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Cell-to-Cell Measles Virus Spread between Human Neurons Is Dependent on Hemagglutinin and Hyperfusogenic Fusion
Yuma Sato1, Shumpei Watanabe1,2, Yoshinari Fukuda1
1Department of Virology, Faculty of Medicine, Kyushu University, Fukuoka, Japan.
Abstract:
Measles virus (MV) usually causes acute infection but in rare cases persists in the brain, resulting in subacute sclerosing panencephalitis (SSPE). Since human neurons, an important target affected in the disease, do not express the known MV receptors (signaling lymphocyte activation molecule [SLAM] and nectin 4), how MV infects neurons and spreads between them is unknown. Recent studies have shown that many virus strains isolated from SSPE patients possess substitutions in the extracellular domain of the fusion (F) protein which confer enhanced fusion activity. Hyperfusogenic viruses with such mutations, unlike the wild-type MV, can induce cell-cell fusion even in SLAM- and nectin 4-negative cells and spread efficiently in human primary neurons and the brains of animal models. We show here that a hyperfusogenic mutant MV, IC323-F(T461I)-EGFP (IC323 with a fusion-enhancing T461I substitution in the F protein and expressing enhanced green fluorescent protein), but not the wild-type MV, spreads in differentiated NT2 cells, a widely used human neuron model. Confocal time-lapse imaging revealed the cell-to-cell spread of IC323-F(T461I)-EGFP between NT2 neurons without syncytium formation. The production of virus particles was strongly suppressed in NT2 neurons, also supporting cell-to-cell viral transmission. The spread of IC323-F(T461I)-EGFP was inhibited by a fusion inhibitor peptide as well as by some but not all of the anti-hemagglutinin antibodies which neutralize SLAM- or nectin-4-dependent MV infection, suggesting the presence of a distinct neuronal receptor. Our results indicate that MV spreads in a cell-to-cell manner between human neurons without causing syncytium formation and that the spread is dependent on the hyperfusogenic F protein, the hemagglutinin, and the putative neuronal receptor for MV.IMPORTANCE Measles virus (MV), in rare cases, persists in the human central nervous system (CNS) and causes subacute sclerosing panencephalitis (SSPE) several years after acute infection. This neurological complication is almost always fatal, and there is currently no effective treatment for it. Mechanisms by which MV invades the CNS and causes the disease remain to be elucidated. We have previously shown that fusion-enhancing substitutions in the fusion protein of MVs isolated from SSPE patients contribute to MV spread in neurons. In this study, we demonstrate that MV bearing the hyperfusogenic mutant fusion protein spreads between human neurons in a cell-to-cell manner. Spread of the virus was inhibited by a fusion inhibitor peptide and antibodies against the MV hemagglutinin, indicating that both the hemagglutinin and hyperfusogenic fusion protein play important roles in MV spread between human neurons. The findings help us better understand the disease process of SSPE.
Insights
Measles virus (MV) spreads between human neurons via cell-to-cell transmission, not syncytia formation. This spread relies on a hyperfusogenic fusion protein and hemagglutinin, crucial for understanding subacute sclerosing panencephalitis (SSPE).
Area of Science:
- Neurovirology
- Cell Biology
- Infectious Diseases
Background:
- Measles virus (MV) can cause fatal subacute sclerosing panencephalitis (SSPE) in the central nervous system (CNS).
- The mechanism of MV neuronal infection and spread is unclear, as neurons lack known MV receptors (SLAM and nectin 4).
- SSPE-derived MV strains often have fusion (F) protein mutations enhancing cell-cell fusion.
Purpose of the Study:
- To investigate the cell-to-cell spread of a hyperfusogenic MV mutant in human neurons.
- To identify factors contributing to MV neuronal tropism and SSPE pathogenesis.
Main Methods:
- Utilized a hyperfusogenic MV mutant (IC323-F(T461I)-EGFP) and wild-type MV.
- Infected differentiated NT2 cells (human neuron model) and performed confocal time-lapse imaging.
- Assessed the effect of fusion inhibitors and anti-hemagglutinin antibodies on viral spread.
Main Results:
- The hyperfusogenic MV mutant, but not wild-type MV, spread efficiently between NT2 neurons.
- Viral spread occurred via cell-to-cell transmission without syncytium formation.
- Spread was inhibited by a fusion inhibitor peptide and specific anti-hemagglutinin antibodies, suggesting a distinct neuronal receptor.
Conclusions:
- MV spreads between human neurons through cell-to-cell transmission, dependent on its hyperfusogenic F protein and hemagglutinin.
- These findings highlight the role of viral fusogenicity in CNS infection and SSPE.
- The results suggest the existence of a novel neuronal receptor for MV entry and spread.
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