Host and Viral Proteins Modulating Ebola and Marburg Virus Egress

Tamsin B Gordon1,2, Joshua A Hayward3,4, Glenn A Marsh5,6

  • 1Health Security Program, Life Sciences Discipline, Burnet Institute, Melbourne, VIC 3004, Australia. tamsin.gordon@burnet.edu.au.

Viruses
|January 6, 2019
PubMed

Insights

Filoviruses like Ebola and Marburg hijack host cell machinery for viral particle release. Understanding these filovirus egress mechanisms is key to developing new antiviral therapies.

Area of Science:

  • Virology
  • Molecular Biology
  • Cell Biology

Background:

  • Filoviruses, including Ebolavirus and Marburgvirus, are highly lethal pathogens causing emerging infectious diseases with high fatality rates.
  • Viral replication involves complex molecular interactions between the virus and its human host, particularly during virion release (egress).

Purpose of the Study:

  • This review synthesizes current knowledge on filovirus egress mechanisms.
  • It identifies key viral and host factors influencing virion release and spread.

Main Methods:

  • The review analyzes existing literature on filovirus replication and host-pathogen interactions.
  • It focuses on the molecular processes governing viral particle exit from host cells.

Main Results:

  • Viral Protein 40 (VP40) is essential and sufficient for filovirus particle release, interacting with nucleocapsid and glycoprotein.
  • Filoviruses exploit host factors like E3 ubiquitin ligases and the ESCRT pathway to enhance budding.
  • Host restriction factors, such as tetherin, can inhibit filovirus egress.

Conclusions:

  • Understanding the interplay between viral proteins (VP40) and host factors is crucial for controlling filovirus spread.
  • Identifying these molecular interactions offers potential targets for novel antiviral drug development against filovirus infections.

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