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Heuristic Mining of Hierarchical Genotypes and Accessory Genome Loci in Bacterial Populations
Published on: December 7, 2021
Genomic revisitation and reclassification of the genus Providencia
Xu Dong1,2, Huiqiong Jia3,4, Yuyun Yu1
1State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, National Clinical Research Center for Infectious Diseases, Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases, The First Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou, Zhejiang, China.
Abstract:
Members of Providencia, although typically opportunistic, can cause severe infections in immunocompromised hosts. Recent advances in genome sequencing provide an opportunity for more precise study of this genus. In this study, we first identified and characterized a novel species named Providencia zhijiangensis sp. nov. It has ≤88.23% average nucleotide identity (ANI) and ≤31.8% in silico DNA-DNA hybridization (dDDH) values with all known Providencia species, which fall significantly below the species-defining thresholds. Interestingly, we found that Providencia stuartii and Providencia thailandensis actually fall under the same species, evidenced by an ANI of 98.59% and a dDDH value of 90.4%. By fusing ANI with phylogeny, we have reclassified 545 genomes within this genus into 20 species, including seven unnamed taxa (provisionally titled Taxon 1-7), which can be further subdivided into 23 lineages. Pangenomic analysis identified 1,550 genus-core genes in Providencia, with coenzymes being the predominant category at 10.56%, suggesting significant intermediate metabolism activity. Resistance analysis revealed that most lineages of the genus (82.61%, 19/23) carry a high number of antibiotic-resistance genes (ARGs) and display diverse resistance profiles. Notably, the majority of ARGs are located on plasmids, underscoring the significant role of plasmids in the resistance evolution within this genus. Three species or lineages (P. stuartii, Taxon 3, and Providencia hangzhouensis L12) that possess the highest number of carbapenem-resistance genes suggest their potential influence on clinical treatment. These findings underscore the need for continued surveillance and study of this genus, particularly due to their role in harboring antibiotic-resistance genes.
Importance:
The Providencia genus, known to harbor opportunistic pathogens, has been a subject of interest due to its potential to cause severe infections, particularly in vulnerable individuals. Our research offers groundbreaking insights into this genus, unveiling a novel species, Providencia zhijiangensis sp. nov., and highlighting the need for a re-evaluation of existing classifications. Our comprehensive genomic assessment offers a detailed classification of 545 genomes into distinct species and lineages, revealing the rich biodiversity and intricate species diversity within the genus. The substantial presence of antibiotic-resistance genes in the Providencia genus underscores potential challenges for public health and clinical treatments. Our study highlights the pressing need for increased surveillance and research, enriching our understanding of antibiotic resistance in this realm.
Insights
This study identifies a new species, *Providencia zhijiangensis*, and reclassifies the *Providencia* genus using genomic data. It reveals widespread antibiotic resistance genes, highlighting the need for ongoing surveillance of these opportunistic pathogens.
Area of Science:
- Microbiology
- Genomics
- Bacterial Taxonomy
Background:
- The *Providencia* genus comprises opportunistic pathogens capable of causing severe infections, especially in immunocompromised individuals.
- Genomic sequencing offers advanced tools for precise bacterial classification and understanding of genus evolution.
- Previous classifications may not fully capture the diversity and evolutionary relationships within the *Providencia* genus.
Purpose of the Study:
- To identify and characterize novel species within the *Providencia* genus.
- To re-evaluate and refine the taxonomic classification of the *Providencia* genus using genomic data.
- To investigate the prevalence and distribution of antibiotic-resistance genes (ARGs) within the genus.
Main Methods:
- Whole-genome sequencing and comparative genomic analyses, including average nucleotide identity (ANI) and in silico DNA-DNA hybridization (dDDH).
- Phylogenetic analysis to establish evolutionary relationships among *Providencia* strains.
- Pangenomic analysis to identify core genes and resistance profiling to detect ARGs.
Main Results:
- A novel species, *Providencia zhijiangensis* sp. nov., was identified based on ANI and dDDH values below species-defining thresholds.
- Genomic reclassification of 545 genomes resulted in 20 distinct species and 23 lineages, including seven unnamed taxa.
- *Providencia stuartii* and *Providencia thailandensis* were found to belong to the same species.
- The majority of *Providencia* lineages (82.61%) harbor numerous ARGs, often located on plasmids, with specific species/lineages showing high carbapenem-resistance gene counts.
- Pangenomic analysis revealed 1,550 genus-core genes, with coenzymes being the most abundant functional category.
Conclusions:
- The study establishes *Providencia zhijiangensis* as a new species and provides a refined genomic-based classification for the *Providencia* genus.
- The *Providencia* genus exhibits significant genomic diversity and a high prevalence of ARGs, posing potential clinical challenges.
- Increased surveillance and further research into the antibiotic resistance mechanisms and evolution within this genus are crucial for public health.
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