Evidence for Complex Formation of the Bacillus cereus Haemolysin BL Components in Solution
Franziska Tausch1, Richard Dietrich2, Kristina Schauer3
1Department of Veterinary Sciences, Faculty of Veterinary Medicine, Ludwig-Maximilians-Universität München, Schönleutnerstr 8, 85764 Oberschleißheim, Germany. Franziska.Tausch@gmx.de.
Insights
Researchers investigated the Haemolysin BL (Hbl) toxin from Bacillus cereus, a cause of food poisoning. They developed tools to study Hbl
Area of Science:
- Microbiology and Toxinology
- Molecular Biology
- Immunology
Background:
- Haemolysin BL (Hbl) is a key virulence factor in Bacillus cereus-induced diarrheal food poisoning.
- Distinguishing Hbl's role is challenging due to the co-occurrence of the cytotoxic Nhe toxin in B. cereus.
Purpose of the Study:
- To develop methods for studying the Hbl toxin complex.
- To generate tools for elucidating Hbl's molecular mechanism of action.
Main Methods:
- Overexpression and purification of recombinant Hbl components (L₂, L₁, B) from E. coli.
- Construction of a B. cereus nheABC deletion mutant.
- Generation of monoclonal antibodies (mAbs) against Hbl components.
- Utilized Dot blots, enzyme immunoassays (EIAs), and surface plasmon resonance (SPR).
Main Results:
- Monoclonal antibodies were generated, with some neutralizing Hbl toxicity (1H9, 1D8) and one enhancing it (1D7).
- Complex formation between Hbl components (L₁-B, L₁-L₂) was demonstrated in solution using mAbs.
- SPR confirmed these interactions with specific dissociation constants (KD).
Conclusions:
- The study established a foundation for detailed investigation of the Hbl toxin's molecular mechanism.
- Newly developed recombinant Hbl components and specific mAbs are crucial tools for future research.
- Understanding Hbl's action is vital for addressing B. cereus foodborne illnesses.
Abstract:
Haemolysin BL is an important virulence factor regarding the diarrheal type of food poisoning caused by Bacillus cereus. However, the pathogenic importance of this three-component enterotoxin is difficult to access, as nearly all natural B. cereus culture supernatants additionally contain the highly cytotoxic Nhe, the second three-component toxin involved in the aetiology of B. cereus-induced food-borne diseases. To better address the toxic properties of the Hbl complex, a system for overexpression and purification of functional, cytotoxic, recombinant (r)Hbl components L₂, L₁ and B from E. coli was established and an nheABC deletion mutant was constructed from B. cereus reference strain F837/76. Furthermore, 35 hybridoma cell lines producing monoclonal antibodies (mAbs) against Hbl L₂, L₁ and B were generated. While mAbs 1H9 and 1D8 neutralized Hbl toxicity and thus, represent important tools for future investigations of the mode-of-action of Hbl on the target cell surface, mAb 1D7, in contrast, even enhanced Hbl toxicity by supporting the binding of Hbl B to the cell surface. By using the specific mAbs in Dot blots, indirect and hybrid sandwich enzyme immuno assays (EIAs), complex formation between Hbl L₁ and B, as well as L₁ and L₂ in solution could be shown for the first time. Surface plasmon resonance experiments with the rHbl components confirmed these results with KD values of 4.7 × 10-7 M and 1.5 × 10-7 M, respectively. These findings together with the newly created tools lay the foundation for the detailed elucidation of the molecular mode-of-action of the highly complex three-component Hbl toxin.
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