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Inferring patient to patient transmission of Mycobacterium tuberculosis from whole genome sequencing data

  • J.M. Bryant
  • , A.C. Schürch
  • , H. van Deutekom
  • , S.R. Harris
  • , J.L. de Beer
  • , V.C.L. de Jager
  • , K. Kremer
  • , S.A.F.T. van Hijum
  • , R.J. Siezen
  • , M. Borgdorff
  • , S.D. Bentley
  • , J. Parkhill
  • , D. van Soolingen

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

BACKGROUND: Mycobacterium tuberculosis is characterised by limited genomic diversity, which makes the application of whole genome sequencing particularly attractive for clinical and epidemiological investigation. However, in order to confidently infer transmission events, an accurate knowledge of the rate of change in the genome over relevant timescales is required. METHODS: We attempted to estimate a molecular clock by sequencing 199 isolates from epidemiologically linked tuberculosis cases, collected in the Netherlands spanning almost 16 years. RESULTS: Multiple analyses support an average mutation rate of ~0.3 SNPs per genome per year. However, all analyses revealed a very high degree of variation around this mean, making the confirmation of links proposed by epidemiology, and inference of novel links, difficult. Despite this, in some cases, the phylogenetic context of other strains provided evidence supporting the confident exclusion of previously inferred epidemiological links. CONCLUSIONS: This in-depth analysis of the molecular clock revealed that it is slow and variable over short time scales, which limits its usefulness in transmission studies. However, the superior resolution of whole genome sequencing can provide the phylogenetic context to allow the confident exclusion of possible transmission events previously inferred via traditional DNA fingerprinting techniques and epidemiological cluster investigation. Despite the slow generation of variation even at the whole genome level we conclude that the investigation of tuberculosis transmission will benefit greatly from routine whole genome sequencing
Original languageEnglish
Article number110
JournalBmc Infectious Diseases
Volume13
Issue number1
DOIs
Publication statusPublished - 2013

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • resistance
  • strains
  • mutations
  • evolution
  • epidemiology
  • complex
  • gene

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