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^ Ghai, Rohit; Banciu, Horia L.; Keresztes, Zsolt G.; Bulzu, Paul-Adrian; Andrei, Adrian-?tefan; Salcher, Michaela M. (2019-03-17). “Visualization of Loki- and Heimdallarchaeia (Asgardarchaeota) by fluorescence in situ hybridization and catalyzed reporter deposition (CARD-FISH)” (英語). bioRxiv: 580431. doi:10.1101/580431. https://www.biorxiv.org/content/10.1101/580431v1. 
^ a b c Baker, Brett J.; Ettema, Thijs J. G.; Teske, Andreas P.; Sieber, Jessica R.; Lombard, Jonathan; Spang, Anja; Eme, Laura; Dombrowski, Nina et al. (2019-01-24). “New Asgard archaea capable of anaerobic hydrocarbon cycling” (英語). bioRxiv: 527697. doi:10.1101/527697. https://www.biorxiv.org/content/10.1101/527697v2. 
^ Cai, Mingwei; Liu, Yang; Yin, Xiuran; Zhou, Zhichao; Friedrich, Michael W.; Richter-Heitmann, Tim; Nimzyk, Rolf; Kulkarni, Ajinkya et al. (2019-11-29). “Highly diverse Asgard archaea participate in organic matter degradation in coastal sediments” (英語). bioRxiv: 858530. doi:10.1101/858530. https://www.biorxiv.org/content/10.1101/858530v1. 
^ Cai, Mingwei; Liu, Yang; Yin, Xiuran; Zhou, Zhichao; Friedrich, Michael W.; Richter-Heitmann, Tim; Nimzyk, Rolf; Kulkarni, Ajinkya et al. (2020-03-16). “Diverse Asgard archaea including the novel phylum Gerdarchaeota participate in organic matter degradation” (英語). Science China Life Sciences. doi:10.1007/s11427-020-1679-1. ISSN 1869-1889. https://doi.org/10.1007/s11427-020-1679-1. 
^ Yin, Xiuran (2019). Carbon Metabolism of Methylotrophic Methanogens and Asgard Archaea in Marine Sediments. https://elib.suub.uni-bremen.de/peid=D00107459 
^ Caceres, Eva F. (2019). ⇒Genomic and evolutionary exploration of Asgard archaea. ⇒http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-393710
^ a b Farag, Ibrahim; Zhao, Rui; Biddle, Jennifer (2020-10-15). “"Sifarchaeota" a novel Asgard phylum capable of polysaccharide degradation and anaerobic methylotrophy” (英語). bioRxiv: 2020.10.14.339440. doi:10.1101/2020.10.14.339440. https://www.biorxiv.org/content/10.1101/2020.10.14.339440v2. 
^ (英語) Brockarchaeota, a novel archaeal lineage capable of methylotrophy. (2020-07-14). doi:10.21203/rs.3.rs-39998/v1. https://www.researchsquare.com/article/rs-39998/v1. 
^ a b c Liu, Yang; Makarova, Kira S.; Huang, Wen-Cong; Wolf, Yuri I.; Nikolskaya, Anastasia; Zhang, Xinxu; Cai, Mingwei; Zhang, Cui-Jing et al. (2020-10-20). “Expanding diversity of Asgard archaea and the elusive ancestry of eukaryotes” (英語). bioRxiv: 2020.10.19.343400. doi:10.1101/2020.10.19.343400. https://www.biorxiv.org/content/10.1101/2020.10.19.343400v3. 
^ a b c d Imachi, H., Nobu, M. K., Nakahara, N., Morono, Y., Ogawara, M., Takaki, Y., Takano, Y., Uematsu, K., Ikuta, T., Ito, M., Matsui, Y., Miyazaki, M., Murata, K., Saito, Y., Sakai, S., Song, C., Tasumi, E., Yamanaka, Y., Yamaguchi, T., Kamagata, Y., Tamaki, H., Takai, K. (2019). “Isolation of an archaeon at the prokaryote-eukaryote interface” (英語). BioRxiv: 726976. doi:10.1101/726976. https://www.biorxiv.org/content/10.1101/726976v1. 
