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Bednarski, V.

Publications and source records attributed to Bednarski, V..

3 recordsLinked to original sources

Genomes of ancient asexual mites appear streamlined in their architecture

The long-term persistence of obligate asexual lineages represents one of the most enduring and critical paradoxes in evolutionary biology. Sexual reproduction, through meiotic recombination and segregation, enables the efficient removal of deleterious mutations and facilitates rapid adaptation to shifting environmental pressures. Lineages that lose sex are therefore classically predicted to experience genomic decay and face rapid extinction. Oribatid mites (Acari, Sarcoptiformes) represent a unique system for testing these predictions, as they feature multiple, ancient, and independent transitions to asexuality, providing a natural experiment on the evolutionary fate of asexual genomes. We compared four sets of sister sexual and asexual species using high-quality nuclear genome assemblies to investigate the genomic consequences of long-term asexuality. Our study revealed a profound, reproductive-mode-dependent dichotomy in the evolution of genome architecture. Contrary to their expected genomic decay, asexual species have mostly streamlined genomes with less novel genes than their sexual sister species. In contrast, sexual species have acquired genetic innovations, encompassing both gene and transposable element content. These results challenge classical expectations of genomic deterioration in asexual species and might explain the long-term evolutionary persistence of oribatid mites.

genomics↗

Comparative genomics of parasitoid lifestyle as exemplified by Mermithidae and Nematomorpha

Mermithidae and Nematomorpha are parasitoids united by the commonalities in their lifestyle - immature stages infect arthropod hosts, species from both phyla can manipulate their host to induce a similar water-seeking behaviour, and both have a final free-living non-feeding adult reproductive stage, often killing their host upon emergence. Some of these species are of great economic importance, being evaluated as biological control agents against mosquito vectors responsible for diseases like malaria, and other insect pests, but with scarce genomic resources currently available. Nematomorpha, despite being closely related to Nematoda, received insufficient attention in genomic research, leading to gaps in our understanding of their diverse genetic makeup. This study aimed to investigate the genetic features encoded in the genomes of both parasitoid taxa to identify similarities and parallels linked to their ecological lifestyles. We performed a comparative analysis of 12 genomes, comprising parasitoid, parasitic and free-living worms. The investigation revealed genomic signatures unique to parasitoid species, including expanded gene families enriched in neural transmission modulation, likely linked to the known host manipulation that both mermithids and nematomorphs exert on their hosts. The analysis also uncovered a diverse array of conserved transposable element superfamilies across both lineages. The findings from this study provide valuable insights into the potential genomic adaptations associated with parasitoidism in nematode and nematomorph worms. The identification of expanded gene families and conserved transposable element superfamilies sheds light on the molecular underpinnings of their unique biological traits. Additionally, the core set of orthologs specific to parasitoid worms offers new avenues for understanding the evolution of parasitism within these groups of organisms.

genomics↗

Haplotype independence contributes to evolvability in the long-term absence of sex in a mite

Some unique asexual species persist over time and contradict the consensus that sex is a prerequisite for long-term evolutionary survival. How they escape the dead-end fate remains enigmatic. Here, we generated a haplotype-resolved genome assembly based on a single individual and collected genomic data from worldwide populations of the parthenogenetic diploid oribatid mite Platynothrus peltifer to identify signatures of persistence without sex. We found that haplotypes diverge independently since the transition to asexuality at least 20 my ago. Multiple lines of evidence indicate disparate evolutionary trajectories between haplotypic blocks. Our findings imply that such haplotypic independence can lead to non-canonical routes of evolvability, helping some species to adapt, diversify and persist for millions of years in the absence of sex. One-Sentence SummaryFunctionally different chromosome sets in an asexual mite species showcase a survival strategy spanning millions of years.

evolutionary biology↗