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Heuristic Mining of Hierarchical Genotypes and Accessory Genome Loci in Bacterial Populations
Published on: December 7, 2021
Using Neisseria meningitidis genomic diversity to inform outbreak strain identification
Adam C Retchless1, Alex Chen1, How-Yi Chang1
1Division of Bacterial Diseases, National Center for Immunization and Respiratory Diseases, Centers for Disease Control and Prevention, Atlanta, Georgia, United States of America.
Abstract:
Meningococcal disease is a life-threatening illness caused by the human-restricted bacterium Neisseria meningitidis. Outbreaks in the USA involve at least two cases in an organization or community caused by the same serogroup within three months. Genome comparisons, including phylogenetic analysis and quantification of genome distances can provide confirmatory evidence of pathogen transmission during an outbreak. Interpreting genome distances depends on understanding their distribution both among isolates from outbreaks and among those not from outbreaks. Here, we identify outbreak strains based on phylogenetic relationships among 141 N. meningitidis isolates collected from 28 outbreaks in the USA during 2010-2017 and 1516 non-outbreak isolates collected through contemporaneous meningococcal surveillance. We show that genome distance thresholds based on the maximum SNPs and allele distances among isolates in the phylogenetically defined outbreak strains are sufficient to separate most pairs of non-outbreak isolates into separate strains. Non-outbreak isolate pairs that could not be distinguished from each other based on genetic distances were concentrated in the clonal complexes CC11, CC103, and CC32. Within each of these clonal complexes, phylodynamic analysis identified a group of isolates with extremely low diversity, collected over several years and multiple states. Clusters of isolates with low genetic diversity could indicate increased pathogen transmission, potentially resulting in local outbreaks or nationwide clonal expansions.
Insights
Genomic analysis helps identify Neisseria meningitidis outbreak strains. Genome distance thresholds effectively distinguish outbreak from non-outbreak isolates, revealing potential clonal expansions.
Area of Science:
- Microbiology
- Genomics
- Epidemiology
Background:
- Meningococcal disease, caused by Neisseria meningitidis, is a severe illness.
- Outbreaks in the USA are defined by multiple cases of the same serogroup within three months.
- Genome comparisons aid in confirming pathogen transmission during outbreaks.
Purpose of the Study:
- To establish genome distance thresholds for identifying Neisseria meningitidis outbreak strains.
- To differentiate outbreak-associated isolates from non-outbreak isolates using genomic data.
- To investigate genetic diversity within specific Neisseria meningitidis clonal complexes.
Main Methods:
- Phylogenetic analysis of 141 Neisseria meningitidis isolates from 28 US outbreaks (2010-2017).
- Comparison with 1516 contemporaneous non-outbreak isolates.
- Calculation of genome distances (SNPs and allele distances) and phylodynamic analysis.
Main Results:
- Genome distance thresholds successfully separated most non-outbreak isolates into distinct strains.
- Non-outbreak isolates indistinguishable by genome distance were concentrated in clonal complexes CC11, CC103, and CC32.
- Phylodynamic analysis revealed low-diversity isolate clusters within these complexes, spanning multiple years and states.
Conclusions:
- Phylogenetic and genome distance analysis are effective tools for Neisseria meningitidis outbreak strain identification.
- Low genetic diversity in specific clonal complexes suggests increased pathogen transmission and potential clonal expansion.
- Monitoring genomic data can help detect and understand the dynamics of meningococcal disease spread.
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