Review of genotyping methods for Yersinia pestis in Madagascar

Lovasoa Nomena Randriantseheno1,2, Voahangy Andrianaivoarimanana1, Javier Pizarro-Cerdá3,4

  • 1Plague Unit, Institut Pasteur de Madagascar, Antananarivo, Madagascar.

Abstract

Insights

Genotyping of Yersinia pestis in Madagascar reveals extensive diversity and transmission patterns. Advanced genomic methods enhance understanding of plague persistence, antimicrobial resistance, and spread, aiding control efforts.

Area of Science:

  • Microbiology
  • Epidemiology
  • Genetics

Background:

  • Plague, caused by Yersinia pestis, historically caused pandemics and remains endemic in rodent populations globally.
  • Madagascar experiences high annual human plague cases, making it a key location for studying contemporary Y. pestis.
  • Various Y. pestis typing methods offer insights into the pathogen's diversity and evolution.

Purpose of the Study:

  • To review Yersinia pestis typing methods used in Madagascar.
  • To summarize major discoveries from Y. pestis genotyping in Madagascar.
  • To understand the evolution and epidemiology of plague in Madagascar.

Main Methods:

  • Literature search of PubMed and Google Scholar using keywords related to Y. pestis typing, evolution, and diversity in Madagascar.
  • Review of 11 relevant publications and their cited references.
  • Analysis of typing methods including ribotyping, plasmid analysis, RFLP, CRISPR, MLVA, and whole-genome sequencing (WGS).

Main Results:

  • Pre-genomics era methods (ribotyping, plasmid analysis, RFLP) showed limited Y. pestis diversity in Madagascar.
  • Genomics era methods (CRISPR, MLVA, WGS) revealed extensive diversity, genotype distribution, persistence, and inter-foci transfers.
  • Genotyping documented genotype emergence, antimicrobial resistance (AMR) strain transmission during pneumonic plague outbreaks.

Conclusions:

  • Whole-genome sequencing (WGS) has significantly advanced understanding of Y. pestis in Madagascar.
  • Genotyping insights improve comprehension of plague environmental persistence, AMR, and pneumonic plague transmission.
  • Findings are crucial for plague control in Madagascar, understanding historical pandemics, and potential bioweapon threats.