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Dating the origin of a viral domestication event in parasitoid wasps attacking Diptera.

Over the course of evolution, hymenopteran parasitoids have developed a close relationship with heritable viruses, sometimes integrating viral genes into their chromosomes. For example, in Drosophila parasitoids belonging to the Leptopilina genus, 13 viral genes from the Filamentoviridae family have been domesticated to deliver immunosuppressive factors to host immune cells, thereby protecting parasitoid offspring from the host immune response. The present study aims to comprehensively characterize this domestication event in terms of the viral genes involved, the wasp diversity affected by this event and its chronology. Our genomic analysis of 41 Cynipoidea wasps from six subfamilies revealed 18 viral genes that were endogenized during the early radiation of the Eucoilini/Trichoplastini clade around 75 million years ago. Wasps from this highly diverse clade develop not only from Drosophila but also from a variety of Schizophora. This event coincides with the radiation of Schizophora, a highly speciose Diptera clade, suggesting that viral domestication facilitated wasp diversification in response to host diversification. Additionally, in one of the species, at least one viral gene was replaced by another gene derived from a related filamentovirus. This study highlights the impact of viral domestication on the diversification of parasitoid wasps.

Animals

Lineage-specific targets of positive selection in three leaf beetles correspond with defence capacity against their shared parasitoid wasp.

Parasitoid wasps are major causes of mortality of many species, making host immune defences a common target of adaptive evolution, though such targets outside model species are poorly understood. In this study, we used two tests of positive selection to compare across three closely related Galerucella leaf beetles that show substantial differences in their phenotypic response to the shared parasitoid wasp Asecodes parviclava, their main natural enemy. Using a codon-based test, which detects excess amino acid fixations per locus along each species' lineage, we found more evidence of positive selection on parasitoid-relevant immune genes in the species with the strongest immunocompetence (G. pusilla) compared with the species having weaker immunocompetence (G. tenella and G. calmariensis). Moreover, genes coding for the early phases in the immune response cascade were predominantly among the positively selected immune genes, providing targets for future functional genomic study to pin-point connections between genotypic and phenotypic differences in defences towards a parasitoid wasp. In contrast, genome-wide analyses of the haplotype frequency spectrum, which quantify selection over recent evolutionary time scales, revealed similar signatures of positive selection on immune genes across species. These results advance the field of host-parasitoid dynamics by providing novel insights into the tempo and mode of insect host evolutionary dynamics, and offering a framework for making genotype to phenotype connections for immunocompetence phenotypes.

Animals

Genome assembly and annotation of the parasitoid jewel wasp Nasonia oneida.

The jewel wasp, Nasonia (Hymenoptera: Pteromalidae), is a well-established model system for evolutionary genetics and host-microbial interactions. Here, we present the genome of N. oneida, a species lacking prior genomic characterization, using 10× Genomics linked-read (400× coverage), Illumina short-read (120× coverage), and transcriptome data (30× coverage). The assembled genome size is 267 Mb, comprising 4,675 scaffolds, with a scaffold N50 of 1 Mb and 98.40% Benchmarking Universal Single-Copy Orthologues (BUSCOs) completeness score. Annotation revealed 32.29% (86.46 Mb) of repetitive sequences and 14,221 protein-coding genes. Comparative genomics of N. oneida with 15 other hymenopteran species validated the presence of 5,939 gene families shared among them, including 3643 single-copy and 2296 multicopy gene families. This study provides the first de novo assembly of N. oneida, providing a significant addition to the growing repertoire of molecular tools for comparative genomics and functional studies to understand the evolution of closely related species as well as the evolution of parasitic wasps.

Animals

The genome sequence of an ichneumonid wasp, Ophion crassicornis Brock, 1982 (Hymenoptera: Ichneumonidae).

We present a genome assembly from an individual female Ophion crassicornis (ichneumonid wasp; Arthropoda; Insecta; Hymenoptera; Ichneumonidae). The genome sequence has a total length of 726.34 megabases. Most of the assembly (98.51%) is scaffolded into 13 chromosomal pseudomolecules. The mitochondrial genome has also been assembled, with a length of 38.03 kilobases. This assembly was generated as part of the Darwin Tree of Life project, which produces genomes for eukaryotic species found in Britain and Ireland.

