Actin cytoskeleton and complex cellular architecture in an Asgard archaeon

  • Zaremba-Niedzwiedzka, K. et al. Asgard archaea shed light on the origin of eukaryotic cellular complexity. Nature 541353–358 (2017).

    Article ADS CAS Google Scholar

  • Liu, Y. et al. Expanded diversity of Asgard archaea and their relationships with eukaryotes. Nature 593553–557 (2021).

    Article ADS CAS Google Scholar

  • Eme, L., Spang, A., Lombard, J., Stairs, CW & Ettema, TJG Archaea and the origin of eukaryotes. born rev. Microbiol. 15711–723 (2017).

    Article CAS Google Scholar

  • Stairs, CW & Ettema, TJG The archaeological roots of the eukaryotic dynamic actin cytoskeleton. Curr. Biol. 30R521–R526 (2020).

    Article CAS Google Scholar

  • Akıl, C. et al. Mythical origins of the actin cytoskeleton. Curr. Give your opinion. Cell Biol. 6855–63 (2021).

    Article Google Scholar

  • Nobs, SJ, MacLeod, FI, Wong, HL & Burns, BP Eukarya the chimera: eukaryotes, a secondary innovation of the two domains of life? Trends Microbiol. 30421–431 (2022).

    Article CAS Google Scholar

  • Imachi, H. et al. Isolation of an archaeon at the prokaryotic-eukaryotic interface. Nature 577519–525 (2020).

    Article ADS CAS Google Scholar

  • Huet, J., Schnabel, R., Sentenac, A. & Zillig, W. Archaebacteria and eukaryotes possess DNA-dependent RNA polymerases of a common type. EMBO J. 21291–1294 (1983).

    Article CAS Google Scholar

  • Iwabe, N., Kuma, K., Hasegawa, M., Osawa, S., and Miytata, T. Evolutionary relationship of archaebacteria, eubacteria and eukaryotes inferred from phylogenetic trees of duplicated genes. Proc. Natl Acad. Saber USA 869355–9359 (1989).

    Article ADS CAS Google Scholar

  • Spang, A. et al. Complex archaea that bridge the gap between prokaryotes and eukaryotes. Nature 521173–179 (2015).

    Article ADS CAS Google Scholar

  • Sun, J. et al. Stop codon recoding expands the metabolic potential of two new Asgardarchaeota lineages. common ISME 130 (2021).

    Article Google Scholar

  • Seitz, KW, Lazar, CS, Hinrichs, KU, Teske, AP, & Baker, BJ Genomic reconstruction of a new deeply branched sediment archaeal phylum with pathways for acetogenesis and sulfur reduction. ISME J. 101696–1705 (2016).

    Article CAS Google Scholar

  • Seitz, KW et al. Archaea of ​​Asgard capable of anaerobic hydrocarbon cycling. born common 101822 (2019).

    Article ADS Google Scholar

  • Cai, M. et al. Several Asgardian archaea, including the new phylum Gerdarchaeota, participate in the degradation of organic matter. science China Life Science. 63886–897 (2020).

    Article CAS Google Scholar

  • Farag, IF, Zhao, R. & Biddle, JF “Sifarchaeota”, a new Asgard phylum from Costa Rican sediment capable of polysaccharide degradation and anaerobic methylotrophy. Appl. environment Microbiol. 87e02584-20 (2021).

    Article ADS Google Scholar

  • Zhang, JW et al. Newly discovered Asgard archaeal Hermodarchaeota can degrade alkanes and aromatics via the alkyl/benzyl-succinate synthase and benzoyl-CoA pathway. ISME J. 151826–1843 (2021).

    Article CAS Google Scholar

  • Xie, R. et al. The expansion of Asgard members into the Archaea domain sheds new light on the origin of eukaryotes. science China Life Science. 65818–829 (2022).

    Article CAS Google Scholar

  • Bulzu, P.-A. et al. Light on the metabolism of Asgardarchaeota in a sunlit microoxic niche. born Microbiol. 41129–1137 (2019).

    Article CAS Google Scholar

  • Akıl, C. et al. Insights into the evolution of regulated actin dynamics through characterization of primitive gelsolin/cofilin proteins from Asgard archaea. Proc. Natl Acad. Saber USA 11719904–19913 (2020).

    Article ADS Google Scholar

  • Lu, Z. et al. Coevolution of eukaryotic-like Vps4 and ESCRT-III subunits in Asgard archaea. Ecol. evolution science 11e00417-20 (2020).

    Google Scholar

  • Hatano, T. et al. Asgard archaea shed light on the evolutionary origins of the eukaryotic ubiquitin-ESCRT machinery. born common 133398 (2022).

