The Structure of Treponema pallidum Tp0624 Reveals a Modular Assembly of Divergently Functionalized and Previously

Michelle L Parker1, Simon Houston1, Charmaine Wetherell1

  • 1Department of Biochemistry & Microbiology, University of Victoria, Victoria, British Columbia, Canada.

Plos One
|November 11, 2016
PubMed

Insights

Researchers characterized Tp0624, a unique protein in Treponema pallidum, the syphilis bacterium. This study reveals its distinct structure, offering insights into bacterial cell envelope stability and syphilis pathogenesis.

Area of Science:

  • Microbiology
  • Structural Biology
  • Pathogenesis

Background:

  • * Treponema pallidum subspecies pallidum causes syphilis, a significant global health issue with poorly understood pathogenesis.
  • * T. pallidum possesses an unusual cell envelope, differing from typical Gram-negative bacteria, with a distinct peptidoglycan layer.
  • * Peptidoglycan is crucial for cell integrity and flagellar motor stabilization, often involving OmpA domain proteins.

Purpose of the Study:

  • * To structurally characterize Tp0624, a T. pallidum protein with a putative OmpA-like domain.
  • * To investigate the molecular mechanisms of peptidoglycan binding and cell envelope biogenesis in T. pallidum.

Main Methods:

  • * Determined the crystal structure of Tp0624 at 1.70 Å resolution.
  • * Performed bioinformatic analysis of Tp0624 and its orthologs.
  • * Assessed the binding capability of the OmpA-like domain to diaminopimelic acid.

Main Results:

  • * Revealed Tp0624 has a three-domain architecture: a divergent OmpA-like domain and a novel tandem domain unit.
  • * The OmpA-like domain does not bind diaminopimelic acid, a conventional peptidoglycan component.
  • * This three-domain combination is unique to pathogenic treponemes, absent in other genera.

Conclusions:

  • * Provides the first structural data for a multi-modular treponemal protein with an OmpA-like domain.
  • * Suggests a novel role for Tp0624 in peptidoglycan interaction and T. pallidum cell envelope stabilization.
  • * Highlights unique molecular adaptations in Treponema relevant to syphilis pathogenesis.

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