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Actin cytoskeleton and complex cell architecture in an Asgard archaeon

Author

Listed:
  • Thiago Rodrigues-Oliveira

    (University of Vienna)

  • Florian Wollweber

    (ETH Zürich)

  • Rafael I. Ponce-Toledo

    (University of Vienna)

  • Jingwei Xu

    (ETH Zürich)

  • Simon K.-M. R. Rittmann

    (University of Vienna)

  • Andreas Klingl

    (Biocenter, Ludwig-Maximilans-Universität München)

  • Martin Pilhofer

    (ETH Zürich)

  • Christa Schleper

    (University of Vienna)

Abstract

Asgard archaea are considered to be the closest known relatives of eukaryotes. Their genomes contain hundreds of eukaryotic signature proteins (ESPs), which inspired hypotheses on the evolution of the eukaryotic cell1–3. A role of ESPs in the formation of an elaborate cytoskeleton and complex cellular structures has been postulated4–6, but never visualized. Here we describe a highly enriched culture of ‘Candidatus Lokiarchaeum ossiferum’, a member of the Asgard phylum, which thrives anaerobically at 20 °C on organic carbon sources. It divides every 7–14 days, reaches cell densities of up to 5 × 107 cells per ml and has a significantly larger genome compared with the single previously cultivated Asgard strain7. ESPs represent 5% of its protein-coding genes, including four actin homologues. We imaged the enrichment culture using cryo-electron tomography, identifying ‘Ca. L. ossiferum’ cells on the basis of characteristic expansion segments of their ribosomes. Cells exhibited coccoid cell bodies and a network of branched protrusions with frequent constrictions. The cell envelope consists of a single membrane and complex surface structures. A long-range cytoskeleton extends throughout the cell bodies, protrusions and constrictions. The twisted double-stranded architecture of the filaments is consistent with F-actin. Immunostaining indicates that the filaments comprise Lokiactin—one of the most highly conserved ESPs in Asgard archaea. We propose that a complex actin-based cytoskeleton predated the emergence of the first eukaryotes and was a crucial feature in the evolution of the Asgard phylum by scaffolding elaborate cellular structures.

Suggested Citation

  • Thiago Rodrigues-Oliveira & Florian Wollweber & Rafael I. Ponce-Toledo & Jingwei Xu & Simon K.-M. R. Rittmann & Andreas Klingl & Martin Pilhofer & Christa Schleper, 2023. "Actin cytoskeleton and complex cell architecture in an Asgard archaeon," Nature, Nature, vol. 613(7943), pages 332-339, January.
  • Handle: RePEc:nat:nature:v:613:y:2023:i:7943:d:10.1038_s41586-022-05550-y
    DOI: 10.1038/s41586-022-05550-y
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    Cited by:

    1. Luis E. Valentin-Alvarado & Kathryn E. Appler & Valerie Anda & Marie C. Schoelmerich & Jacob West-Roberts & Veronika Kivenson & Alexander Crits-Christoph & Lynn Ly & Rohan Sachdeva & Chris Greening & , 2024. "Asgard archaea modulate potential methanogenesis substrates in wetland soil," Nature Communications, Nature, vol. 15(1), pages 1-16, December.
    2. Yanan Li & Ting Yu & Xi Feng & Bo Zhao & Huahui Chen & Huan Yang & Xing Chen & Xiao-Hua Zhang & Hayden R. Anderson & Noah Z. Burns & Fuxing Zeng & Lizhi Tao & Zhirui Zeng, 2024. "Biosynthesis of GMGT lipids by a radical SAM enzyme associated with anaerobic archaea and oxygen-deficient environments," Nature Communications, Nature, vol. 15(1), pages 1-9, December.
    3. Heather Schiller & Yirui Hong & Joshua Kouassi & Theopi Rados & Jasmin Kwak & Anthony DiLucido & Daniel Safer & Anita Marchfelder & Friedhelm Pfeiffer & Alexandre Bisson & Stefan Schulze & Mechthild P, 2024. "Identification of structural and regulatory cell-shape determinants in Haloferax volcanii," Nature Communications, Nature, vol. 15(1), pages 1-15, December.

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