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Herek, D.

Publications and source records attributed to Herek, D..

2 recordsLinked to original sources

The hidden diversity: Replication-strand asymmetry shapes short-term nucleotide and structural variation in an RNA virus

Orsay virus (OrV), a positive-sense RNA virus infecting Caenorhabditis elegans, establishes latent infections with minimal impact on host fitness. Using strand-specific RNA-seq across twelve time points spanning larval development, we characterized OrV replication dynamics and short-term evolutionary patterns. Viral accumulation followed four distinct phases and exhibited strong strand asymmetry, consistent with a predominance of the stamping-machine replication mechanism. Diversity analyses revealed that negative-strand genomes harbor more mutations than positive strands, with hotspots concentrated in the replicase C-terminal tail and structural protein regions. Many negative-strand variants failed to propagate to positive strands, suggesting within-cell constraints or purifying selection at the RNA level. We also report the first evidence of non-standard viral genomes in OrV, dominated by deletions in RNA2, including a recurrent large deletion that may function as a subgenomic RNA encoding a shorter version of the {delta} protein. These findings highlight replication asymmetry, strand-specific mutational filtering, and pervasive non-standard genomes as key features shaping OrV evolution during a primary infection.

evolutionary biology↗

Species-specific barriers constrict Orsay virus host range across the Caenorhabditis genus

Predicting the host range and spillover potential of RNA viruses requires understanding how ecological, immunological, and evolutionary factors jointly shape viral life cycles across related hosts. Here we integrate population-level viral load dynamics, single-animal heterogeneity, tissue-level progression, transmission competence, and evolutionary sustainability to map the eco evolutionary barriers that Orsay virus encounters across six Caenorhabditis species. We show that host species identity determines the timing and completeness of the viral life cycle, producing species specific combinations of susceptibility, replication kinetics, RNA2 to RNA1 stoichiometric balance, virion egress, and onward transmission. These phenotypes correspond to distinct host competence phenotypes, ranging from permissive (Caenorhabditis elegans) to restrictive or evolutionarily dead end host species. Alternative host species disrupt viral life cycle synchrony through delayed replication, truncated cycles, or failure to produce lumen localized virus, thereby reducing transmission and preventing viral adaptation upon serial passage. Our results demonstrate how temporal mismatches between viral replication and host physiology create a series of eco evolutionary barriers to emergence, offering a mechanistic framework for predicting viral host range.

evolutionary biology↗