^ a b c d Zaremba-Niedzwiedzka, Katarzyna; Caceres, Eva F.; Saw, Jimmy H.; Backstrom, Disa; Juzokaite, Lina; Vancaester, Emmelien; Seitz, Kiley W.; Anantharaman, Karthik et al. (11 January 2017). ⇒“Asgard archaea illuminate the origin of eukaryotic cellular complexity” (英語). Nature 541 (7637): 353?358. doi:10.1038/nature21031. ISSN 1476-4687. ⇒http://www.nature.com/articles/nature21031
^ a b c d Lu, Zhongyi; Fu, Ting; Li, Tianyi; Liu, Yang; Zhang, Siyu; Li, Jinquan; Dai, Junbiao; Koonin, Eugene V. et al. (2020-05-06). “Co-evolution of Eukaryotic-like Vps4 and ESCRT-III Subunits in the Asgard Archaea” (英語). bioRxiv: 2020.05.05.080093. doi:10.1101/2020.05.05.080093. https://www.biorxiv.org/content/10.1101/2020.05.05.080093v1. 
^ Williams, Tom A.; Cox, Cymon J.; Foster, Peter G.; Szoll?si, Gergely J.; Embley, T. Martin (2020-01). “Phylogenomics provides robust support for a two-domains tree of life” (英語). Nature Ecology & Evolution 4 (1): 138?147. doi:10.1038/s41559-019-1040-x. ISSN 2397-334X. https://www.nature.com/articles/s41559-019-1040-x. 
^ a b Paul-Adrian Bulzu, Adrian-Stefan Andrei, Michaela M Salcher, Maliheh Mehrshad, Keiichi Inoue, Hideki Kandori, Oded Beja, Rohit Ghai, Horia Banciu (2018). “The sunlit microoxic niche of the archaeal eukaryotic ancestor comes to light”. BioRxiv: 385732. doi:10.1101/385732. https://www.biorxiv.org/content/early/2018/08/06/385732. 
^ a b c d Ak?l, Caner; Robinson, Robert C. (2018-10-03). ⇒“Genomes of Asgard archaea encode profilins that regulate actin” (英語). Nature. doi:10.1038/s41586-018-0548-6. ISSN 0028-0836. ⇒http://www.nature.com/articles/s41586-018-0548-6
^ a b c Ak?l, Caner; Tran, Linh T.; Orhant-Prioux, Magali; Baskaran, Yohendran; Manser, Edward; Blanchoin, Laurent; Robinson, Robert C. (2020-08-18). “Insights into the evolution of regulated actin dynamics via characterization of primitive gelsolin/cofilin proteins from Asgard archaea” (英語). Proceedings of the National Academy of Sciences 117 (33): 19904?19913. doi:10.1073/pnas.2009167117. ISSN 0027-8424. PMID 32747565. https://www.pnas.org/content/117/33/19904. 
^ a b Neveu, Emilie; Khalifeh, Dany; Salamin, Nicolas; Fasshauer, Dirk (2019-10-19). “Prototypic SNARE proteins are encoded in the genomes of Heimdallarchaeota, potentially bridging the gap between the prokaryotes and eukaryotes” (英語). bioRxiv: 810531. doi:10.1101/810531. https://www.biorxiv.org/content/10.1101/810531v2. 
^ a b Stairs, Courtney W.; Ettema, Thijs J. G. (2020-05-18). ⇒“The Archaeal Roots of the Eukaryotic Dynamic Actin Cytoskeleton” (英語). Current Biology 30 (10): R521?R526. doi:10.1016/j.cub.2020.02.074. ISSN 0960-9822. ⇒http://www.sciencedirect.com/science/article/pii/S0960982220302815
^ a b c “Mythical origins of the actin cytoskeleton” (英語). Current Opinion in Cell Biology 68: 55?63. (2021-02-01). doi:10.1016/j.ceb.2020.08.011. ISSN 0955-0674. https://www.sciencedirect.com/science/article/pii/S0955067420301083. 

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