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Brask, N.

Publications and source records attributed to Brask, N..

4 recordsLinked to original sources

Skiaviridae: a large DNA virus family that persistently infects thraustochytrid protists

Genomics and metagenomics have transformed our understanding of the diversity of large DNA viruses infecting eukaryotic microorganisms. Using long-read sequencing, we discovered ubiquitous, co-culturing nucleocytoviruses in several thraustochytrid protists. These viruses are closely related to SmDNAV, an 'orphan' virus of the thraustochytrid Sicyoidochytrium minutum. Transcriptomics, proteomics and electron microscopy demonstrate viral gene expression and particle formation in these cultures without obvious defects in culture growth. We also found SmDNAV-type viruses associated with previously sequenced thraustochytrids. Phylogenetic analysis reveals that the SmDNAV and SmDNAV-like genomes belong to a hitherto unrecognized order of Nucleocytoviricota, here named "Skiavirales". All fifteen identified skiavirus genomes lack numerous viral hallmark genes including DNA-dependent RNA polymerase; all but three also lack DNA polymerase family B (PolB). PolB phylogeny suggests a specific relationship between Skiavirales and the recently discovered mirusviruses, which belong to a different viral realm. Gene exchange between skiaviruses, co-occurring mirusviruses, and host nuclear genomes shows that persistent infection by diverse large DNA viruses provides an opportunity for virus-virus and virus-host co-evolution in thraustochytrids and, perhaps, other microbial eukaryotes.

evolutionary biology↗

Lateral gene transfer introduced the microbial anaerobiosis-related gene rquA into early animals

Lateral gene transfer (LGT) enables rapid metabolic innovation in microbes, but its evolutionary importance in animals remains debated. Among metabolic traits with major ecological consequences, adaptations to low-oxygen conditions often involve modifications of mitochondrial electron transport and the quinones that mediate electron flow. Rhodoquinone-based anaerobic metabolism occurs in several eukaryotic lineages, yet the evolutionary routes by which animals acquired this capability are poorly understood. Here we show that freshwater sponges possess a rhodoquinone biosynthesis gene, rquA, previously restricted to microbial lineages, which was acquired by lateral gene transfer and functionally integrated into sponge metabolism. Heterologous expression of rquA from the model freshwater sponge Ephydatia muelleri enables rhodoquinone production in yeast, consistent with functional conservation. In E. muelleri, the rquA gene is upregulated under hypoxia and rhodoquinone is detectable across all lifestages, however, it is most abundant in early development in the pluiripotent gemmules. Using comparative genomics, we find that the presence of rquA in freshwater sponges correlates with loss of key genes of the ubiquinone biosynthesis pathway, suggesting these animals cannot synthesize ubiquinone de novo and we show that E. muelleri can convert exogenous ubiquinone to rhodoquinone. Rhodoquinone levels were significantly higher in rquA-encoding freshwater sponges compared to marine sponges that were sampled from natural environments. This study reveals that an early animal lineage acquired a microbial metabolism-related gene via lateral gene transfer during or before the transition to freshwater environments, enabling rhodoquinone utilization and potentially enhancing tolerance to oxygen fluctuations. Thereby, demonstrating how LGT shapes energy metabolism even in multicellular organisms.

evolutionary biology↗

Semi-permeable capsules enable parallel cultivation and live microscopic observations of microbial eukaryotes

Semi-permeable capsules (SPCs) create enclosed porous microenvironments, diffusible to only small proteins and macromolecules. This presents a powerful tool for single cell observation, isolation, and sequencing. However, their range of use for sustaining viable microbial eukaryotes is largely unexplored. Single-cell eukaryotes are often understudied, with a wealth of unknown lifecycles, culturing methods and inter-microbial interactions, which are difficult to visualize. Here, we show that eukaryotes from eight different supergroups can be captured and propagated in SPCs. Encapsulation allowed observations of cell stages, motility and growth in a traceable and parallelized manner.

microbiology↗

DIVERGENT TRAJECTORIES FOR ANAEROBIC MITOCHONDRIAL EVOLUTION IN BREVIATE PROTISTS

Mitochondrion-related organelles (MROs) have evolved as adaptations to low oxygen conditions multiple times in the eukaryote tree of life. However, the evolutionary steps by which aerobic mitochondrial functions were replaced by anaerobic pathways are still poorly understood. The breviate Pygsuia biforma is particularly interesting because it is the only protist known to have replaced the canonical mitochondrial iron-sulfur cluster (ISC) system with a horizontally acquired SUF-like minimal system (SMS) protein. This functions within an MRO possessing a uniquely configured electron transport chain (ETC). To investigate the evolutionary path by which the P. biforma MRO evolved these features, we conducted a comparative transcriptomic study of eight diverse marine breviate species and predicted their MRO proteomes. We found three distinct patterns of iron-sulfur cluster biosynthesis machinery across the breviates where organisms would encode: the canonical ISC system alone, the ISC system and cytoplasmic SMS system, and a cytoplasmic and MRO-localized SMS system. Phylogenetic analyses suggests that the SMS system was acquired via lateral gene transfer in an ancestor of all breviates and later duplicated, with one copy gaining mitochondrial targeting and replacing the ISC system in a subset of breviates. We observed similarly divergent evolutionary trajectories for quinone-utilizing proteins. Two species have completely lost the ETC while the remaining lineages retain a partial ETC and mitochondrial contact site and cristae organizing system (MICOS), previously thought to be absent in breviates. These patterns reflect divergent biochemical configurations of MROs shaped by gene transfer, loss, and duplication within a single eukaryotic lineage and underscores dynamic remodeling of organellar metabolism in response to marine hypoxic environments.

evolutionary biology↗