Evidence and consequence of porcine endogenous retrovirus recombination

Birke Bartosch1, Dimitrios Stefanidis, Richard Myers

  • 1Wohl Virion Centre, Division of Infection of Immunity, University College London, 46 Cleveland St., London W1T 4JF, United Kingdom.

Journal of Virology
|November 27, 2004
PubMed

Insights

Recombination between porcine endogenous retroviruses (PERVs) can create high-titer, human-infecting strains. Pigs lacking PERV-C are better for xenotransplantation due to reduced zoonotic PERV transmission risk.

Area of Science:

  • Virology
  • Genetics
  • Molecular Biology

Background:

  • Porcine endogenous retroviruses (PERVs) are retroviruses integrated into the swine genome.
  • PERVs pose a potential risk for zoonotic transmission, particularly in xenotransplantation.
  • Understanding PERV recombination is crucial for assessing and mitigating transmission risks.

Purpose of the Study:

  • To investigate the genetic basis and biological consequences of recombination in PERVs.
  • To analyze the sequence of a high-titer, human-tropic PERV isolate (PERV-A 14/220).
  • To identify recombination events that contribute to PERV infectivity and host range.

Main Methods:

  • Generated an infectious molecular clone of PERV-A 14/220.
  • Developed a sequence comparison program (LOHA™) to analyze local sequence homology.
  • Performed local homology and phylogenetic analyses on 16 full-length PERV sequences.

Main Results:

  • PERV-A 14/220 resulted from homologous recombination between PERV-C and PERV-A genomes.
  • A specific PERV-A sequence region containing the env receptor binding domain confers human cell tropism.
  • PERV-C-derived regions contribute to the high infectious titer of PERV-A 14/220.
  • Evidence of past recombination events creating PERV genomes with PERV-A env but not PERV-B env.

Conclusions:

  • Homologous recombination is an effective mechanism for generating high-titer, potentially harmful PERVs.
  • PERV-A env is more susceptible to recombination with diverse PERV genomes than PERV-B env.
  • Frequent recombination events in pigs increase the risk of zoonotic PERV transmission.
  • Pigs lacking PERV-C are preferable for xenotransplantation to minimize zoonotic risks.

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