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Pneumocystis carinii glycoprotein A binds macrophage mannose receptors
D M O'Riordan1, J E Standing, A H Limper
1Department of Internal Medicine, Mayo Clinic and Foundation, Rochester, Minnesota 55905.
Abstract:
Pneumocystis carinii causes life-threatening pneumonia in patients with impaired immunity. Recent studies suggest that alveolar macrophages interact with P. carinii through macrophage mannose receptors. However, the ligand(s) on P. carinii that is recognized by these receptors has not been fully defined. P. carinii contains a major mannose-rich surface antigen complex termed glycoprotein A (gpA). It was therefore hypothesized that gpA binds directly to macrophage mannose receptors and mediates organism attachment to these phagocytes. To assess this, gpA was purified from P. carinii by continuous-elution gel electrophoresis. 125I-labeled gpA bound to alveolar macrophages in a saturable fashion. In addition, gpA binding was substantially inhibited by both alpha-mannan and EDTA, further suggesting that gpA interacts with macrophage mannose receptors. Macrophage membrane proteins capable of binding to gpA were isolated with a gpA-Sepharose column. A 165-kDa membrane-associated protein was specifically eluted from the gpA-Sepharose column with EDTA (20 mM). This protein was identified as the macrophage mannose receptor by immunoprecipitation with a polyclonal anti-mannose receptor antiserum. To further investigate the role of gpA in P. carinii-macrophage interactions, 51Cr-labeled P. carinii cells were incubated with macrophages in the presence of increasing concentrations of soluble gpA, and organism attachment was quantified. Soluble gpA (2.5 mg/dl) competitively inhibited P. carinii attachment to alveolar macrophages by 51.3% +/- 3.7% (P = 0.01). Our findings demonstrate that gpA present on P. carinii interacts directly with mannose receptors, thereby mediating organism attachment to alveolar macrophages.
Insights
Pneumocystis carinii glycoprotein A (gpA) directly binds to macrophage mannose receptors. This interaction mediates Pneumocystis carinii attachment to alveolar macrophages, crucial for understanding host-pathogen interactions in immunocompromised individuals.
Area of Science:
- Immunology
- Microbiology
- Cell Biology
Background:
- Pneumocystis carinii pneumonia is a severe infection in immunocompromised patients.
- Alveolar macrophages are key immune cells involved in combating P. carinii.
- The specific molecular interactions between P. carinii and macrophages are not fully understood.
Purpose of the Study:
- To identify the ligand on P. carinii responsible for binding to macrophage mannose receptors.
- To investigate the role of glycoprotein A (gpA) in P. carinii-macrophage interactions.
- To elucidate the mechanism of P. carinii attachment to alveolar macrophages.
Main Methods:
- Purification of gpA from P. carinii using continuous-elution gel electrophoresis.
- Binding assays using radiolabeled gpA and alveolar macrophages.
- Isolation and identification of macrophage mannose receptors using gpA-Sepharose chromatography and immunoprecipitation.
- Competitive inhibition assays with labeled P. carinii and soluble gpA.
Main Results:
- Purified gpA bound to alveolar macrophages in a saturable manner, inhibited by alpha-mannan and EDTA.
- A 165-kDa protein, identified as the mannose receptor, was isolated from macrophage membranes.
- Soluble gpA significantly inhibited P. carinii attachment to macrophages by over 50%.
Conclusions:
- P. carinii glycoprotein A directly interacts with macrophage mannose receptors.
- This gpA-mannose receptor interaction mediates the attachment of P. carinii to alveolar macrophages.
- Understanding this interaction is vital for developing targeted therapies against P. carinii infections.