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Archaea and the Origin of Eukaryotes

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Date 2017 Nov 11
PMID 29123225
Citations 184
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Abstract

Woese and Fox's 1977 paper on the discovery of the Archaea triggered a revolution in the field of evolutionary biology by showing that life was divided into not only prokaryotes and eukaryotes. Rather, they revealed that prokaryotes comprise two distinct types of organisms, the Bacteria and the Archaea. In subsequent years, molecular phylogenetic analyses indicated that eukaryotes and the Archaea represent sister groups in the tree of life. During the genomic era, it became evident that eukaryotic cells possess a mixture of archaeal and bacterial features in addition to eukaryotic-specific features. Although it has been generally accepted for some time that mitochondria descend from endosymbiotic alphaproteobacteria, the precise evolutionary relationship between eukaryotes and archaea has continued to be a subject of debate. In this Review, we outline a brief history of the changing shape of the tree of life and examine how the recent discovery of a myriad of diverse archaeal lineages has changed our understanding of the evolutionary relationships between the three domains of life and the origin of eukaryotes. Furthermore, we revisit central questions regarding the process of eukaryogenesis and discuss what can currently be inferred about the evolutionary transition from the first to the last eukaryotic common ancestor.

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References
1.
Lindas A, Karlsson E, Lindgren M, Ettema T, Bernander R . A unique cell division machinery in the Archaea. Proc Natl Acad Sci U S A. 2008; 105(48):18942-6. PMC: 2596248. DOI: 10.1073/pnas.0809467105. View

2.
Eme L, Gentekaki E, Curtis B, Archibald J, Roger A . Lateral Gene Transfer in the Adaptation of the Anaerobic Parasite Blastocystis to the Gut. Curr Biol. 2017; 27(6):807-820. DOI: 10.1016/j.cub.2017.02.003. View

3.
Rivera M, Lake J . Evidence that eukaryotes and eocyte prokaryotes are immediate relatives. Science. 1992; 257(5066):74-6. DOI: 10.1126/science.1621096. View

4.
Bapteste E, Gribaldo S . The genome reduction hypothesis and the phylogeny of eukaryotes. Trends Genet. 2003; 19(12):696-700. DOI: 10.1016/j.tig.2003.10.004. View

5.
Eme L, Reigstad L, Spang A, Lanzen A, Weinmaier T, Rattei T . Metagenomics of Kamchatkan hot spring filaments reveal two new major (hyper)thermophilic lineages related to Thaumarchaeota. Res Microbiol. 2013; 164(5):425-38. DOI: 10.1016/j.resmic.2013.02.006. View