The Dynamics of Influenza A H3N2 Defective Viral Genomes from a Human Challenge Study
Martin, M. A.; Kaul, D.; Tan, G. S.; Woods, C. W.; Koelle, K.
Show abstract
The rapid evolution of influenza is an important contributing factor to its high worldwide incidence. The emergence and spread of genetic point mutations has been thoroughly studied both within populations and within individual hosts. In addition, influenza viruses are also known to generate genomic variation during their replication in the form of defective viral genomes (DVGs). These DVGs are formed by internal deletions in at least one gene segment that render them incapable of replication without the presence of wild-type virus. DVGs have previously been identified in natural human infections and may be associated with less severe clinical outcomes. These studies have not been able to address how DVG populations evolve in vivo in individual infections due to their cross-sectional design. Here we present an analysis of DVGs present in samples from two longitudinal influenza A H3N2 human challenge studies. We observe the generation of DVGs in almost all subjects. Although the genetic composition of DVG populations was highly variable, identical DVGs were observed both between multiple samples within single hosts as well as between hosts. Most likely due to stochastic effects, we did not observe clear instances of selection for specific DVGs or for shorter DVGs over the course of infection. Furthermore, DVG presence was not found to be associated with peak viral titer or peak symptom scores. Our analyses highlight the diversity of DVG populations within a host over the course of infection and the apparent role that genetic drift plays in their population dynamics.\n\nImportanceThe evolution of influenza virus, in terms of single nucleotide variants and the reassortment of gene segments, has been studied in detail. However, influenza is known to generate defective viral genomes (DVGs) during replication, and little is known about how these genomes evolve both within hosts and at the population level. Studies in animal models have indicated that prophylactically or therapeutically administered DVGs can impact patterns of disease progression. However, the formation of naturally-occurring DVGs, their evolutionary dynamics, and their contribution to disease severity in human hosts is not well understood. Here, we identify the formation of de novo DVGs in samples from human challenge studies throughout the course of infection. We analyze their evolutionary trajectories, revealing the important role of genetic drift in shaping DVG populations during acute infections with well-adapted viral strains.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Influenza B viruses exhibit lower within-host diversity than influenza A viruses in human hosts 98%
- Influenza Viruses in Mice: Deep Sequencing Analysis of Serial Passage and Effects of Sialic Acid Structural Variation 98%
- Long-term serial passaging of SARS-CoV-2 reveals signatures of convergent evolution 97%
Similar papers in this journal
- SARS-CoV-2 variants associated with vaccine breakthrough in the Delaware Valley through summer 2021 96%
- Differential alphavirus defective RNA diversity between intracellular and encapsidated compartments is driven by subgenomic recombination events 96%
- Influenza A virus defective viral genomes are inefficiently packaged into virions relative to wild-type genomic RNAs 96%
Similar papers in this journal
- High-Throughput, Single-Copy Sequencing Reveals SARS-CoV-2 Spike Variants Coincident with Mounting Humoral Immunity during Acute COVID-19 97%
- Adaptation of a transmitted/founder simian-human immunodeficiency virus for enhanced replication in rhesus macaques 96%
- Shedding dynamics of a DNA virus population during acute and long-term persistent infection 96%
Similar papers in this journal
- Identification of H3N2 NA and PB1-F2 genetic variants and their association with disease symptoms in the 2014-15 influenza season 96%
- Evolutionary potential of the monkeypox genome arising from interactions with human APOBEC3 enzymes 95%
- Intragenic Recombination Influences Rotavirus Diversity and Evolution 95%
Similar papers in this journal
- Rhinovirus reduces the severity of subsequent respiratory viral infections by interferon-dependent and -independent mechanisms 95%
- Conserved Genomic Terminals of SARS-CoV-2 as Co-evolving Functional Elements and Potential Therapeutic Targets 94%
- PRRSV-2 variant classification: a dynamic nomenclature for enhanced monitoring and surveillance 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.