    Article ADS CAS Google Scholar

  • Ettema, TJG, Lindås, AC and Bernander, R. An actin-based cytoskeleton in archaea. Mol. Microbiol. 801052–1061 (2011).

    Article CAS Google Scholar

  • Izoré, T., Kureisaite-Ciziene, D., McLaughlin, SH, and Löwe, J. Crenactin forms actin-like helical double filaments regulated by arcadin-2. eLife 5e21600 (2016).

    Article Google Scholar

  • Akıl, C. and Robinson, RC Genomes of Asgard archaea encode actin-regulating profilins. Nature 562439–443 (2018).

    Article ADS Google Scholar

  • Survey, S. et al. Heimdallarchaea encodes profilin with eukaryotic-like actin regulation and polyproline binding. Commun. Biol. 41024 (2021).

    Article CAS Google Scholar

  • Inturi, R., Lara, S., Derweesh, M. & Chi, CN Structural characterization of a Thorarchaeota profilin indicates eukaryotic-like features but with an extended N-terminus. Adv. Biol. 6e2101323 (2022).

    Article Google Scholar

  • Schleper, C. and Sousa, FL Meet the relatives of our cellular ancestor. Nature 577478–479 (2020).

    Article ADS CAS Google Scholar

  • Baum, DA and Baum, B. An inside-out origin for the eukaryotic cell. BMC Biol. 1276 (2014).

    Article Google Scholar

  • Manoharan, L. et al. Metagenomes of coastal marine sediments provide insights into ecological role and cellular characteristics Loki– i Torracheotes. mBio 10e02039-19 (2019).

    Article Google Scholar

  • Cai, M. et al. Ecological characteristics and global distribution of Asgard archaea. science Total environment 758143581 (2021).

    Article ADS CAS Google Scholar

  • Wu, F. et al. Unique mobile elements and scalable gene flow at the prokaryote-eukaryote boundary revealed by circularized Asgard archaea genomes. born Microbiol. 7200–212 (2022).

    Article CAS Google Scholar

  • Klappenbach, JA, Dunbar, JM and Schmidt, TM rRNA operon copy number reflects bacterial ecological strategies. Appl. environment Microbiol. 661328–1333 (2000).

    Article ADS CAS Google Scholar

  • Roller, BRK, Stoddard, SF and Schmidt, TM Exploitation of rRNA operon copy number to investigate bacterial reproductive strategies. born Microbiol. 116160 (2016).

    Article CAS Google Scholar

  • Luo, C., Rodriguez-R, LM, and Konstantinidis, KT MyTaxa: an advanced taxonomic classifier for genomic and metagenomic sequences. Nucleic acids Res. 42e73 (2014).

    Article CAS Google Scholar

  • Konstantinidis, KT, Rosselló-Móra, R. & Amann, R. Uncultivated microbes in need of their own taxonomy. ISME J. 112399–2406 (2017).

    Article Google Scholar

  • Penev, PI et al. Large ribosomal RNA expansion segments in asgard archaea. Genome Biol. evolution 121694–1710 (2020).

    Article CAS Google Scholar

  • Rosenshine, I., Tchelet, R. & Mevarech, M. The mechanism of DNA transfer in the mating system of an archaebacterium. science 2451387–1389 (1989).

    Article ADS CAS Google Scholar

  • Nickell, S., Hegerl, R., Baumeister, W., and Rachel, R. Pyrodictium cannulas enter the periplasmic space but not the cytoplasm as revealed by cryo-electron tomography. J. Struct. Biol. 14134–42 (2003).

    Article Google Scholar

  • Sivabalasarma, S. et al. Analysis of cell-cell bridges a Haloferax volcanii using cryo-electron tomography reveal a continuous cytoplasm and an S-layer. In front. Microbiol. 11612239 (2021).

    Article Google Scholar

  • Marguet, E. et al. Membrane vesicles, nanopods and/or nanotubes produced by hyperthermophilic archaea of ​​the genus Thermocook. biochemistry I am. Trans. 41436–442 (2013).

    Article CAS Google Scholar

  • Von Der Ecken, J. et al. Structure of the F-actin-tropomyosin complex. Nature 519114–117 (2015).

    Article ADS Google Scholar

  • Yutin, N., Wolf, MY, Wolf, YI, and Koonin, EV The origins of phagocytosis and eukaryogenesis. Biol. direct 49 (2009).

    Article Google Scholar

  • Bernander, R., Lind, AE and Ettema, TJG An archaeal origin of the actin cytoskeleton: implications for eukaryogenesis. Commun. integr. Biol. 4664–667 (2011).

    Article CAS Google Scholar

  • Van den Ent, F., Amos, LA & Löwe, J. Prokaryotic origin of the actin…

  • Leave a Comment

    Your email address will not be published. Required fields are marked *