division // Science 302: 618–622 (2003).

Mauer, S. E., and P. A. Monndard Primitive membrane formation, characteristics and roles in the emergent properties of a protocell // Entropy 13: 466–484 (2011).

Szathmary, E., Santos, M., and C. Fernando Evolutionary potential and requirements for minimal protocells // Topics in Current Chemistry 259: 167–211 (2005).

Возникновение репликации

Cairns-Smith, G. Seven Clues to the Origin of Life. Cambridge University Press, Cambridge (1990).

Costanzo, G., Pino, S., Ciciriello, F., and E. Di Mauro Generation of long RNA chains in water // Journal of Biological Chemistry 284: 33206–33216 (2009).

Koonin, E. V., and W. Martin On the origin of genomes and cells within inorganic compartments // Trends in Genetics 21: 647–654 (2005).

Mast, C. B., Schink, S., Gerland, U., and D. Braun Escalation of polymerization in a thermal gradient // Proceedings of the National Academy of Sciences USA 110: 8030–8035 (2013).

Mills, D. R., Peterson, R. L., and S. Spiegelman An extracellular Darwinian experiment with a self-duplicating nucleic acid molecule // Proceedings National Academy Sciences USA 58: 217–224 (1967).

Открытие глубоководных гидротермальных источников

Baross, J. A., and S. E. Hoffman Submarine hydrothermal vents and associated gradient environments as sites for the origin and evolution of life // Origins Life Evolution of the Biosphere 15: 327–345 (1985).

Kelley, D. S., Karson, J. A., Blackman, D. K., et al. An off-axis hydrothermal vent field near the Mid-Atlantic Ridge at 30 degrees N. // Nature 412: 145–149 (2001).

Kelley, D. S., Karson, J. A., Fruh-Green, G. L., et al. A serpentinite-hosted submarine ecosystem: the Lost City Hydrothermal Field // Science 307: 1428–1434 (2005).

Пиритный пуллинг и железосерный мир

Duve, C. de, and S. Miller Two-dimensional life? // Proceedings National Academy Sciences USA 88: 10014–10017 (1991).

Huber, C., and G. Wactershauser Activated acetic acid by carbon fixation on (Fe,Ni)S under primordial conditions // Science 276: 245–247 (1997).

Miller, S. L., and J. L. Bada Submarine hot springs and the origin of life // Nature 334: 609–611 (1988).

Wactershauser, G. Evolution of the first metabolic cycles // Proceedings National Academy Sciences USA 87: 200–204 (1990).

Wactershauser, G. From volcanic origins of chemoautotrophic life to Bacteria, Archaea and Eukarya // Phil. Trans. R. Soc. B 361: 1787–1806 (2006).

Щелочные гидротермальные источники

Martin, W., Baross, J., Kelley, D., and M. J. Russell Hydrothermal vents and the origin of life // Nature Reviews Microbiology 6: 805–814 (2008).

Martin, W., and M. J. Russell On the origins of cells: a hypothesis for the evolutionary transitions from abiotic geochemistry to chemoautotrophic prokaryotes, and from prokaryotes to nucleated cells // Phil. Trans. R. Soc. B 358: 59–83 (2003).

Russell, M. J., Daniel, R. M., Hall, A. J., and J. Sherringham A hydrothermally precipitated catalytic iron sulphide membrane as a first step toward life // Journal of Molecular Evolution 39: 231–243 (1994).

Russell, M. J., Hall, A. J., Cairns-Smith, A. G., and P. S. Braterman Submarine hot springs and the origin of life // Nature 336: 117 (1988).

Russell, M. J., and A. J. Hall The emergence of life from iron monosulphide bubbles at a submarine hydrothermal redox and pH front // Journal Geological Society London 154: 377–402 (1997).

Серпентинизация

Fyfe, W. S. The water inventory of the Earth: fluids and tectonics // Geological Society of London Special Publications 78: 1–7 (1994).

Russell, M. J., Hall, A. J., and W. Martin Serpentinization as a source of energy at the origin of life // Geobiology 8: 355–371 (2010).

Sleep, N. H., Bird, D. K., and E. C. Pope Serpentinite and the dawn of life // Phil. Trans. R. Soc. B 366: 2857–2869

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