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Updated: Jul 8, 2026

Following the Dynamics of Structural Variants in Experimentally Evolved Populations
Published on: February 3, 2023
Nonstandard viral genomes as engines of viral evolution: ecological roles, evolutionary consequences, and insights
Santiago F Elena1, Julia Hillung2, J Tomás Lázaro3
1Institute for Integrative Systems Biology (I2SysBio), CSIC-Universitat de València, Paterna, València 46980, Spain; Santa Fe Institute, Santa Fe, NM 87501, USA.
Abstract:
Nonstandard viral genomes (nsVGs) are heritable viral genomic forms that differ from the canonical full-length genome through structural rearrangements such as deletions, duplications, copy-back/snap-back structures, or recombination. This definition is genomic rather than functional: some nsVGs are defective, some interfere with helper virus replication, and others may be neutral, conditionally beneficial, or encode functional products. Once considered laboratory artifacts, nsVGs are now recognized as pervasive components of RNA virus populations that reshape viral fitness, within-host dynamics, immune activation, and long-term evolutionary trajectories. High-throughput sequencing has revealed rich nsVG spectra but also exposed a complex measurement problem in which generation, selection, junction-detection bias, and quantification uncertainty jointly determine what is observed. Mathematical models have clarified how helper virus/nsVG interactions generate coexistence, frequency dependence, multistability, oscillations, and, in some regimes, chaos, while multipartite models involving satellites reveal higher-order ecological effects. Here we synthesize experimental, bioinformatic, and theoretical advances to argue that nsVGs are evolving ecological agents whose effects depend on generation, selection, measurement, and nonlinear population dynamics. This framework extends classical quasispecies theory and offers a path toward predicting nsVG amplification, infection outcomes, and nsVG-mediated therapeutic interference with the wild-type virus.
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