Светлый фон

Javaux E. J., Knoll A. H. (2017) Micropalaeontology of the lower Mesoproterozoic Roper Group, Australia, and implications for early eukaryotic evolution. Journal of Paleontology, 91, 199–229.

Journal of Paleontology

Knoll A. H. (2014) Paleobiological perspectives on early eukaryotic evolution. Cold Spring Harbor Perspective Biology, 6, a016121. DOI: 10.1101/cshperspect.a016121.

Cold Spring Harbor Perspective Biology

Knoll A. H., Javaux E. J., Hewitt D., Cohen P. (2006) Eukaryotic organisms in Proterozoic oceans. Philosophical Transactions of the Royal Society of London B: Biological Sciences, 361, 1023–38.

Philosophical Transactions of the Royal Society of London B: Biological Sciences,

Ku C. et al. (2015) Endosymbiotic gene transfer from prokaryotic pangenomes: Inherited chimerism in eukaryotes. Proceedings of the National Academy of Sciences of the USA, 112, 10139–46.

et al. Proceedings of the National Academy of Sciences of the USA

Kurland C. G., Andersson S. G. E. (2000) Origin and evolution of the mitochondrial proteome. Microbiology and Molecular Biology Review, 64, 786–820.

Microbiology and Molecular Biology Review,

Lahr D. J. G. et al. (2019) Phylogenomics and morphological reconstruction of Arcellinida testate amoebae highlight diversity of microbial eukaryotes in the Neoproterozoic. Current Biology, 29, 1–11. DOI: 10.1016/j.cub.2019.01.078.

et al Current Biology

Lane N. (2017) Singular endosymbiosis or singular event at the origin of eukaryotes? Journal of Theoretical Biology, 434, 58–67.

Journal of Theoretical Biology

Leonard G. et al. (2018) Comparative genomic analysis of the ‘pseudofungus’ Hyphochytrium catenoides. Open Biology, 8, 170184. DOI: 10.1098/rsob.170184.

et al. Hyphochytrium catenoides. Open Biology

López-García P., Moreira D. (2020) The Syntrophy hypothesis for the origin of eukaryotes revisited. Nature Microbiology, 5, 655–67.