Forty New Genomes Shed Light on Sexual Reproduction and the Origin of Tetraploidy in Microsporidia
Khalaf, A.; Zhou, C.; Weber, C. C.; Vancaester, E.; Sims, Y.; Makunin, A.; Mathers, T. C.; Absolon, D. E.; Wood, J. M.; McCarthy, S. A.; Jaron, K.; Blaxter, M.; Lawniczak, M. K.
Show abstract
Microsporidia are single-celled, obligately intracellular parasites with growing public health, agricultural, and economic importance. Despite this, Microsporidia remain relatively enigmatic, with many aspects of their biology and evolution unexplored. Key questions include whether Microsporidia undergo sexual reproduction, and the nature of the relationship between tetraploid and diploid lineages. While few high-quality microsporidian genomes currently exist to help answer such questions, large-scale biodiversity genomics initiatives, such as the Darwin Tree of Life project, can generate high-quality genome assemblies for microsporidian parasites when sequencing infected host species. Here, we present 40 new microsporidian genome assemblies from infected arthropod hosts that were sequenced to create reference genomes. Out of the 40, 32 are complete genomes, eight of which are chromosome-level, and eight are partial microsporidian genomes. We characterised 14 of these as polyploid and five as diploid. We found that tetraploid genome haplotypes are consistent with autopolyploidy, in that they coalesce more recently than species, and that they likely recombine. Within some genomes, we found large-scale rearrangements between the homeologous genomes. We also observed a high rate of rearrangement between genomes from different microsporidian groups, and a striking tolerance for segmental duplications. Analysis of chromatin conformation capture (Hi-C) data indicated that tetraploid genomes are likely organised into two diploid compartments, similar to dikaryotic cells in fungi, with evidence of recombination within and between compartments. Together, our results provide evidence for the existence of a sexual cycle in Microsporidia, and suggest a model for the microsporidian lifecycle that mirrors fungal reproduction.
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- A chromosome-level assembly of the cat flea genome uncovers rampant gene duplication and genome size plasticity 95%
- Complete representation of a tapeworm genome reveals chromosomes capped by centromeres, necessitating a dual role in segregation and protection 95%
- The extrachromosomal circular DNAs of the rice blast pathogen Magnaporthe oryzae contain a wide variety of LTR retrotransposons, genes, and effectors 94%
Similar papers in this journal
Similar papers in this journal
- Comparative genomics of Cryptococcus and Kwoniella reveals pathogenesis evolution and contrasting karyotype dynamics via intercentromeric recombination or chromosome fusion 96%
- Massive colonization of protein-coding exons by selfish genetic elements in Paramecium germline genomes 96%
- Comparative gene annotation and orthology assignments across 301 species of Drosophilidae 94%
Similar papers in this journal
- The genome of the oomycete Peronosclerospora sorghi, a cosmopolitan pathogen of maize and sorghum, is inflated with dispersed pseudogenes 95%
- Population genetic analysis reveals the role of natural selection and phylogeography on genome-wide diversity in an extremely compact and reduced microsporidian genome 94%
- Host adaptation and genome evolution of the broad host range fungal rust pathogen, Austropuccinia psidii 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.