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Rapid, Seamless Generation of Recombinant Poxviruses using Host Range and Visual Selection
Published on: May 24, 2020
Recombinant Origins of Pathogenic and Nonpathogenic Mouse Gammaretroviruses with Polytropic Host Range
Devinka Bamunusinghe1, Qingping Liu1, Ronald Plishka1
1Laboratory of Molecular Microbiology, National Institute of Allergy and Infectious Diseases, Bethesda, Maryland, USA.
Abstract:
Ecotropic, xenotropic, and polytropic mouse leukemia viruses (E-, X-, and P-MLVs) exist in mice as infectious viruses and endogenous retroviruses (ERVs) inserted into mouse chromosomes. All three MLV subgroups are linked to leukemogenesis, which involves generation of recombinants with polytropic host range. Although P-MLVs are deemed to be the proximal agents of disease induction, few biologically characterized infectious P-MLVs have been sequenced for comparative analysis. We analyzed the complete genomes of 16 naturally occurring infectious P-MLVs, 12 of which were typed for pathogenic potential. We sought to identify ERV progenitors, recombinational hot spots, and segments that are always replaced, never replaced, or linked to pathogenesis or host range. Each P-MLV has an E-MLV backbone with P- or X-ERV replacements that together cover 100% of the recombinant genomes, with different substitution patterns for X- and P-ERVs. Two segments are always replaced, both coding for envelope (Env) protein segments: the N terminus of the surface subunit and the cytoplasmic tail R peptide. Viral gag gene replacements are influenced by host restriction genes Fv1 and Apobec3 Pathogenic potential maps to the env transmembrane subunit segment encoding the N-heptad repeat (HR1). Molecular dynamics simulations identified three novel interdomain salt bridges in the lymphomagenic virus HR1 that could affect structural stability, entry or sensitivity to host immune responses. The long terminal repeats of lymphomagenic P-MLVs are differentially altered by recombinations, duplications, or mutations. This analysis of the naturally occurring, sometimes pathogenic P-MLV recombinants defines the limits and extent of intersubgroup recombination and identifies specific sequence changes linked to pathogenesis and host interactions.IMPORTANCE During virus-induced leukemogenesis, ecotropic mouse leukemia viruses (MLVs) recombine with nonecotropic endogenous retroviruses (ERVs) to produce polytropic MLVs (P-MLVs). Analysis of 16 P-MLV genomes identified two segments consistently replaced: one at the envelope N terminus that alters receptor choice and one in the R peptide at the envelope C terminus, which is removed during virus assembly. Genome-wide analysis shows that nonecotropic replacements in the progenitor ecotropic MLV genome are more extensive than previously appreciated, covering 100% of the genome; contributions from xenotropic and polytropic ERVs differentially alter the regions responsible for receptor determination or subject to APOBEC3 and Fv1 restriction. All pathogenic viruses had modifications in the regulatory elements in their long terminal repeats and differed in a helical segment of envelope involved in entry and targeted by the host immune system. Virus-induced leukemogenesis thus involves generation of complex recombinants, and specific replacements are linked to pathogenesis and host restrictions.
Insights
Mouse leukemia viruses (MLVs) recombine with endogenous retroviruses (ERVs) to cause leukemia. This study reveals specific viral genome segments and regulatory elements linked to MLV pathogenesis and host interactions.
Area of Science:
- Virology
- Genomics
- Immunology
Background:
- Mouse leukemia viruses (MLVs) exist as infectious agents and endogenous retroviruses (ERVs) in mice.
- All MLV subgroups are implicated in leukemogenesis, often involving recombinants with polytropic host ranges.
- Polytropic MLVs (P-MLVs) are key in disease induction, but few infectious P-MLVs have been fully sequenced.
Purpose of the Study:
- To analyze complete genomes of naturally occurring infectious P-MLVs.
- To identify endogenous retroviral (ERV) progenitors and recombinational hotspots.
- To pinpoint viral segments associated with pathogenesis and host range.
Main Methods:
- Whole-genome sequencing of 16 naturally occurring infectious P-MLVs.
- Pathogenicity typing for 12 of the sequenced viruses.
- Molecular dynamics simulations of viral envelope proteins.
Main Results:
- P-MLV genomes consist of an ecotropic MLV (E-MLV) backbone with polytropic (P-) or xenotropic (X-) ERV replacements, covering 100% of the genome.
- Two envelope (Env) protein segments are consistently replaced: the N-terminus of the surface subunit and the cytoplasmic R peptide.
- Pathogenic potential is linked to the env transmembrane subunit's N-heptad repeat (HR1) region, with specific structural alterations in lymphomagenic viruses.
Conclusions:
- This study defines the extent of intersubgroup recombination in P-MLVs.
- Specific sequence changes in the Env protein and long terminal repeats (LTRs) are associated with pathogenesis and host interactions.
- Recombination events and specific sequence modifications are critical for virus-induced leukemogenesis and host immune evasion.
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