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The CD46 transmembrane domain is required for efficient formation of measles-virus-mediated syncytium
Abstract:
Two phosphatidylinositol (PI)-anchored versions of a measles virus (MV) receptor membrane cofactor protein (MCP; CD46) were generated by fusing the extracellular domain of MCP to the decay-accelerating factor (DAF; CD55) or its PI anchor. The PI-anchored forms of MCP expressed on Chinese hamster ovary cells, otherwise non-permissive to MV, conferred a smaller MV cytopathic effect than a wild-type MCP, a Ser/Thr-rich domain-deletion mutant and a cytoplasmic tail-deletion mutant of MCP. Therefore the differences in MV receptor properties between the two PI-anchored and three transmembrane forms were investigated. The PI-anchored forms were predominantly expressed on microvilli as in DAF, whereas the other transmembrane forms were found on intracellular membranes. The PI-anchored forms conferred high MV-binding capacity compared with the transmembrane versions. MV replication was, however, severely suppressed in cells expressing the PI-anchored forms, resulting in ineffective syncytium formation. In contrast, cell-to-cell fusion occurred efficiently after co-transfection of cDNA species encoding MV-H. MV-F and any version of MCP. Thus the PI-anchored forms, despite showing sufficient MV binding and cell-to-cell fusion competence together with MV-H and MV-F, mediate inefficient MV entry or replication, which causes severe suppression of the MV cytopathic effect. A biased receptor distribution on microvilli might participate in the selection of a low MV uptake pathway in the PI-anchored forms of MCP. Taken together, the transmembrane portion of MCP is a critical factor for effective virus-cell fusion and the subsequent MV replication.
Insights
Phosphatidylinositol (PI)-anchored measles virus (MV) receptors show reduced viral entry and replication. The transmembrane portion of the membrane cofactor protein (MCP) is crucial for effective MV fusion and replication.
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- Measles virus (MV) entry into host cells is mediated by its receptor, membrane cofactor protein (MCP; CD46).
- Understanding MV receptor function is critical for developing antiviral strategies and vaccines.
Purpose of the Study:
- To investigate the functional differences between PI-anchored and transmembrane forms of MV receptor MCP.
- To determine the role of MCP's structural domains in MV binding, entry, and replication.
Main Methods:
- Generation of PI-anchored MCP variants by fusing MCP's extracellular domain to decay-accelerating factor (DAF; CD55) or its PI anchor.
- Expression of MCP variants in Chinese hamster ovary (CHO) cells.
- Analysis of MV binding, cytopathic effect, replication, and cell-to-cell fusion.
- Microvillar localization studies using microscopy.
Main Results:
- PI-anchored MCP forms were expressed on microvilli and exhibited high MV-binding capacity.
- Despite efficient MV binding and cell-to-cell fusion, PI-anchored MCP forms severely suppressed MV replication and cytopathic effect.
- Transmembrane forms of MCP were found on intracellular membranes and mediated more effective MV entry and replication.
Conclusions:
- The transmembrane portion of MCP is essential for efficient MV-cell fusion and subsequent viral replication.
- PI-anchored MCP variants, while capable of binding MV, lead to inefficient viral entry or replication.
- Receptor distribution on microvilli may influence MV uptake pathways and viral infectivity.