Shared quasispecies architecture in experimental and natural RNA virus populations

Fuente: arXiv
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Main Authors: Martínez-Alcalá, Samuel, Atienza-Diez, Iker, Somovilla, Pilar, Martínez-González, Brenda, Perales, Celia, Seoane, Luis F., Lázaro, Ester, Manrubia, Susanna
Format: Preprint
Published: 2026
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author Martínez-Alcalá, Samuel
Atienza-Diez, Iker
Somovilla, Pilar
Martínez-González, Brenda
Perales, Celia
Seoane, Luis F.
Lázaro, Ester
Manrubia, Susanna
author_facet Martínez-Alcalá, Samuel
Atienza-Diez, Iker
Somovilla, Pilar
Martínez-González, Brenda
Perales, Celia
Seoane, Luis F.
Lázaro, Ester
Manrubia, Susanna
contents RNA viruses form genetically diverse populations structured as mutant spectra, or quasispecies, whose internal organization influences their evolutionary and adaptive dynamics. While genetic diversity has been extensively characterized, the structural organization of viral populations in sequence space remains less explored. Here, we compare genotype network architectures in two RNA viruses with markedly different evolutionary contexts: bacteriophage $Qβ$ evolving in controlled laboratory conditions and SARS-CoV-2 evolving within infected human hosts. Using deep sequencing data, we reconstruct the genotype network of mutationally coupled variants within viral populations and analyze their topological properties. Despite large differences in genome size, mutation rate, and ecological setting, both viruses exhibit a common organization: a highly abundant central haplotype surrounded by layers of variants of diminishing abundance as Hamming distance to the central haplotype increases. All reconstructed networks share qualitative and quantitative topological features, displaying a hierarchical structure. The robust organization of both populations under multiple conditions suggests that RNA viruses may share a common genotype network architecture governed by fundamental properties of sequence space and the generic mechanisms of replication and mutation. Genotype networks provide a unifying framework to describe viral population structure beyond conventional diversity measures and, by revealing how local constraints shape mutational search, offers insights into the predictability of viral evolution.
format Preprint
id arxiv_https___arxiv_org_abs_2605_13535
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Shared quasispecies architecture in experimental and natural RNA virus populations
Martínez-Alcalá, Samuel
Atienza-Diez, Iker
Somovilla, Pilar
Martínez-González, Brenda
Perales, Celia
Seoane, Luis F.
Lázaro, Ester
Manrubia, Susanna
Populations and Evolution
RNA viruses form genetically diverse populations structured as mutant spectra, or quasispecies, whose internal organization influences their evolutionary and adaptive dynamics. While genetic diversity has been extensively characterized, the structural organization of viral populations in sequence space remains less explored. Here, we compare genotype network architectures in two RNA viruses with markedly different evolutionary contexts: bacteriophage $Qβ$ evolving in controlled laboratory conditions and SARS-CoV-2 evolving within infected human hosts. Using deep sequencing data, we reconstruct the genotype network of mutationally coupled variants within viral populations and analyze their topological properties. Despite large differences in genome size, mutation rate, and ecological setting, both viruses exhibit a common organization: a highly abundant central haplotype surrounded by layers of variants of diminishing abundance as Hamming distance to the central haplotype increases. All reconstructed networks share qualitative and quantitative topological features, displaying a hierarchical structure. The robust organization of both populations under multiple conditions suggests that RNA viruses may share a common genotype network architecture governed by fundamental properties of sequence space and the generic mechanisms of replication and mutation. Genotype networks provide a unifying framework to describe viral population structure beyond conventional diversity measures and, by revealing how local constraints shape mutational search, offers insights into the predictability of viral evolution.
title Shared quasispecies architecture in experimental and natural RNA virus populations
topic Populations and Evolution
url https://arxiv.org/abs/2605.13535