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Identification and functional mapping of the Mycoplasma fermentans P29 adhesin
1Department of Molecular Microbiology and Immunology, School of Medicine, University of Missouri-Columbia, Columbia, Missouri 65212, USA.
Abstract:
Initial adherence interactions between mycoplasmas and mammalian cells are important for host colonization and may contribute to subsequent pathogenic processes. Despite significant progress toward understanding the role of specialized, complex tip structures in the adherence of some mycoplasmas, particularly those that infect humans, less is known about adhesins through which other mycoplasmas of this host bind to diverse cell types, even though simpler surface components are likely to be involved. We show by flow cytometric analysis that a soluble recombinant fusion protein (FP29), representing the abundant P29 surface lipoprotein of Mycoplasma fermentans, binds human HeLa cells and inhibits M. fermentans binding to these cells, in both a quantitative and a saturable manner, whereas analogous fusion proteins representing other mycoplasma surface proteins did not. Constructs representing nested N- or C-terminal truncations of FP29 allowed initial mapping of this specific adherence function to a central region of the P29 sequence containing a 36-amino-acid disulfide loop. A derivative of FP29 containing a mutation converting one participating Cys to Ser, precluding intrachain disulfide bond formation, retained full activity. Together these results suggest that the direct interaction of M. fermentans with a ligand on the HeLa cell surface involves a limited segment of the P29 surface lipoprotein and requires neither the disulfide bond nor the contribution of adjacent portions of the protein. Earlier results indicating phase-variable display of monoclonal antibody surface epitopes on P29, now recognized to be outside this ligand binding region, raise the possibility that variation of mycoplasma surface architecture might alter the presentation of the binding region and the adherence phenotype. Preliminary results further indicated that FP29 could inhibit binding to HeLa cells by Mycoplasma hominis, a distinct human mycoplasma species displaying the phase-variable adhesin Vaa, but not that by Mycoplasma capricolum, an organism infecting caprine species. This result raises the additional, testable possibility that a common host cell ligand for two human mycoplasma species may be recognized through structurally dissimilar adhesins that undergo phase variation by two distinct mechanisms, governing protein expression (Vaa) or surface masking (P29).
Insights
Mycoplasma fermentans uses a specific region of its P29 surface protein to adhere to human cells. This interaction is key for colonization and does not require disulfide bonds, suggesting a simple adherence mechanism.
Area of Science:
- Microbiology
- Cell Biology
- Molecular Biology
Background:
- Mycoplasma adherence to mammalian cells is crucial for host colonization and pathogenesis.
- While complex tip structures are known adhesins for some human-infecting mycoplasmas, simpler surface components likely mediate binding for others.
- Understanding these adhesins is vital for deciphering mycoplasma-host interactions.
Purpose of the Study:
- To identify the specific adhesin responsible for Mycoplasma fermentans binding to human HeLa cells.
- To characterize the molecular region of the P29 surface lipoprotein involved in adherence.
- To investigate potential common adherence mechanisms among different mycoplasma species.
Main Methods:
- Flow cytometric analysis was used to quantify cell binding.
- Soluble recombinant fusion proteins representing the P29 surface lipoprotein and its truncations were employed.
- Mutational analysis was performed to assess the role of disulfide bonds in adherence.
Main Results:
- A fusion protein (FP29) of the P29 surface lipoprotein bound to HeLa cells and inhibited M. fermentans adherence in a saturable manner.
- Adherence function was mapped to a central region of P29, specifically a 36-amino-acid disulfide loop, but the disulfide bond itself was not required.
- FP29 inhibited binding of Mycoplasma hominis but not Mycoplasma capricolum, suggesting potential shared ligands for human mycoplasmas.
Conclusions:
- The direct interaction of M. fermentans with HeLa cells involves a limited segment of the P29 lipoprotein, independent of disulfide bonds.
- Phase-variable display of surface epitopes on P29 may modulate adherence by altering the presentation of the binding region.
- A common host cell ligand may be recognized by different human mycoplasma species via distinct adhesins with varied phase-variation mechanisms.