bioRxiv · 10.1101/2023.08.31.555713
De novo assembled single-cell transcriptomes from aquatic phytoflagellates reveal a metabolically distinct cell population
Abstract
Single-cell transcriptomics is a vital tool for unraveling metabolism and tissue diversity in model organisms. Its potential for elucidating the ecological roles of microeukaryotes, especially non-model ones, remains largely unexplored. This study employed the Smart-seq2 protocol on Ochromonas triangulata, a microeukaryote lacking a reference genome, showcasing how transcriptional states align with growth phases. Unexpectedly, a third transcriptional state was identified, across both growth phases. Metabolic mapping revealed a down-regulation trend in pathways associated with ribosome functioning, CO2 fixation, and carbohydrate catabolism from fast to slow growth to the third transcriptional state. Using carry-over rRNA reads, taxonomic identity of Ochromonas triangulata was re-confirmed and distinct bacterial communities associated with transcriptional states were identified. This study underscores single-cell transcriptomics as a powerful tool for characterizing metabolic states in microeukaryotes without a reference genome, offering insights into unknown physiological states and individual-level interactions with different bacterial taxa. This approach holds broad applicability for uncovering ecological roles, surpassing alternative methods like metagenomics or metatranscriptomics.
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Jeevannavar, A., Florenza, J., Divne, A.-M., Tamminen, M., Bertilsson, S.. 2023-08-31. De novo assembled single-cell transcriptomes from aquatic phytoflagellates reveal a metabolically distinct cell population. https://doi.org/10.1101/2023.08.31.555713
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