Related Experiment Video
Updated: Dec 25, 2025

Inducing Meningococcal Meningitis Serogroup C in Mice via Intracisternal Delivery
Published on: November 5, 2019
Localized Hypermutation is the Major Driver of Meningococcal Genetic Variability during Persistent Asymptomatic
Luke R Green1, Ali A Al-Rubaiawi1, Mohammad A R M Al-Maeni1
1Department of Genetics and Genome Biology, University of Leicester, Leicester, United Kingdom.
Abstract:
Host persistence of bacteria is facilitated by mutational and recombinatorial processes that counteract loss of genetic variation during transmission and selection from evolving host responses. Genetic variation was investigated during persistent asymptomatic carriage of Neisseria meningitidis Interrogation of whole-genome sequences for paired isolates from 25 carriers showed that de novo mutations were infrequent, while horizontal gene transfer occurred in 16% of carriers. Examination of multiple isolates per time point enabled separation of sporadic and transient allelic variation from directional variation. A comprehensive comparative analysis of directional allelic variation with hypermutation of simple sequence repeats and hyperrecombination of class 1 type IV pilus genes detected an average of seven events per carrier and 2:1 bias for changes due to localized hypermutation. Directional genetic variation was focused on the outer membrane with 69% of events occurring in genes encoding enzymatic modifiers of surface structures or outer membrane proteins. Multiple carriers exhibited directional and opposed switching of allelic variants of the surface-located Opa proteins that enables continuous expression of these adhesins alongside antigenic variation. A trend for switching from PilC1 to PilC2 expression was detected, indicating selection for specific alterations in the activities of the type IV pilus, whereas phase variation of restriction modification (RM) systems, as well as associated phasevarions, was infrequent. We conclude that asymptomatic meningococcal carriage on mucosal surfaces is facilitated by frequent localized hypermutation and horizontal gene transfer affecting genes encoding surface modifiers such that optimization of adhesive functions occurs alongside escape of immune responses by antigenic variation.IMPORTANCE Many bacterial pathogens coexist with host organisms, rarely causing disease while adapting to host responses. Neisseria meningitidis, a major cause of meningitis and septicemia, is a frequent persistent colonizer of asymptomatic teenagers/young adults. To assess how genetic variation contributes to host persistence, whole-genome sequencing and hypermutable sequence analyses were performed on multiple isolates obtained from students naturally colonized with meningococci. High frequencies of gene transfer were observed, occurring in 16% of carriers and affecting 51% of all nonhypermutable variable genes. Comparative analyses showed that hypermutable sequences were the major mechanism of variation, causing 2-fold more changes in gene function than other mechanisms. Genetic variation was focused on genes affecting the outer membrane, with directional changes in proteins responsible for bacterial adhesion to host surfaces. This comprehensive examination of genetic plasticity in individual hosts provides a significant new platform for rationale design of approaches to prevent the spread of this pathogen.
Insights
Bacterial persistence relies on genetic changes. For Neisseria meningitidis carriage, localized hypermutation and horizontal gene transfer drive adaptation, optimizing adhesion and immune evasion.
Area of Science:
- Microbiology
- Genetics
- Bacterial Pathogenesis
Background:
- Host persistence of bacteria is crucial for their survival and adaptation.
- Neisseria meningitidis is a common colonizer and a significant cause of meningitis and septicemia.
- Understanding genetic variation in persistent bacterial infections is key to controlling disease spread.
Purpose of the Study:
- To investigate the genetic variation mechanisms facilitating asymptomatic Neisseria meningitidis carriage.
- To differentiate between de novo mutations, horizontal gene transfer, and other variation processes.
- To identify the specific genes and pathways targeted by genetic variation during host persistence.
Main Methods:
- Whole-genome sequencing of paired isolates from 25 asymptomatic carriers.
- Analysis of de novo mutations, horizontal gene transfer, and allelic variation.
- Comparative analysis of directional allelic variation with hypermutation of simple sequence repeats and hyperrecombination of type IV pilus genes.
Main Results:
- Horizontal gene transfer occurred in 16% of carriers; de novo mutations were infrequent.
- Localized hypermutation was the predominant mechanism of variation, with an average of seven events per carrier.
- Genetic variation primarily affected outer membrane genes, particularly those involved in surface structure modification and adhesion.
- Directional switching of Opa proteins and a trend for PilC1 to PilC2 expression changes were observed.
Conclusions:
- Asymptomatic Neisseria meningitidis carriage is facilitated by localized hypermutation and horizontal gene transfer.
- These genetic mechanisms optimize bacterial adhesive functions and enable immune evasion through antigenic variation.
- Targeted genetic variation in surface-related genes enhances bacterial adaptation and persistence within the host.
Related Concept Videos
Mismatch Repair
The Mutator Protein Family Plays a Key Role in DNA Mismatch Repair
The human genome has more than 3 billion base pairs of DNA per cell. Prior to cell division, that vast amount of genetic...
Mismatch Repair
Mutations in Microorganisms
Mutations
Viral Mutations
Spontaneous and Induced Mutations

