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Published on: January 24, 2025
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.
Abstract:
Treponema pallidum subspecies pallidum is the causative agent of syphilis, a chronic, multistage, systemic infection that remains a major global health concern. The molecular mechanisms underlying T. pallidum pathogenesis are incompletely understood, partially due to the phylogenetic divergence of T. pallidum. One aspect of T. pallidum that differentiates it from conventional Gram-negative bacteria, and is believed to play an important role in pathogenesis, is its unusual cell envelope ultrastructure; in particular, the T. pallidum peptidoglycan layer is chemically distinct, thinner and more distal to the outer membrane. Established functional roles for peptidoglycan include contributing to the structural integrity of the cell envelope and stabilization of the flagellar motor complex, which are typically mediated by the OmpA domain-containing family of proteins. To gain insight into the molecular mechanisms that govern peptidoglycan binding and cell envelope biogenesis in T. pallidum we report here the structural characterization of the putative OmpA-like domain-containing protein, Tp0624. Analysis of the 1.70 Å resolution Tp0624 crystal structure reveals a multi-modular architecture comprised of three distinct domains including a C-terminal divergent OmpA-like domain, which we show is unable to bind the conventional peptidoglycan component diaminopimelic acid, and a previously uncharacterized tandem domain unit. Intriguingly, bioinformatic analysis indicates that the three domains together are found in all orthologs from pathogenic treponemes, but are not observed together in genera outside Treponema. These findings provide the first structural insight into a multi-modular treponemal protein containing an OmpA-like domain and its potential role in peptidoglycan coordination and stabilization of the T. pallidum cell envelope.
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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