Hymenoptera

The genome sequence of the small wasp-sawfly, Tenthredo distinguenda (R. Stein, 1885).

We present a genome assembly from an individual male Tenthredo distinguenda (the small wasp-sawfly; Arthropoda; Insecta; Hymenoptera; Tenthredinidae). The genome sequence is 229.4 megabases in span. Most of the assembly is scaffolded into 9 chromosomal pseudomolecules. The mitochondrial genome has also been assembled and is 31.6 kilobases in length. Gene annotation of this assembly on Ensembl identified 11,332 protein coding genes.

Hymenoptera

The genome sequence of the solitary wasp, Cerceris ruficornis (Fabricius, 1793).

We present a genome assembly from a female specimen of Cerceris ruficornis (solitary wasp; Arthropoda; Insecta; Hymenoptera; Crabronidae). The genome sequence has a total length of 566.08 megabases, of which 65.35% is scaffolded into 14 chromosomal pseudomolecules. The mitochondrial genome has also been assembled, with a length of 18.07 kilobases. Gene annotation of this assembly on Ensembl identified 11,093 protein-coding genes.

Cerceris ruficornis

The genome sequence of an ichneumonid wasp, Netelia melanura (Thomson, 1888) (Hymenoptera: Ichneumonidae).

We present a genome assembly from an individual male Netelia melanura (ichneumonid wasp; Arthropoda; Insecta; Hymenoptera; Ichneumonidae). The genome sequence has a total length of 253.87 megabases. Most of the assembly (94.81%) is scaffolded into 7 chromosomal pseudomolecules. The mitochondrial genome has also been assembled, with a length of 28.04 kilobases. This assembly was generated as part of the Darwin Tree of Life project, which produces reference genomes for eukaryotic species found in Britain and Ireland.

Netelia melanura; ichneumonid wasp; genome sequenc

The genome sequence of an ichneumonid wasp, Venturia canescens (Gravenhorst, 1829) (Hymenoptera: Ichneumonidae).

We present a genome assembly from an individual female Venturia canescens (ichneumonid wasp; Arthropoda; Insecta; Hymenoptera; Ichneumonidae). The genome sequence has a total length of 299.96 megabases. Most of the assembly (97.25%) is scaffolded into 11 chromosomal pseudomolecules. The mitochondrial genome has also been assembled, with a length of 27.35 kilobases. Gene annotation of this assembly on Ensembl identified 14 281 protein-coding genes. This assembly was generated as part of the Darwin Tree of Life project, which produces reference genomes for eukaryotic species found in Britain and Ireland.

Hymenoptera

The genome sequence of an ichneumonid wasp, Promethes sulcator (Gravenhorst, 1829) (Hymenoptera: Ichneumonidae).

We present a genome assembly from an individual female Promethes sulcator (ichneumonid wasp; Arthropoda; Insecta; Hymenoptera; Ichneumonidae). The genome sequence has a total length of 278.74 megabases. Most of the assembly (99.67%) is scaffolded into 10 chromosomal pseudomolecules. The mitochondrial genome has also been assembled, with a length of 29.43 kilobases. This assembly was generated as part of the Darwin Tree of Life project, which produces genomes for eukaryotic species found in Britain and Ireland.

Hymenoptera

Systematic profiling of nudivirus-like genes reveals conserved and differentiated roles in a domesticated endogenous virus.

