Whole genome sequencing reveals within-host genetic changes in paired meningococcal carriage isolates from Ethiopia

Guro K Bårnes1,2,3, Ola Brønstad Brynildsrud1, Bente Børud1,2

  • 1Division for Infection Control and Environmental Health, Norwegian Institute of Public Health, Oslo, Norway.

BMC Genomics
|May 27, 2017
PubMed
Abstract

Insights

Meningococcal bacteria change genetically during asymptomatic carriage within individuals. Whole genome sequencing revealed frequent changes in genes like pilE, crucial for understanding meningococcal population dynamics.

Area of Science:

  • Microbiology
  • Genetics
  • Epidemiology

Background:

  • Meningococcal colonization precedes transmission and disease, with asymptomatic carriage being common.
  • Carriage dynamics are complex, varying across populations and individuals over time.
  • Understanding genetic changes during carriage is key to understanding meningococcal population dynamics.

Purpose of the Study:

  • To investigate genetic alterations in meningococcal isolates during short-term asymptomatic carriage within individuals.
  • To identify specific genes and mechanisms involved in within-host meningococcal evolution.

Main Methods:

  • Whole genome sequencing (WGS) of paired meningococcal isolates from 50 asymptomatic carriers.
  • Phylogenetic analysis to compare isolates collected approximately two months apart.
  • Analysis of core genome multilocus sequence typing (cgMLST) genes and whole genome variations.

Main Results:

  • Most paired isolates from the same individual were closely related, with an average of 35 allelic differences.
  • Significant within-host genetic changes were observed in 566 of 1605 cgMLST genes.
  • The pilE gene showed the most frequent changes (85% of pairs), driven by phase variation and recombination.

Conclusions:

  • Short-term asymptomatic carriage involves significant within-host genetic divergence in meningococci.
  • Genes in the pilin family, restriction/modification systems, opacity proteins, and glycosylation pathways were frequently altered.
  • High-resolution genome-wide sequencing is essential for resolving isolate diversity and detecting genetic differences.