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Updated: Sep 29, 2025

Biomimetic Materials to Characterize Bacteria-host Interactions
Published on: November 16, 2015
A multifunctional enolase mediates cytoadhesion and interaction with host plasminogen and fibronectin in Mycoplasma
Jia Wang1,2, Yanfei Yu1,3, Yao Li1,4
1Institute of Veterinary Medicine, Key Laboratory of Veterinary Biological Engineering and Technology, Ministry of Agriculture and Rural Affairs, Jiangsu Academy of Agricultural Sciences, Nanjing, China.
Abstract:
Mycoplasma hyorhinis may cause systemic inflammation of pigs, typically polyserositis and arthritis, and is also associated with several types of human cancer. However, the pathogenesis of M. hyorhinis colonizing and breaching the respiratory barrier to establish systemic infection is poorly understood. Glycolytic enzymes are important moonlighting proteins and virulence-related factors in various bacteria. In this study, we investigated the functions of a glycolytic critical enzyme, enolase in the infection and systemic spread of M. hyorhinis. Bacterial surface localization of enolase was confirmed by flow cytometry and colony hybridization assay. Recombinant M. hyorhinis enolase (rEno) was found to adhere to pig kidney (PK-15) cells, and anti-rEno serum significantly decreased adherence. The enzyme was also found to bind host plasminogen and fibronectin, and interactions were specific and strong, with dissociation constant (KD) values of 1.4 nM and 14.3 nM, respectively, from surface plasmon resonance analysis. Activation of rEno-bound plasminogen was confirmed by its ability to hydrolyze plasmin-specific substrates and to degrade a reconstituted extracellular matrix. To explore key sites during these interactions, C-terminal lysine residues of enolase were replaced with leucine, and the resulting single-site and double-site mutants show significantly reduced interaction with plasminogen in far-Western blotting and surface plasmon resonance tests. The binding affinities of all mutants to fibronectin were reduced as well. Collectively, these results imply that enolase moonlights as an important adhesin of M. hyorhinis, and interacts with plasminogen and fibronectin. The two lysine residues in the C-terminus are important binding sites for its multiple binding activities.
Insights
Mycoplasma hyorhinis enolase acts as a bacterial adhesin, binding to host cells and plasminogen. This enzyme is crucial for M. hyorhinis infection and systemic spread in pigs.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Mycoplasma hyorhinis causes significant disease in pigs and is linked to human cancers.
- The mechanisms by which M. hyorhinis establishes systemic infection are not fully understood.
- Glycolytic enzymes can function as moonlighting proteins with roles in bacterial virulence.
Purpose of the Study:
- To investigate the role of enolase, a glycolytic enzyme, in the infection and systemic spread of Mycoplasma hyorhinis.
- To characterize the adhesive properties and host interactions of M. hyorhinis enolase.
Main Methods:
- Flow cytometry and colony hybridization to confirm enolase localization.
- Adherence assays with recombinant enolase and pig kidney cells.
- Surface plasmon resonance and far-Western blotting to analyze binding to plasminogen and fibronectin.
- Site-directed mutagenesis to identify key binding residues.
Main Results:
- Mycoplasma hyorhinis enolase is located on the bacterial surface and functions as an adhesin.
- Recombinant enolase binds strongly to pig kidney cells, plasminogen, and fibronectin.
- Enolase-bound plasminogen exhibits enzymatic activity and degrades extracellular matrix.
- C-terminal lysine residues of enolase are critical for plasminogen and fibronectin binding.
Conclusions:
- Enolase is a moonlighting protein in M. hyorhinis, acting as a key adhesin.
- Enolase facilitates bacterial colonization and systemic spread by interacting with host plasminogen and fibronectin.
- The C-terminal lysine residues are essential for enolase's multiple binding functions and virulence.
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