Novel Multilocus Sequence Typing and Global Sequence Clustering Schemes for Characterizing the Population Diversity

Akuzike Kalizang'oma1,2, Brenda Kwambana-Adams1,2, Jia Mun Chan1

  • 1NIHR Mucosal Pathogens Research Unit, Division of Infection and Immunity, University College London, London, United Kingdom.

Insights

A new multilocus sequence typing (MLST) scheme and clustering method were developed for Streptococcus mitis. These tools reveal extensive genetic diversity and population structure, aiding in understanding its epidemiology.

Area of Science:

  • Microbiology
  • Genomics
  • Epidemiology

Background:

  • Streptococcus mitis is a common oral bacterium and opportunistic pathogen.
  • Limited molecular typing tools exist for S. mitis, hindering population diversity studies.
  • Understanding S. mitis population structure is crucial for its role in health and disease.

Purpose of the Study:

  • To develop and validate a multilocus sequence typing (MLST) scheme for Streptococcus mitis.
  • To define sequence clusters and understand the global population structure of S. mitis.
  • To provide standardized tools for S. mitis epidemiology and transmission research.

Main Methods:

  • Developed an MLST scheme using seven housekeeping genes (accA, gki, hom, oppC, patB, rlmN, tsf).
  • Utilized a dataset of 322 S. mitis genomes for scheme development and validation.
  • Applied the PopPUNK clustering algorithm to define global sequence clusters.

Main Results:

  • Identified 259 unique sequence types (STs) and 258 global sequence clusters.
  • Demonstrated high concordance (100%) between MLST and clustering, capturing extensive S. mitis diversity.
  • Revealed significant within- and between-host genetic diversity and potential transmission events.

Conclusions:

  • The novel MLST and clustering schemes provide robust tools for S. mitis strain typing and population analysis.
  • These standardized methods facilitate the integration of new data and enhance understanding of S. mitis epidemiology.
  • The developed schemes are available at the PubMLST database, promoting global research collaboration.

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