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Immuno-fluorescence Assay of Leptospiral Surface-exposed Proteins
Published on: July 1, 2011
Borrelial phosphomannose isomerase as a cell surface localized protein that retains enzymatic activity and promotes
Shraboni Dutta1, Vipin S Rana1, Brian T Backstedt1
1Department of Veterinary Medicine, University of Maryland, College Park, Maryland, USA.
Abstract:
All organisms produce an intracellular Zn2+-dependent enzyme, phosphomannose isomerase (PMI) or mannose-6 phosphate isomerase, that catalyzes the reversible conversion of mannose-6-phosphate and fructose-6-phosphate during sugar metabolism and polysaccharide biosynthesis. Unexpectedly, we discovered an additional PMI function in Borrelia burgdorferi, the pathogen of Lyme disease, where the enzyme is localized on the cell surface and binds to collagen IV-a host extracellular matrix component predominantly found in the skin. The AlphaFold 3-based structural model of B. burgdorferi PMI (BbPMI) retains the active site with tetrahedrally-coordinated Zn2+ seen in other PMIs of known structure, residing in an elongated crevice. Ligand docking shows that the crevice can accommodate the tip trisaccharide moiety of a glycosylated asparagine residue on the collagen IV 7S domain. Low doses of a well-known PMI benzoisothiazolone inhibitor impair the growth of diverse strains of B. burgdorferi in culture, but not other tested Gram-negative or Gram-positive pathogens. Borrelia cells are even more susceptible to several other structurally related benzoisothiazolone analogs. The passive transfer of anti-BbPMI antibodies in ticks can impact spirochete transmission to mice, while the treatment of collagen IV-containing murine skin with PMI inhibitors impairs spirochete infectivity. Taken together, these results highlight a newly discovered role for BbPMI in mediating host-pathogen interactions during the spirochete infectivity process. In turn, this discovery offers an opportunity for the development of a novel therapeutic strategy to combat Lyme disease by preventing the BbPMI interaction with its host receptor, collagen IV.
Importance:
All organisms produce an intracellular enzyme, phosphomannose isomerase (PMI), that converts specific sugars during metabolism. Unexpectedly, we discovered an additional PMI function in Borrelia burgdorferi, the Lyme disease pathogen, where the enzyme is localized on the cell surface and binds to collagen IV-a host extracellular molecule mainly found in the skin. Low doses of PMI chemical inhibitors impair the growth of diverse strains of B. burgdorferi in culture, but not other tested bacterial pathogens. The passive transfer of anti-BbPMI antibodies in ticks can impact B. burgdorferi transmission to mice, while the treatment of collagen IV-containing murine skin with PMI inhibitors impairs infectivity. Taken together, these results highlight a newly discovered role for BbPMI in mediating host-pathogen interactions during infection. In turn, this discovery offers an opportunity for the development of a novel therapeutic strategy to combat Lyme disease by preventing BbPMI function and interaction with host collagen IV.
Insights
Researchers found that phosphomannose isomerase (PMI) on the surface of Lyme disease bacteria binds to host collagen IV. Inhibiting this interaction offers a new therapeutic strategy against Lyme disease by blocking bacterial infectivity.
Area of Science:
- Microbiology and Immunology
- Structural Biology
- Drug Discovery
Background:
- Phosphomannose isomerase (PMI) is a conserved intracellular enzyme crucial for sugar metabolism.
- The Lyme disease pathogen, *Borrelia burgdorferi*, possesses PMI, but its function beyond intracellular metabolism was unknown.
- Host extracellular matrix components, like collagen IV, are often involved in pathogen adhesion and infection.
Purpose of the Study:
- To investigate the novel functions and structural characteristics of *Borrelia burgdorferi* PMI (BbPMI).
- To explore the potential role of BbPMI in host-pathogen interactions, specifically its binding to collagen IV.
- To evaluate the therapeutic potential of targeting BbPMI for Lyme disease treatment.
Main Methods:
- Structural modeling of BbPMI using AlphaFold 3 to analyze its active site and potential ligand interactions.
- In vitro studies assessing the impact of PMI inhibitors on *B. burgdorferi* growth and infectivity.
- Investigating the effect of anti-BbPMI antibodies and PMI inhibitors on pathogen transmission and infectivity in tick and murine models.
Main Results:
- BbPMI is localized on the bacterial cell surface and binds to host collagen IV, a key component of the skin extracellular matrix.
- Structural analysis revealed BbPMI's active site can accommodate collagen IV's glycosylated structures.
- PMI inhibitors significantly impaired *B. burgdorferi* growth and infectivity, with no observed effect on other tested bacterial pathogens.
Conclusions:
- BbPMI plays a critical role in mediating host-pathogen interactions by binding to collagen IV, facilitating Lyme disease pathogenesis.
- Targeting the BbPMI-collagen IV interaction presents a promising novel therapeutic strategy for combating Lyme disease.
- PMI inhibitors demonstrate specific efficacy against *Borrelia burgdorferi*, suggesting their potential as anti-Lyme disease agents.