Cotesia vestalis bracovirus (CvBV) is a type of domesticated endogenous virus (DEV) derived from ancestral nudiviruses that is integrated into the genome of the parasitoid wasp Cotesia vestalis. The CvBV proviral genome is composed of two distinct components: one encoding genes associated with virion morphogenesis and assembly, and the other harboring virulence genes that are excised, circularized, and packaged into virions. CvBV replication and particle assembly occur exclusively in the ovaries of female wasps. While prior studies have largely focused on the function of virulence genes during parasitization, the molecular mechanisms underlying CvBV replication and assembly remain poorly understood. Here, we identified 71 nudivirus-like genes in the C. vestalis genome through integrated transcriptomic and proteomic analyses. Using gene silencing and microscopy-based imaging approaches, we functionally characterized 24 key genes involved in DNA replication (helicase, integrase-1, and integrase-2), transcriptional regulation (p47, lef-5, and lef-9), capsid formation (vp39, PmV, HzNVorf9-1, HzNVorf9-2, HzNVorf106, 38k, 27b, and K425_459), envelope formation (11k, 17a-1, 35a-1, 35a-2, and K425_461), virion assembly (vlf-1, HzNVorf140-1, and HzNVorf140-2), and viral infectivity (pif-0 and vp91). Although the functions of most nudivirus-like genes are generally conserved among baculoviruses, nudiviruses, and bracoviruses, lef-5, K425_459, 11k, and vp91 appear to have undergone functional divergence relative to their homologs in baculoviruses, nudiviruses, and Microplitis demolitor bracovirus, highlighting lineage-specific adaptations in CvBV. Collectively, our work provides a molecular framework for understanding CvBV assembly and serves as a valuable resource for investigating bracovirus evolution.

Animals

Large-scale Genome Analyses Provide Insights into Hymenoptera Evolution.

The order Hymenoptera includes a large number of species with diverse lifestyles and is known for its significant contributions to natural ecosystems. To better understand the evolution of this diverse order, we performed large-scale comparative genomics on 131 species from 13 superfamilies, covering most representative groups. We used these genomes to reveal an overall pattern of genomic change in terms of gene content and evolutionary rate throughout hymenopteran history. We identified genes that possibly contributed to the evolution of several key innovations, such as parasitoidism, wasp-waist, stinger, and secondary phytophagy. We also discovered the distinct genomic trajectories between the clade containing major parasitoid wasps (Parasitoida) and stinging species (Aculeata) since their divergence, which are involved in many aspects of genomic change, such as rapidly evolving gene families, gene gain and loss, and metabolic pathway evolution. In addition, we explored the genomic features accompanying the three independent evolution of secondary phytophagy. Our work provides insights for understanding genome evolution and the genomic basis of diversification in Hymenoptera.

Animals

There is gold in the graveyard: a new lineage of zombie-ant fungi in the genus Ophiocordyceps (Ophiocordycipitaceae: Hypocreales) from Minas Gerais, Brazil.

Ophiocordyceps serves as a key model for studying cryptic fungal diversity and behavioural manipulation of hymenopterous insects. Here, we describe Ophiocordyceps acanthoponerae, a newly discovered species infecting Acanthoponera mucronata (Heteroponerini: Formicidae) in a Brazilian Atlantic rainforest-Cerrado ecotone. Morphological analyses revealed mixed traits characteristic of Ophiocordyceps lineages associated with ants and wasps, including leaf biting behaviour manipulation, dark brown ascostromata covering 360º of the stalk, ascospores producing capilliconidia and hirsutelloid asexual morphs. Phylogenetic analyses based on four genomic regions (SSU, LSU, TEF and RPB1) placed this species outside the traditional myrmecophilous hirsutelloid clades O. unilateralis and O. kniphofioides, and within a novel clade closely related to the wasp pathogen O. humbertii. This discovery represents the first record of Ophiocordyceps infecting Heteroponerini and highlights an unexplored lineage of manipulative fungi. Our findings expand the known host range for myrmecophilous Ophiocordyceps and underscore the importance of studying fungal diversity in under-sampled ecological niches. Citation: Lima-Santos SJ, Araújo JPM, Feitosa RM, Mendes-Pereira T, Elliot SL, Evans HC (2025). There is gold in the graveyard: a new lineage of zombie-ant fungi in the genus Ophiocordyceps (Ophiocordycipitaceae: Hypocreales) from Minas Gerais, Brazil. Fungal Systematics and Evolution 16: 243-264. doi: 10.3114/fuse.2025.16.14.

Acanthoponera

Molecular heterochrony and the evolution of sociality in bumblebees (Bombus terrestris).

