Genetic and molecular features for hepadnavirus and plague infections in the Himalayan marmot

Baoning Liu1,2, Liang Bai1,2, Yu Fu1,2

  • 1Laboratory Animal Center, Xi'an Jiaotong University Health Science Center, Xi'an, Shaanxi 710061, China.

Genome
|April 21, 2020
PubMed

Insights

The Himalayan marmot is a potential model for studying hepadnavirus and plague infections. Immune gene analysis reveals conserved pathways and dynamic evolution, offering insights into disease susceptibility and response.

Area of Science:

  • Comparative immunology
  • Genomics
  • Infectious disease modeling

Background:

  • The Himalayan marmot (Marmota himalayana) hosts plague and is susceptible to hepadnavirus.
  • Understanding its immune system is crucial for disease research.

Purpose of the Study:

  • Characterize immune genes in Himalayan marmots.
  • Compare them to human and mouse genes.
  • Investigate susceptibility to hepadnavirus and plague.

Main Methods:

  • Systematic characterization of immune genes.
  • Comparative genomic analysis with human and mouse.
  • Infection studies with Yersinia pestis strain EV76.

Main Results:

  • Conserved major histocompatibility complex and hepatitis B virus pathway genes.
  • Dynamic evolution of tripartite motif (Trim) gene cluster, including Trim5 duplication.
  • High identity in Ntcp regions critical for hepatitis B virus entry.
  • Severe lung and liver inflammation post-Yersinia pestis infection.
  • Upregulation of immune genes, with Il2rγ, Tra29, and Nlrp7 as key network hubs.

Conclusions:

  • Himalayan marmots exhibit conserved and dynamically evolving immune gene features.
  • The species shows significant inflammatory response to Yersinia pestis.
  • Himalayan marmots represent a promising animal model for hepadnavirus and plague research.

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