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Characterization of Inflammatory Responses During Intranasal Colonization with Streptococcus pneumoniae
Published on: January 17, 2014
Molecular characterization of a novel putative pathogen, Streptococcus nakanoensis sp. nov., isolated from sputum
Takeaki Wajima1, Takashi Sugawara2, Emi Tanaka1
1Department of Microbiology, Faculty of Pharmacy, Meijo University, Nagoya, Japan.
Abstract:
Reports of novel species of α-hemolytic Streptococcus have increased recently. However, limited information exists regarding the pathogenicity of these species, with the exception of Streptococcus pneumoniae and Streptococcus pseudopneumoniae. In this study, a quinolone-resistant α-Streptococcus strain, MTG105, was isolated from the sputum of a patient with pneumonia. This strain was first identified as S. pneumoniae at the hospital laboratory; however, it exhibited unique genetic features upon further analysis. Digital DNA-DNA hybridization and average nucleotide identity based on BLAST values from whole-genome sequencing revealed MTG105 to be a novel species closely related to S. pseudopneumoniae. Although MTG105 carried two copies of the pneumolysin gene, similar to S. pseudopneumoniae, this isolate exhibited susceptibility to optochin under both aerobic and 5% CO2 conditions. Notably, no biochemical features could be used to definitively identify this species. In an infection assay using organotypic lung tissue models, MTG105 induced epithelial damage comparable to that of S. pneumoniae and S. pseudopneumoniae, possibly suggesting its potential as a pathogenic α-Streptococcus. The natural transformation abilities of Streptococcus species facilitate their exchange of genes within the same genus, resulting in the existence of species with increasingly more diverse genome structures. Therefore, the identification of this species highlights the importance of monitoring the emergence of novel species exhibiting virulence and/or multidrug resistance. This isolate was proposed as a novel species, designated Streptococcus nakanoensis sp. nov. The type strain was MTG 105T (= JCM 35953T = CCUG 76894T).
Importance:
The genus Streptococcus encompasses a wide range of bacteria with more than 60 species. Recently, there has been a notable increase in reports of novel species of α-Streptococcus based on genomic analysis data. However, limited information exists regarding the pathogenicity of these species. In this study, a quinolone-resistant α-hemolytic Streptococcus strain, MTG105, was isolated from a patient with pneumonia. Genetic analysis revealed that this species was a novel species closely related to S. pseudopneumoniae. In an infection assay using organotypic lung tissue models, MTG105 induced epithelial damage comparable to that caused by S. pneumoniae and S. pseudopneumoniae, strongly suggesting its potential as a pathogenic α-Streptococcus. The natural transformation abilities of Streptococcus species facilitate gene exchange within the same genus, leading to the emergence of species with increasingly diverse genome structures. Therefore, the identification of this species underscores the importance of monitoring the emergence of novel species exhibiting virulence and/or multidrug resistance.
Insights
A novel quinolone-resistant alpha-hemolytic Streptococcus strain, MTG105, was identified as a new species, Streptococcus nakanoensis. This pathogenic bacterium, isolated from pneumonia patient sputum, exhibits virulence similar to Streptococcus pneumoniae.
Area of Science:
- Microbiology
- Genomics
- Pathogenesis
Background:
- The genus Streptococcus includes over 60 species, with increasing reports of novel alpha-hemolytic Streptococcus species identified through genomic analysis.
- Limited data exists on the pathogenicity of newly identified Streptococcus species, except for Streptococcus pneumoniae and Streptococcus pseudopneumoniae.
Purpose of the Study:
- To characterize a quinolone-resistant alpha-hemolytic Streptococcus strain, MTG105, isolated from a pneumonia patient.
- To determine the genetic relatedness and pathogenic potential of strain MTG105.
Main Methods:
- Whole-genome sequencing, including digital DNA-DNA hybridization and average nucleotide identity (ANI) using BLAST.
- Infection assays using organotypic lung tissue models.
- Biochemical characterization and optochin susceptibility testing.
Main Results:
- Genomic analysis identified MTG105 as a novel species, closely related to Streptococcus pseudopneumoniae, and proposed the name Streptococcus nakanoensis sp. nov. (type strain MTG 105T).
- Despite carrying two copies of the pneumolysin gene, MTG105 was susceptible to optochin.
- MTG105 induced epithelial damage in lung models comparable to S. pneumoniae and S. pseudopneumoniae, indicating pathogenic potential.
Conclusions:
- The identification of Streptococcus nakanoensis highlights the emergence of novel, potentially virulent, and multidrug-resistant Streptococcus species.
- Continuous monitoring for new species with virulence and/or multidrug resistance is crucial due to natural transformation facilitating gene exchange in Streptococcus.
- The unique genetic and biochemical profile of S. nakanoensis necessitates careful diagnostic approaches.
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