Sibling care is a hallmark of social insects, but its evolution remains challenging to explain at the molecular level. The hypothesis that sibling care evolved from ancestral maternal care in primitively eusocial insects has been elaborated to involve heterochronic changes in gene expression. This elaboration leads to the prediction that workers in these species will show patterns of gene expression more similar to foundress queens, who express maternal care behaviour, than to established queens engaged solely in reproductive behaviour. We tested this idea in bumblebees (Bombus terrestris) using a microarray platform with approximately 4500 genes. Unlike the wasp Polistes metricus, in which support for the above prediction has been obtained, we found that patterns of brain gene expression in foundress and queen bumblebees were more similar to each other than to workers. Comparisons of differentially expressed genes derived from this study and gene lists from microarray studies in Polistes and the honeybee Apis mellifera yielded a shared set of genes involved in the regulation of related social behaviours across independent eusocial lineages. Together, these results suggest that multiple independent evolutions of eusociality in the insects might have involved different evolutionary routes, but nevertheless involved some similarities at the molecular level.

Analysis of Variance

The first two complete mitochondrial genomes for the genus Neotrichoporoides (Hymenoptera, Eulophidae) and their phylogenetic analysis.

Neotrichoporoides belongs to the family Eulophidae (Hymenoptera: Chalcidoidea). As a group of parasitic wasps, it plays an indispensable role in the biological control of agricultural and forest pests and in maintaining ecosystem balance. To date, only nine complete mitochondrial genomes of Eulophidae have been sequenced worldwide, including the two newly sequenced species in this study. To enrich our understanding of the mitochondrial genomic diversity of Eulophidae and to provide preliminary insights into its phylogenetic relationships, we sequenced and comparatively analyzed the mitochondrial genomes of two Neotrichoporoides species. The mitogenomes of N. nyemitawus (GenBank: PZ188956; 15,164 bp) and N. viridimaculatus (GenBank: PX794932; 15,297 bp) contain 13 protein-coding genes (PCGs), 22 transfer RNAs (tRNAs), two ribosomal RNAs (rRNAs), and one control region (CR), and exhibit a strong AT bias, with AT contents of 85.5% and 85.0%, respectively. We further analyzed mitochondrial gene rearrangements across 17 species from Encyrtidae, Eulophidae and Pteromalidae and summarized family-specific rearrangement characteristics. tRNA rearrangements were detected in all three families. Eulophidae harbors conserved PCGs, while the inverse transposition of trnA and transposition of trnV are likely reported for the first time within this family. The two Neotrichoporoides species differ only in the arrangement of several tRNAs. Comparative analysis of PCGs revealed differences in molecular evolutionary rates among genes, with ATP8, ND2 and ND4 evolving faster than the others. Phylogenetic analysis based on mitochondrial genome sequences showed that species from two subfamilies formed a monophyletic group, and congeneric species clustered into a single clade. This study contributes to resolving phylogenetic relationships within Eulophidae and further deepens our understanding of this family.

Eulophidae

The genomic alchemist's arsenal: A comprehensive review of gene recruitment, regulatory rewiring, and the evolutionary arms race in snake envenomation.

Snake venom represents a striking example of evolutionary innovation, in which ancestral physiological gene networks have been co-opted into potent biochemical weapons. Advances in multi-omics, single-cell genomics, and structural bioinformatics have catalyzed a conceptual shift from descriptive toxin cataloging to a systems-level understanding of venom evolution, regulation, and function. This Review integrates genomic, cellular, and structural perspectives to delineate the molecular architecture underpinning venom diversification and target-site co-evolution. Emphasis is placed on regulatory mechanisms driving rapid expression plasticity, including super-enhancer activity, transposable element insertion, spatial heterogeneity within the venom gland, and non-coding RNA-mediated modulation. At the protein level, the review examines how hypervariable toxins engage in structural arms races with prey targets, and how multi-toxin complex formation, functional synergy, and molecular dynamics simulations inform models of lethality and resistance. A comparative framework is provided by contrasting high-potency predatory snake venoms with low-potency defensive venoms of hymenopterans such as bees and wasps, revealing how ecological selective pressures shape toxin potency, composition, and target specificity across taxa. Finally, current translational strategies are evaluated, with a focus on the relative merits of recombinant human monoclonal antibodies versus catalytic-site small-molecule inhibitors as deployable interventions for snakebite. By synthesizing evolutionary genomics, structural biology, comparative toxinology, and synthetic antivenomics, this Review outlines a predictive framework for anticipating venom evolutionary trajectories and for designing broad-spectrum, next-generation therapeutics.

