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January 22, 2026PLoS Pathogens2 citationsOpen Access

Peptidoglycan architecture dictates protein interactions, tissue tropism, and arthritis in the Lyme disease spirochete Borrelia burgdorferi

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SASaadman S. AhmadOEOsamudiamen EbohonMMMecaila E. McClune

Key Points

  • This research investigates how the structure of peptidoglycan influences the pathogenicity of Borrelia burgdorferi and its association with Lyme arthritis.
  • Manipulated peptidoglycan composition by deleting a carboxypeptidase gene in B. burgdorferi.
  • Assessed molecular and cellular phenotypes of mutant strains.
  • Investigated the role of altered peptidoglycan in tissue tropism and arthritis severity.
  • Alterations to peptidoglycan structure had minimal effects in vitro but significantly impacted tissue distribution.
  • Mutant strains showed near complete attenuation of Lyme arthritis symptoms.
  • Changes in peptidoglycan composition affected the interaction with p83/100 protein, which is linked to joint tropism.

Abstract

Lyme disease is a vector-borne illness transmitted by infected Ixodes spp. ticks. Dissemination of the Lyme spirochete— Borrelia burgdorferi— from the tick bite site results in a bi-phasic infection; the latter phase can cause severe musculoskeletal disease including arthritis. Lyme arthritis is an inflammatory disorder and maladaptive immune response to B. burgdorferi infection and its cellular products. One such product, which has been implicated as a key mediator of Lyme arthritis, is peptidoglycan. Peptidoglycan (PG) is a near ubiquitous feature of the bacterial cell envelope, but several chemical features make B. burgdorferi PG distinct from other members of the kingdom. We hypothesized the overall chemical composition and structural architecture of the B. burgdorferi cell wall are essential to Lyme disease pathogenesis. To manipulate the PG peptide chemical composition, as well as the native cross-links, we produced an isogenic deletion of a putative PG carboxypeptidase dacA homologue and assessed both the molecular and cellular phenotypes while probing the pathogenicity of our mutant strain. Our combined and comprehensive approach indicates while changes to PG stem peptide and cross-linking have virtually no discernable impact on any B. burgdorferi characteristic in vitro, alterations have significant impacts on tissue tropism and result in a near complete attenuation of Lyme arthritis. PG sacculi containing increased amounts of free and cross-linked pentapeptide surprisingly caused the disassociation of p83/100, an abundant periplasmic protein of unknown function previously implicated in joint tropism, likely contributing to a marked decrease in pathogenicity. These studies strengthen our understanding of the B. burgdorferi cell envelope, its unusual components, and further define bacterial features that mediate infectious arthritis.

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Cite This Study

Ahmad et al. (2026) studied this question.

synapsesocial.com/papers/6971bd26642b1836717e1e13https://doi.org/10.1371/journal.ppat.1013849
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