bioRxiv · 10.1101/2023.08.07.552246
Extracellular vesicles are the main contributor to the non-viral protected extracellular sequence space
Abstract
Marine environmental virus metagenomes, commonly referred to as viromes, are typically generated by physically separating virus-like particles (VLPs) from the microbial fraction based on their size and mass. However, most methods used to purify VLPs, enrich extracellular vesicles (EVs) and gene transfer agents (GTAs) simultaneously. Consequently, the sequence space traditionally referred to as a virome contains host-associated sequences, transported via EVs or GTAs. We therefore propose to call the genetic material isolated from size-fractionated (0.22 {micro}m) and DNase-treated samples protected environmental DNA (peDNA). This sequence space contains viral genomes, DNA transduced by viruses and DNA transported in EVs and GTAs. Since there is no genetic signature for peDNA transported in EVs, GTAs and virus particles, we rely on the successful removal of contaminating remaining cellular and free DNA when analyzing peDNA. Using marine samples collected from the North Sea, we generated a thoroughly purified peDNA dataset and developed a bioinformatic pipeline to determine the potential origin of the purified DNA. This pipeline was applied to our dataset as well as existing global marine viromes. Through this pipeline, we identified known GTA and EV producers, as well as organisms with actively transducing proviruses as the source of the peDNA, thus confirming the reliability of our approach. Additionally, we identified novel and widespread EV producers, and found quantitative evidence suggesting that EV-mediated gene transfer plays a significant role in driving horizontal gene transfer (HGT) in the worlds oceans.
Source connections
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Luecking, D., Mercier, C., Alarcon-Schumacher, T., Erdmann, S.. 2023-08-07. Extracellular vesicles are the main contributor to the non-viral protected extracellular sequence space. https://doi.org/10.1101/2023.08.07.552246
Cite the original work for its findings. Save a collection to share your selection of sources.