Differential pathogenicity of two feline leukemia virus subgroup A molecular clones, pFRA and pF6A

A J Phipps1, H Chen, K A Hayes

  • 1Department of Veterinary Biosciences, The Ohio State University, Columbus 43210, USA.

Journal of Virology
|June 14, 2000
PubMed

Insights

Feline leukemia virus (FeLV) clone F6A shows lower pathogenicity than clone FRA due to reduced recombination with endogenous FeLV (enFeLV). This slower recombination rate in F6A-infected cats delays disease progression and subgroup A to A/B transition.

Area of Science:

  • Virology
  • Oncology
  • Immunology

Background:

  • Feline leukemia virus (FeLV) subgroup A molecular clones exhibit varying pathogenicity.
  • Previous studies showed FeLV clone FRA is highly pathogenic and readily recombines with endogenous FeLV (enFeLV).
  • F6A, a closely related FeLV subgroup A clone, is considered highly infectious but weakly pathogenic.

Purpose of the Study:

  • To compare the pathogenesis of FeLV molecular clones F6A and FRA.
  • To identify mechanisms underlying differences in FeLV pathogenesis.
  • To investigate the role of recombination with enFeLV in FeLV disease progression.

Main Methods:

  • Inoculation of cats with proviral DNA of F6A and FRA.
  • Monitoring of virus load, antibody responses, and disease progression.
  • Analysis of tumor types and genomic mapping of FeLV recombinants.

Main Results:

  • F6A and FRA showed similar infectivity and antibody responses, but F6A-infected cats had higher virus loads.
  • F6A-infected cats exhibited slower de novo recombination with enFeLV and delayed disease progression compared to FRA-infected cats.
  • Genomic analysis revealed similar crossover sites in recombinants, indicating recombination sites did not drive neoplastic disease progression.

Conclusions:

  • The primary mechanism for the differing pathogenicity between F6A and FRA is F6A's lower propensity for in vivo recombination with enFeLV.
  • Reduced recombination rates slow the transition from FeLV subgroup A to A/B.
  • Slower recombination rates correlate with delayed FeLV-induced disease progression.

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