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High-density rafts preferentially host the complement activator measles virus F glycoprotein but not the regulators
Arije Ghannam1, Djilali Hammache, Christel Matias
1Virus-Host Cell Interaction, Université Lyon 1, CNRS, FRE 3011, IFR 62 Lyon-Est, 69372 Lyon Cedex 08, France.
Abstract:
The fusion (F) protein of measles virus (MeV) activates the alternative pathway of human complement in the presence of both CD46 and CD55 which regulate the complement activation [Devaux, P., Christiansen, D., Plumet, S., Gerlier, D., 2004. Cell surface activation of the alternative complement pathway by the fusion protein of measles virus. J. Gen. Virol. 85, 1665-1673]. The original observation of cold detergent-resistant membranes sedimenting at a higher density than the membrane rafts lead us to analyse the respective distribution of F, CD46 and C55 molecules in what we call heavy rafts (HRs) and in the classical low-density membrane rafts (Rs). Membrane rafts were isolated after cold TX100 solubilization and flotation on a sucrose gradient. The denser fractions collected from the lower part of the gradient could be further separated into a translucent pellet (HR) and a soluble supernatant (S). HR and R were both sensitive to TX100 solubilization after cholesterol depletion and solubilized by octyl-d-glucoside but differed in their lipid and protein composition. A proteomic analysis revealed that the HR fraction was derived from heterogeneous cellular membranes including plasma membrane, early endosomes and rough endoplasmic reticulum. Interestingly, CD55 and CD46 almost exclusively associated with R and S fractions, respectively, while after MeV infection or transient expression, MeV-F distributed almost equally between R, HR and S fractions. However more immature MeV-F(0) than mature MeV-F(1) proteins was associated with the HR fraction whereas this ratio was reverse in R and S fractions. After activation of the alternative pathway of human complement by F expressing cells, both C3b and F protein associated with R, HR and S fractions. When four or five of the five cysteines located in the transmembrane and cytoplasmic tail of F protein were substituted with serine residues, the mutated F distributed almost exclusively in HR fractions and was still efficient in activating the complement. We propose that the partitioning of F, CD46 and CD55 molecules in different membrane microdomains could account for the ability of F to escape complement regulation by the CD55 and CD46 regulators.
Insights
Measles virus fusion (F) protein activates complement by localizing to heavy rafts, evading regulation by CD46 and CD55. This partitioning in membrane microdomains explains its escape from complement control.
Area of Science:
- Virology
- Immunology
- Cell Biology
Background:
- The measles virus (MeV) fusion (F) protein activates the alternative complement pathway.
- CD46 and CD55 are regulators of complement activation.
- Previous observations suggested cold detergent-resistant membranes associate with complement activation.
Purpose of the Study:
- To analyze the distribution of MeV-F, CD46, and CD55 in membrane microdomains.
- To understand how MeV-F evades complement regulation by CD46 and CD55.
Main Methods:
- Isolation of membrane rafts (R) and heavy rafts (HR) via sucrose gradient flotation after TX100 solubilization.
- Proteomic analysis of HR and R fractions.
- Analysis of MeV-F distribution in different fractions after MeV infection or transient expression.
- Mutagenesis of cysteine residues in the F protein transmembrane and cytoplasmic tail.
Main Results:
- MeV-F distributes across R, HR, and S fractions after infection, with immature F(0) favoring HR.
- CD46 and CD55 are predominantly found in S and R fractions, respectively.
- Mutated F proteins, lacking key cysteines, localize exclusively to HR fractions and retain complement-activating ability.
- C3b and F protein associate with all fractions (R, HR, S) after complement activation.
Conclusions:
- MeV-F partitions into distinct membrane microdomains (heavy rafts), separating it from complement regulators CD46 and CD55.
- This differential localization in membrane microdomains is proposed as a mechanism for MeV-F to evade complement-mediated regulation.
- The transmembrane and cytoplasmic tail cysteines of F protein influence its membrane partitioning.
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