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Asgard archaea shed light on the evolutionary origins of the eukaryotic ubiquitin-ESCRT machinery

  • Tomoyuki Hatano
  • , Saravanan Palani
  • , Dimitra Papatziamou
  • , Ralf Salzer
  • , Diorge P. Souza
  • , Daniel Tamarit
  • , Mehul Makwana
  • , Antonia Potter
  • , Alexandra Haig
  • , Wenjue Xu
  • , David Townsend
  • , David Rochester
  • , Dom Bellini
  • , Hamdi M. A. Hussain
  • , Thijs J. G. Ettema
  • , Jan Löwe
  • , Buzz Baum
  • , Nicholas P. Robinson
  • , Mohan Balasubramanian
  • grid.7372.1 0000 0000 8809 1613 Centre for Mechanochemical Cell Biology, Division of Biomedical Sciences, Warwick Medical School University of Warwick CV4 7AL Coventry UK
  • grid.7372.1 0000 0000 8809 1613 Centre for Mechanochemical Cell Biology, Division of Biomedical Sciences, Warwick Medical School University of Warwick CV4 7AL Coventry UK; grid.34980.36 0000 0001 0482 5067 Department of Biochemistry Indian Institute of Science Bangalore India
  • grid.42475.30 0000 0004 0605 769X MRC Laboratory of Molecular Biology CB2 0QH Cambridge UK
  • grid.4818.5 0000 0001 0791 5666 Laboratory of Microbiology Wageningen University 6708 WE Wageningen The Netherlands; grid.6341.0 0000 0000 8578 2742 Department of Aquatic Sciences and Assessment Swedish University of Agricultural Sciences SE-75007 Uppsala Sweden
  • grid.4818.5 0000 0001 0791 5666 Laboratory of Microbiology Wageningen University 6708 WE Wageningen The Netherlands
  • Lancaster University, Department of Biomedical and Life Sciences, Lancaster, LA1 4YW, UK, GRID: grid.9835.7, ISNI: 0000 0000 8190 6402

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Abstract

The ESCRT machinery, comprising of multiple proteins and subcomplexes, is crucial for membrane remodelling in eukaryotic cells, in processes that include ubiquitin-mediated multivesicular body formation, membrane repair, cytokinetic abscission, and virus exit from host cells. This ESCRT system appears to have simpler, ancient origins, since many archaeal species possess homologues of ESCRT-III and Vps4, the components that execute the final membrane scission reaction, where they have been shown to play roles in cytokinesis, extracellular vesicle formation and viral egress. Remarkably, metagenome assemblies of Asgard archaea, the closest known living relatives of eukaryotes, were recently shown to encode homologues of the entire cascade involved in ubiquitin-mediated membrane remodelling, including ubiquitin itself, components of the ESCRT-I and ESCRT-II subcomplexes, and ESCRT-III and Vps4. Here, we explore the phylogeny, structure, and biochemistry of Asgard homologues of the ESCRT machinery and the associated ubiquitylation system. We provide evidence for the ESCRT-I and ESCRT-II subcomplexes being involved in ubiquitin-directed recruitment of ESCRT-III, as it is in eukaryotes. Taken together, our analyses suggest a pre-eukaryotic origin for the ubiquitin-coupled ESCRT system and a likely path of ESCRT evolution via a series of gene duplication and diversification events.
Original languageEnglish
Article number3398
Number of pages16
JournalNature Communications
Volume13
Issue number1
DOIs
Publication statusPublished - 13/06/2022

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