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Updated: Jan 28, 2026

Capsular Serotyping of Streptococcus pneumoniae by Latex Agglutination
Published on: September 25, 2014
Prophage Excision in Streptococcus pneumoniae Serotype 19A ST320 Promote Colonization: Insight Into Its Evolution
Yi-Yin Chen1, Jin-Town Wang2,3, Tzu-Lung Lin4
1Department of Pediatrics, Chang Gung Children's Hospital, Chang Gung Memorial Hospital, College of Medicine, Chang Gung University, Taoyuan, Taiwan.
Abstract:
Streptococcus pneumoniae 19A ST320, a multidrug-resistant strain with high disease severity that notoriously spread before the use of expanded pneumococcal conjugate vaccines, was derived from a capsular switching event between an international strain Taiwan 19F-14 (ST236) and a serotype 19A strain. However, the molecular mechanisms underlying the adaptive evolution of 19F ST236 to 19A ST320 are unknown. In this study, we compared 19A ST320 to its ancestral clone, 19F ST236, in terms of adherence to respiratory epithelial cells, whole transcriptome, and ability to colonize a young mouse model. Serotype 19A ST320 showed five-fold higher adherence to A549 cells than serotype 19F ST236. High-throughput mRNA sequencing identified a prophage region located between dnaN and ychF in both strains; however, the genes in this region were expressed at significantly higher levels in 19A ST320 than in 19F ST236. Analysis by polymerase chain reaction (PCR) showed that the prophage is able to spontaneously excise from the chromosome and form a circular episome in 19A ST320, but not in 19F ST236. Deletion of the integrase in the prophage of 19A ST320 decreased spontaneous excision and cell adherence, which were restored by complementation. Competition experiments in mice showed that the integrase mutant was six-fold less competitive than the 19A ST320 parent (competitive index [CI]: 0.16; p = 0.02). The 19A ST320 prophage-deleted strain did not change cell adherence capacity, whereas prophage integration strains (integrase mutant and 19F) had decreased expression of the down-stream ychF gene compared to that of 19A ST320. Further deletion of ychF significantly reduced cell adherence. In conclusions, these findings suggest that spontaneous prophage induction confers a competitive advantage to virulent pneumococci.
Insights
Spontaneous prophage induction in Streptococcus pneumoniae 19A ST320 enhances bacterial adherence and colonization. This adaptation, driven by prophage integrase and YchF expression, provides a competitive advantage to virulent pneumococci.
Area of Science:
- Microbiology
- Genetics
- Evolutionary Biology
Background:
- Streptococcus pneumoniae 19A ST320 is a multidrug-resistant strain responsible for severe disease.
- This strain evolved from 19F ST236 via capsular switching, but the underlying molecular mechanisms are unknown.
Purpose of the Study:
- To investigate the molecular mechanisms behind the adaptive evolution of 19F ST236 to 19A ST320.
- To compare the adherence, transcriptome, and colonization abilities of 19A ST320 and its ancestral clone 19F ST236.
Main Methods:
- Comparative analysis of adherence to respiratory epithelial cells (A549).
- Whole transcriptome sequencing (mRNA) to identify differential gene expression.
- Polymerase chain reaction (PCR) to analyze prophage excision.
- In vivo competition experiments in a mouse model.
Main Results:
- 19A ST320 exhibited five-fold higher adherence to A549 cells than 19F ST236.
- A prophage region showed significantly higher gene expression in 19A ST320.
- Spontaneous prophage excision occurred in 19A ST320 but not 19F ST236.
- Integrase deletion reduced excision and adherence, impacting colonization competitiveness (CI: 0.16).
- YchF deletion significantly reduced cell adherence.
Conclusions:
- Spontaneous prophage induction, mediated by integrase, enhances Streptococcus pneumoniae adherence and colonization.
- The YchF gene plays a crucial role in pneumococcal adherence.
- These findings suggest prophage induction confers a competitive advantage to virulent pneumococci.
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