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Natural selection and recombination at host-interacting lipoprotein loci drive genome diversification of Lyme disease and related bacteria

  • Saymon Akther
  • , Emmanuel F. Mongodin
  • , Richard D. Morgan
  • , Lia Di
  • , Xiaohua Yang
  • , Maryna Golovchenko
  • , Natalie Rudenko
  • , Gabriele Margos
  • , Sabrina Hepner
  • , Volker Fingerle
  • , Hiroki Kawabata
  • , Ana Cláudia Norte
  • , Isabel Lopes de Carvalho
  • , Maria Sofia Núncio
  • , Adriana Marques
  • , Steven E. Schutzer
  • , Claire M. Fraser
  • , Benjamin J. Luft
  • , Sherwood R. Casjens
  • , Weigang Qiu
  • City University of New York
  • University of Maryland, Baltimore
  • New England Biolabs
  • Stony Brook University
  • Czech Academy of Sciences
  • Bavarian Health and Food Safety Authority
  • National Institute of Infectious Diseases
  • University of Coimbra
  • Centre for Vector and Infectious Diseases Research
  • National Institutes of Health
  • Rutgers - The State University of New Jersey, New Brunswick
  • University of Utah
  • Cornell University

Research output: Contribution to journalArticlepeer-review

15 Scopus citations

Abstract

Lyme disease, caused by spirochetes in the Borrelia burgdorferi sensu lato clade within the Borrelia genus, is transmitted by Ixodes ticks and is currently the most prevalent and rapidly expanding tick-borne disease in Europe and North America. We report complete genome sequences of 47 isolates that encompass all established species in this clade while highlighting the diversity of the widespread human pathogenic species B. burgdorferi. A similar set of plasmids has been maintained throughout Borrelia divergence, indicating that they are a key adaptive feature of this genus. Phylogenetic reconstruction of all sequenced Borrelia genomes revealed the original divergence of Eurasian and North American lineages and subsequent dispersals that introduced B. garinii, B. bavariensis, B. lusitaniae, B. valaisiana, and B. afzelii from East Asia to Europe and B. burgdorferi and B. finlandensis from North America to Europe. Molecular phylogenies of the universally present core replicons (chromosome and cp26 and lp54 plasmids) are highly consistent, revealing a strong clonal structure. Nonetheless, numerous inconsistencies between the genome and gene phylogenies indicate species dispersal, genetic exchanges, and rapid sequence evolution at plasmid-borne loci, including key host-interacting lipoprotein genes. While localized recombination occurs uniformly on the main chromosome at a rate comparable to mutation, lipoprotein-encoding loci are recombination hotspots on the plasmids, suggesting adaptive maintenance of recombinant alleles at loci directly interacting with the host. We conclude that within- and between-species recombination facilitates adaptive sequence evolution of host-interacting lipoprotein loci and contributes to human virulence despite a genome-wide clonal structure of its natural populations.

Original languageEnglish
JournalmBio
Volume15
Issue number9
DOIs
StatePublished - Sep 2024

Keywords

  • Borrelia burgdorferi
  • Lyme disease
  • evolution
  • genome diversification
  • plasmids
  • recombination

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