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Human MD-2 discrimination of meningococcal lipid A structures and activation of TLR4
Shanta M Zimmer1, Susu M Zughaier, Yih-Ling Tzeng
1Department of Medicine, Division of Infectious Diseases, Emory University School of Medicine, Atlanta, GA 30322, USA. szimmer@emory.edu
Abstract:
MD-2, a eukaryotic accessory protein, is an essential component for the molecular pattern recognition of bacterial endotoxins. MD-2 interacts with lipid A of endotoxins [lipopolysaccharide (LPS) or lipooligosaccharide (LOS)] to activate human toll-like receptor (TLR) 4. The structure of lipid A influences the subsequent activation of human TLR4 and the immune response, but the basis for the discrimination of lipid A structures is unclear. A recombinant human MD-2 (rMD-2) protein was produced in the Pichia pastoris yeast expression system. Human embryonic kidney (HEK293) cells were transfected with human TLR4 and were stimulated with highly purified LOS (0.56 pmol) from Neisseria meningitidis or LPS from other structurally defined bacterial endotoxins in the presence or absence of human rMD-2. Human rMD-2 restored, in a dose-dependent manner, interleukin (IL-8) responsiveness to LOS or LPS in TLR4-transfected HEK293 cells. The interaction of endotoxin with human rMD-2 was then assessed by enzyme-linked immunosorbent assays. Wild-type meningococcal LOS (Wt m LOS) bound human rMD-2, and binding was inhibited by an anti-MD-2 antibody to MD-2 dose-dependently (P < 0.005). Wt m LOS or meningococcal KDO(2)-lipid A had the highest binding affinity for human rMD-2; unglycosylated meningococcal lipid A produced by meningococci with defects in the 3-deoxy-d-manno-2-octulosonic acid (KDO) biosynthesis pathway did not appear to bind human rMD-2 (P < 0.005). The affinity of meningococcal LOS with a penta-acylated lipid A for human rMD-2 was significantly less than that for hexa-acylated LOS (P < 0.05). The hierarchy in the binding affinity of different lipid A structures for human rMD-2 was directly correlated with differences in TLR4 pathway activation and cytokine production by human macrophages.
Insights
MD-2 protein is crucial for recognizing bacterial endotoxins by activating Toll-like receptor 4 (TLR4). Its binding affinity for lipid A structures directly impacts immune responses, clarifying how endotoxin structure dictates TLR4 activation.
Area of Science:
- Immunology
- Molecular Biology
- Microbiology
Background:
- MD-2 is an essential accessory protein for molecular pattern recognition of bacterial endotoxins.
- MD-2 interacts with lipid A of lipopolysaccharide (LPS) or lipooligosaccharide (LOS) to activate human Toll-like receptor (TLR) 4.
- The structural basis for lipid A discrimination by MD-2 and subsequent TLR4 activation remains unclear.
Purpose of the Study:
- To investigate the interaction between recombinant human MD-2 (rMD-2) and various bacterial lipid A structures.
- To determine how lipid A structure influences TLR4 activation and cytokine production.
- To elucidate the molecular basis for MD-2's discrimination of different endotoxin structures.
Main Methods:
- Produced recombinant human MD-2 (rMD-2) using the Pichia pastoris expression system.
- Stimulated human TLR4-transfected HEK293 cells with purified LOS/LPS in the presence or absence of rMD-2.
- Assessed endotoxin-rMD-2 interaction using enzyme-linked immunosorbent assays (ELISAs).
Main Results:
- rMD-2 restored IL-8 responsiveness to LOS/LPS in TLR4-transfected cells in a dose-dependent manner.
- Wild-type meningococcal LOS and KDO(2)-lipid A showed the highest binding affinity for rMD-2.
- Unglycosylated lipid A and penta-acylated LOS exhibited significantly lower binding affinity compared to hexa-acylated LOS.
Conclusions:
- The binding affinity hierarchy of lipid A structures for rMD-2 correlates directly with TLR4 pathway activation.
- MD-2's differential binding to lipid A structures is critical for discriminating endotoxins and modulating immune responses.
- This study provides insights into the structural basis of endotoxin recognition by the TLR4-MD-2 complex.
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