Animals

An analysis of Wolbachia incidence and genetics in non-ant Hymenoptera diversity.

Wolbachia bacteria are widespread maternally inherited symbionts of Nematoda and diverse Arthropoda hosts. Their evolutionary success is determined by the ability to affect the biology of the host in different ways, promoting the relative fitness of females harbouring Wolbachia, as well as sporadic cases of horizontal transmission of Wolbachia between different host species. Here, we revised Wolbachia infection in the Hymenoptera with respect to the symbiont occurrence in host taxa and Wolbachia genetics. The representatives of about half of the extant families and 1000 out of 140,000 non-ant hymenopteran species have been tested for Wolbachia infection. We concluded that Wolbachia are found in all major hymenopteran families. More than 75% of Wolbachia diversity belongs to the A supergroup, whereas other variants belong to the B supergroup and only two isolates belong to the supergroup F. One of the main results of this study is the discovery of a specific Wolbachia genetic pattern (based on multilocus sequence typing [MLST]) in Apoidea hosts. Two haplotypes, ST-479 and ST-wH14, along with their alleles within other sequence types (STs), form the core of symbiont diversity, comprising 81% of unique host-Wolbachia ST associations. These haplotypes have not been reported beyond the Apoidea superfamily or Hymenoptera order. The reasons and mechanisms underlying this pattern in Apoidea remain unknown. Another important result of our study concerns the use of the MLST protocol, which has been previously criticised. We analysed 51 Wolbachia genomes for the average nucleotide identity (ANI) and MLST data, and found that genome and MLST variation are highly correlated. Therefore, the MLST protocol for Wolbachia remains reliable for many research tasks.

Animals

Arginine-substituted Mastoparan-C derivatives combat dual bacterial pathogens: in vitro mechanistic insights and in vivo efficacy in polymicrobial wounds.

UNLABELLED: The synergistic interactions in multi-pathogen infections compromise wound healing and limit therapeutic efficacy. In this study, we designed and synthesized arginine-substituted derivatives of the antimicrobial peptide Mastoparan-C (MP-C). Among them, Arg²MP-C and Arg4.11.12MP-C exhibited potent, broad-spectrum activity against both Escherichia coli and Staphylococcus aureus. Their enhanced antibacterial activity is associated with increased positive charge and optimized hydrophobicity. Mechanistically, both peptides employ a dual-target strategy, disrupting bacterial membranes and binding genomic DNA; Arg²MP-C acted most rapidly against the E. coli envelope, while Arg4.11.12MP-C caused the strongest membrane damage to S. aureus. In a murine polymicrobial wound model, Arg²MP-C treatment nearly achieved complete wound closure by day 10, significantly reduced bacterial loads, and promoted tissue regeneration. This study demonstrates that arginine engineering can yield peptides with potent, multi-mechanistic action, identifying Arg²MP-C as a promising candidate for combating polymicrobial wound infections. IMPORTANCE: Wounds infected with multiple bacterial species are notoriously difficult to treat, often leading to poor healing and limited effectiveness of existing therapies. In this study, we developed new antimicrobial peptides by introducing arginine substitutions into a natural peptide called Mastoparan-C. Two of our engineered peptides, Arg²MP-C and Arg4.11.12MP-C, showed potent activity against two common wound pathogens, Escherichia coli and Staphylococcus aureus. These peptides work through a dual mechanism: disrupting bacterial membranes and binding to bacterial DNA. In a mouse model of mixed-infection wounds, treatment with Arg²MP-C led to nearly complete wound closure by day 10, drastically reduced bacterial counts, and promoted tissue repair. Our findings highlight arginine engineering as a promising strategy to create next‑generation antimicrobial agents that can effectively combat complex polymicrobial wound infections, addressing a critical unmet need in clinical wound care.

Animals