Complex archaea that bridge the gap between prokaryotes and eukaryotes A Spang, JH Saw, SL Jørgensen, K Zaremba-Niedzwiedzka, J Martijn, ... Nature 521 (7551), 173-179, 2015 | 1251 | 2015 |
Asgard archaea illuminate the origin of eukaryotic cellular complexity K Zaremba-Niedzwiedzka, EF Caceres, JH Saw, D Bäckström, ... Nature 541 (7637), 353-358, 2017 | 1055 | 2017 |
Nitrososphaera viennensis, an ammonia oxidizing archaeon from soil M Tourna, M Stieglmeier, A Spang, M Könneke, A Schintlmeister, T Urich, ... Proceedings of the National Academy of Sciences 108 (20), 8420-8425, 2011 | 999 | 2011 |
Distinct gene set in two different lineages of ammonia-oxidizing archaea supports the phylum Thaumarchaeota A Spang, R Hatzenpichler, C Brochier-Armanet, T Rattei, P Tischler, ... Trends in microbiology 18 (8), 331-340, 2010 | 558 | 2010 |
Archaea and the origin of eukaryotes L Eme, A Spang, J Lombard, CW Stairs, TJG Ettema Nature Reviews Microbiology 15 (12), 711-723, 2017 | 533 | 2017 |
Archaea in biogeochemical cycles P Offre, A Spang, C Schleper Annual review of microbiology 67 (1), 437-457, 2013 | 484 | 2013 |
Methylotrophic methanogenic Thermoplasmata implicated in reduced methane emissions from bovine rumen M Poulsen, C Schwab, B Borg Jensen, RM Engberg, A Spang, N Canibe, ... Nature communications 4 (1), 1428, 2013 | 384 | 2013 |
The genome of the ammonia‐oxidizing Candidatus Nitrososphaera gargensis: insights into metabolic versatility and environmental adaptations A Spang, A Poehlein, P Offre, S Zumbrägel, S Haider, N Rychlik, B Nowka, ... Environmental microbiology 14 (12), 3122-3145, 2012 | 347 | 2012 |
Genomic exploration of the diversity, ecology, and evolution of the archaeal domain of life A Spang, EF Caceres, TJG Ettema Science 357 (6351), eaaf3883, 2017 | 283 | 2017 |
Integrative modeling of gene and genome evolution roots the archaeal tree of life TA Williams, GJ Szöllősi, A Spang, PG Foster, SE Heaps, B Boussau, ... Proceedings of the National Academy of Sciences 114 (23), E4602-E4611, 2017 | 234 | 2017 |
Asgard archaea capable of anaerobic hydrocarbon cycling KW Seitz, N Dombrowski, L Eme, A Spang, J Lombard, JR Sieber, ... Nature communications 10 (1), 1822, 2019 | 194 | 2019 |
Genomic diversity, lifestyles and evolutionary origins of DPANN archaea N Dombrowski, JH Lee, TA Williams, P Offre, A Spang FEMS microbiology letters 366 (2), fnz008, 2019 | 174 | 2019 |
Proposal of the reverse flow model for the origin of the eukaryotic cell based on comparative analyses of Asgard archaeal metabolism A Spang, CW Stairs, N Dombrowski, L Eme, J Lombard, EF Caceres, ... Nature microbiology 4 (7), 1138-1148, 2019 | 160 | 2019 |
Roadmap for naming uncultivated Archaea and Bacteria AE Murray, J Freudenstein, S Gribaldo, R Hatzenpichler, P Hugenholtz, ... Nature microbiology 5 (8), 987-994, 2020 | 159 | 2020 |
A rooted phylogeny resolves early bacterial evolution GA Coleman, AA Davín, TA Mahendrarajah, LL Szánthó, A Spang, ... Science 372 (6542), eabe0511, 2021 | 157 | 2021 |
Asgard archaea are the closest prokaryotic relatives of eukaryotes A Spang, L Eme, JH Saw, EF Caceres, K Zaremba-Niedzwiedzka, ... PLoS genetics 14 (3), e1007080, 2018 | 135 | 2018 |
Virus genomes from deep sea sediments expand the ocean megavirome and support independent origins of viral gigantism D Bäckström, N Yutin, SL Jørgensen, J Dharamshi, F Homa, ... MBio 10 (2), 10.1128/mbio. 02497-18, 2019 | 95 | 2019 |
The emergence of life E Camprubi, JW De Leeuw, CH House, F Raulin, MJ Russell, A Spang, ... Space Science Reviews 215 (8), 1-53, 2019 | 85 | 2019 |
Tracing the archaeal origins of eukaryotic membrane-trafficking system building blocks CM Klinger, A Spang, JB Dacks, TJG Ettema Molecular biology and evolution 33 (6), 1528-1541, 2016 | 84 | 2016 |
Variability of the transporter gene complement in ammonia-oxidizing archaea P Offre, M Kerou, A Spang, C Schleper Trends in microbiology 22 (12), 665-675, 2014 | 84 | 2014 |