present in one copy per cell and multi-copy plasmids are present in multiple copies, reaching over 100 copies per cell.Plasmids usually replicate independently of the chromosomal DNA...
97
Bacterial Phylum Tenericutes01:24

Bacterial Phylum Tenericutes

The phylum Tenericutes, which includes the single class Mollicutes, comprises bacteria that lack cell walls. The term "Mollicutes" derives from the Latin word mollis, meaning "soft." These organisms are among the smallest known and are commonly referred to as mycoplasmas due to the prominence of the genus Mycoplasma, which includes well-known human pathogens. Despite their inability to stain gram-positively (a result of their lack of cell walls), mycoplasmas are phylogenetically related to the...
71
Bacterial Phylum Actinobacteria01:30

Bacterial Phylum Actinobacteria

Coryneform bacteria are gram-positive, aerobic, nonmotile rods that exhibit irregular, club-shaped, or V-shaped arrangements. Their V-shape results from snapping division, where the inner cell wall layer forms the cross-wall, while the outer layer remains intact until it ruptures on one side, causing the daughter cells to bend away.The primary genera are Corynebacterium and Arthrobacter. Corynebacterium includes diverse species, ranging from saprophytes to pathogens like Corynebacterium...
98
Bacterial Phylum Proteobacteria01:26

Bacterial Phylum Proteobacteria

Proteobacteria, one of the largest and most diverse bacterial phyla, encompasses a wide range of Gram-negative bacteria distinguished by their outer membrane composed of lipopolysaccharides. These microorganisms exhibit various metabolic capabilities, including phototrophy, chemolithotrophy, and heterotrophy, and thrive in diverse environments from soil to aquatic systems and host-associated niches. The phylum is divided into six classes: Alphaproteobacteria, Betaproteobacteria,...
112
Bacterial Phylum Bacteroidota01:26

Bacterial Phylum Bacteroidota

The phylum Bacteroidota includes over 700 species classified into four primary orders: Bacteroidales, Cytophagales, Flavobacteriales, and Sphingobacteriales. These gram-negative, non-sporulating rods exhibit saccharolytic capabilities and can be aerobic or fermentative, encompassing obligate aerobes, facultative aerobes, and obligate anaerobes. Many species display gliding motility, though some are nonmotile or use flagella. The genus Bacteroides is well-studied due to its significant role in...
102
Mechanism of Conjugation01:19

Mechanism of Conjugation

Bacterial conjugation is a mechanism of horizontal gene transfer that enables the exchange of genetic material between bacterial cells through direct contact. This process is facilitated by a donor cell carrying a conjugative plasmid, which encodes genes necessary for pilus formation, DNA replication, and transfer. The conjugative plasmid plays a central role in initiating and executing the transfer of genetic material.The tra region of the conjugative plasmid encodes proteins responsible for...
101