Molecular Characterization of Influenza C Viruses from Outbreaks in Hong Kong SAR, China

Rodney S Daniels1, Herman Tse2, Burcu Ermetal3

  • 1Worldwide Influenza Centre (a WHO Collaborating Centre for Reference and Research on Influenza), The Francis Crick Institute, London, United Kingdom rod.daniels@crick.ac.uk.

Journal of Virology
|August 21, 2020
PubMed

Insights

Influenza C virus (ICV) shows persistent low-level circulation with two outbreaks in Hong Kong. Genetic analysis reveals significant viral evolution, suggesting potential for antigenic drift and future public health impacts.

Area of Science:

  • Virology
  • Epidemiology
  • Public Health

Background:

  • Influenza C virus (ICV) is a common human pathogen, yet knowledge is limited due to scarce surveillance and isolation challenges.
  • ICV infections typically cause mild symptoms, but severe cases and reinfections occur, highlighting potential clinical significance.
  • Routine surveillance for ICV in Hong Kong began in 2014, prompted by its role in respiratory viral infections.

Purpose of the Study:

  • To analyze the genetic evolution and circulation patterns of Influenza C virus in Hong Kong.
  • To investigate the genetic characteristics of ICV during observed outbreaks.
  • To assess the potential clinical and public health impact of ICV evolution.

Main Methods:

  • Retrospective analysis of ICV detections from routine surveillance data (up to 2019).
  • Gene sequencing of hemagglutinin-esterase (HE) genes from ICV-positive clinical specimens.
  • Comparison of genetic sequences to identify lineages, genetic drift, and amino acid substitutions.

Main Results:

  • Persistent low-level ICV circulation was detected, with two distinct outbreaks in 2015-2016 and 2017-2018.
  • Sequencing revealed ICV HE genes belonged to two genetic lineages with significant genetic drift compared to earlier strains.
  • Amino acid substitutions in HEF glycoproteins suggest potential for antigenic drift.

Conclusions:

  • ICV exhibits a potential 2-year outbreak cycle, evidenced by Hong Kong surveillance data.
  • Genetic evolution, including antigenic drift, may influence ICV's epidemic potential and clinical impact.
  • Systematic surveillance and genetic analysis are crucial for understanding ICV's role in human health.

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