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.

Journal of Virology
|January 5, 2018
PubMed

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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