TY - JOUR A1 - Trimpert, J. A1 - Groenke, N. A1 - Kunec, D. A1 - Eschke, K. A1 - He, Shulin A1 - McMahon, Dino Peter A1 - Osterrieder, N. T1 - A proofreading-impaired herpesvirus generates populations with quasispecies-like structure JF - Nature Microbiology N2 - RNA virus populations are composed of highly diverse individuals that form a cloud of related sequences commonly referred to as a ‘quasispecies’1–3. This diversity arises as a consequence of low-fidelity genome replication4,5. By contrast, DNA Virus populations contain more uniform individuals with similar fitness6. Genome diversity is often correlated with increased Fitness in RNA viruses, while DNA viruses are thought to require more faithful genome replication. During DNA replication, erroneously incorporated bases are removed by a 3′-5′ exonuclease, a highly conserved enzymatic function of replicative DNA but not RNA polymerases. This proofreading process enhances replication fidelity and ensures the genome integrity of DNA organisms, including large DNA viruses7. Here, we show that a herpesvirus can tolerate impaired exonucleolytic proofreading, resulting in DNA virus populations, which, as in RNA viruses8, are composed of highly diverse genotypes of variable individual fitness. This indicates that herpesvirus mutant diversity may compensate for individual Fitness loss. Notably, in vivo infection with diverse virus populations results in a marked increase in virulence compared to genetically homogenous parental virus. While we cannot exclude that the increase in virulence is caused by selection of and/or interactions between individual genotypes, our findings are consistent with quasispecies dynamics. Our results contrast with traditional views of DNA virus replication and evolution, and indicate that a substantial increase in population diversity can lead to higher virulence. KW - Marek's virus KW - Virulence KW - Quasispecies KW - Evolution PY - 2019 DO - https://doi.org/10.1038/s41564-019-0547-x SN - 2058-5276 N1 - Corrigendum: Nature Microbiology 4 (2019) 2025 VL - 4 SP - 2175 EP - 2183 PB - Nature Publishing Group CY - London AN - OPUS4-48896 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Bucek, A. A1 - Sobotnik, J. A1 - He, Shulin A1 - Shi, M. A1 - McMahon, Dino Peter A1 - Holmes, E.C. A1 - Roisin, Y. A1 - Lo, N. A1 - Bourguignon, T. T1 - Evolution of Termite Symbiosis Informed by Transcriptome-Based Phylogenies JF - Current Biology N2 - Termitidae comprises 80% of all termite species that play dominant decomposer roles in Tropical cosystems. Two major events during Termite evolution were the loss of cellulolytic gut protozoans in the ancestor of Termitidae and the subsequent gain in the termitid subfamily Macrotermitinae of fungal symbionts cultivated externally in ‘‘combs’’ constructed within the nest. How these symbiotic transitions occurred remains unresolved. Phylogenetic analyses of mitochondrial data previously suggested that Macrotermitinae is the earliest branching termitid lineage, followed soon after by Sphaerotermitinae, which cultivates bacterial symbionts on combs inside its nests. This has led to the hypothesis that comb building was an important evolutionary step in the loss of gut protozoa in ancestral termitids. We sequenced genomes and transcriptomes of 55 termite species and reconstructed phylogenetic trees from up to 4,065 orthologous genes of 68 species. We found strong support for a novel sister-group relationship between the bacterial comb-building Sphaerotermitinae and fungus comb-building Macrotermitinae. This key finding indicates that comb building is a derived trait within Termitidae and that the creation of a comb-like ‘‘external rumen’’ involving bacteria or fungi may not have driven the loss of protozoa from ancestral termitids, as previously hypothesized. Instead, associations with gut prokaryotic symbionts, combined with dietary shifts from wood to other plant-based substrates, may have played a more important role in this symbiotic transition. Our phylogenetic tree provides a platform for future studies of comparative termite evolution and the evolution of symbiosis in this taxon. KW - Molecular clock KW - Fungiculture KW - Gut symbionts KW - Insect evolution KW - Isoptera PY - 2019 DO - https://doi.org/10.1016/j.cub.2019.08.076 VL - 29 IS - 21 SP - 3728 EP - 3734.e4 PB - Elsevier Ltd. AN - OPUS4-49647 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -