Modelling evolutionary pathways for commensalism and hypervirulence in Neisseria meningitidis

Christopher A Mullally1, August Mikucki1, Michael J Wise1,2

  • 1The Marshall Center for Infectious Diseases Research and Training, School of Biomedical Science, University of Western Australia, Perth, Australia.

Microbial Genomics
|October 27, 2021
PubMed

Insights

Neisseria meningitidis evolves through genomic islands, not loss-of-function mutations, to cause invasive meningococcal disease (IMD). This study models evolutionary pathways for pathogenic and commensal lineages.

Area of Science:

  • Microbiology
  • Evolutionary Biology
  • Genomics

Background:

  • Neisseria meningitidis, the meningococcus, causes invasive meningococcal disease (IMD) and exists as distinct clonal complexes.
  • Some lineages are commensal colonizers, while others are hypervirulent and over-represented in IMD cases.

Purpose of the Study:

  • To investigate the evolutionary pathways differentiating pathogenic and commensal Neisseria meningitidis lineages.
  • To examine the roles of horizontally acquired genomic islands (GIs) and loss-of-function (LOF) mutations in meningococcal evolution.

Main Methods:

  • Analyzed 4850 N. meningitidis genomes from the BIGSdb database.
  • Identified 82 GIs and 144 frameshift loci across 11 lineages.
  • Utilized a new computational tool, Phaser, to detect frameshift mutations.
  • Assessed the association of GIs and LOF mutations with genetic lineage and invasiveness using the disease carriage ratio.

Main Results:

  • 82 GIs were identified and associated with genetic lineage and invasiveness, but LOF mutations were not.
  • Phaser identified 105 frameshift loci with statistically significant non-random distribution.
  • Genomic islands were enriched for genes involved in host attachment, iron uptake, and toxin expression.

Conclusions:

  • Genomic islands, not LOF mutations, appear to drive the evolution of hypervirulent Neisseria meningitidis.
  • Acquisition of GIs likely enhances competition within the human nasopharynx, facilitating transition to invasive disease.
  • Evolutionary pathways favor traits that increase host cell access, leading to a higher risk of IMD.

Related Concept Videos

Transduction01:16

Transduction

Among the three main modes of HGT—transformation, conjugation, and transduction—transduction is unique in that it is mediated by bacteriophages, or bacterial viruses.Transduction occurs in two ways. Generalized transduction occurs during the lytic cycle of a bacteriophage infection. In this process, bacteriophages infect bacterial cells, replicate within them, and ultimately cause cell lysis, releasing newly assembled virions. Occasionally, random fragments of the bacterial genome...
293
Bacterial Translocation and Protein Secretion01:26

Bacterial Translocation and Protein Secretion

Bacterial protein secretion involves translocation systems to ensure proteins reach their designated locations, including the plasma membrane, periplasm, outer membrane, or the external environment. These translocation systems are vital for bacterial physiology, supporting processes like membrane assembly, enzymatic activity in the periplasm, and interactions with the external environment. The division of labor between Sec and Tat pathways ensures efficiency in handling proteins with diverse...
151
Defense Against Bacterial Pathogens01:31

Defense Against Bacterial Pathogens

The human immune system is a complex network of cells, tissues, and organs that work together to defend the body against bacterial infections. It consists of various immune cells, each playing a specific role in the defense mechanism.
Phagocytes
Phagocytes are the frontline soldiers of the immune system. They include neutrophils and macrophages. Neutrophils are the most abundant type of white blood cell and are quickly mobilized to the site of infection. Macrophages are larger cells that patrol...
1.6K