Genetic recombination during coinfection of two mutants of human respiratory syncytial virus

KM Spann, PL Collins, MN Teng - Journal of virology, 2003 - Am Soc Microbiol
KM Spann, PL Collins, MN Teng
Journal of virology, 2003Am Soc Microbiol
Recombination between coinfecting viruses had not been documented previously for a
nonsegmented negative-strand RNA virus (mononegavirus). We investigated the potential of
intermolecular recombination by respiratory syncytial virus (RSV) by coinfecting HEp-2 cells
with two recombinant RSV (rRSV) mutants lacking either the G gene (ΔG/HEK) or the NS1
and NS2 genes (ΔNS1/2). These viruses replicate inefficiently and form pinpoint plaques in
HEp-2 cells. Therefore, potential recombined viruses with a growth and/or plaque formation …
Abstract
Recombination between coinfecting viruses had not been documented previously for a nonsegmented negative-strand RNA virus (mononegavirus). We investigated the potential of intermolecular recombination by respiratory syncytial virus (RSV) by coinfecting HEp-2 cells with two recombinant RSV (rRSV) mutants lacking either the G gene (ΔG/HEK) or the NS1 and NS2 genes (ΔNS1/2). These viruses replicate inefficiently and form pinpoint plaques in HEp-2 cells. Therefore, potential recombined viruses with a growth and/or plaque formation advantage should easily be identified and differentiated from the two parental viruses. Further identification of potential recombinants was aided by the inclusion of point mutation markers in the F and L genes of ΔG/HEK and the design of reverse transcription-PCR (RT-PCR) primers capable of detecting these markers. Independent coinfections and control single infections by these two rRSV mutants were performed. In one of six coinfections, an RSV variant was identified that produced plaques slightly larger than those of wild-type RSV in HEp-2 cells. RT-PCR and sequencing provided evidence that this variant was a recombined RSV (rec-RSV). The rec-RSV appeared to have been generated by a polymerase jump from the ΔG/HEK genome to that of ΔNS1/2 and back again in the vicinity of the SH-G-F genes. This apparently involved nonhomologous and homologous recombination events, respectively. The recombined genome was identical to that of the ΔG/HEK mutant except that all but the first 12 nucleotides of the SH gene were deleted and replaced by an insert consisting of the last 91 nucleotides of the G gene and its downstream intergenic region. This insert could have come only from the coinfecting ΔNS1/2 virus. This resulted in the formation of a short chimeric SH:G gene. Northern and Western blot analysis confirmed that the rec-RSV did not express the normal SH and G mRNAs and proteins but did express the aberrant SH:G mRNA. This provides an experimental demonstration of intermolecular recombination yielding a viable, helper-independent mononegavirus. However, the isolation of only a single rec-RSV under these optimized conditions supports the idea that RSV recombination is rare indeed.
American Society for Microbiology