Emergence of Life on Earth: A Physicochemical Jigsaw Puzzle

被引:0
作者
Jan Spitzer
机构
[1] Mallard Creek Polymers,Research and Development Department
[2] Inc.,undefined
来源
Journal of Molecular Evolution | 2017年 / 84卷
关键词
Earth–Moon system; Cyclic environments; Colloidal phase separations; Confinement; Macromolecular crowding; Non-covalent molecular forces; Progenotes; Emergence; Life;
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摘要
We review physicochemical factors and processes that describe how cellular life can emerge from prebiotic chemical matter; they are: (1) prebiotic Earth is a multicomponent and multiphase reservoir of chemical compounds, to which (2) Earth–Moon rotations deliver two kinds of regular cycling energies: diurnal electromagnetic radiation and seawater tides. (3) Emerging colloidal phases cyclically nucleate and agglomerate in seawater and consolidate as geochemical sediments in tidal zones, creating a matrix of microspaces. (4) Some microspaces persist and retain memory from past cycles, and others re-dissolve and re-disperse back into the Earth’s chemical reservoir. (5) Proto-metabolites and proto-biopolymers coevolve with and within persisting microspaces, where (6) Macromolecular crowding and other non-covalent molecular forces govern the evolution of hydrophilic, hydrophobic, and charged molecular surfaces. (7) The matrices of microspaces evolve into proto-biofilms of progenotes with rudimentary but evolving replication, transcription, and translation, enclosed in unstable cell envelopes. (8) Stabilization of cell envelopes ‘crystallizes’ bacteria-like genetics and metabolism with low horizontal gene transfer—life ‘as we know it.’ These factors and processes constitute the ‘working pieces’ of the jigsaw puzzle of life’s emergence. They extend the concept of progenotes as the first proto-cellular life, connected backward in time to the cycling chemistries of the Earth–Moon planetary system, and forward to the ancient cell cycle of first bacteria-like organisms. Supra-macromolecular models of ‘compartments first’ are preferred: they facilitate macromolecular crowding—a key abiotic/biotic transition toward living states. Evolutionary models of metabolism or genetics ‘first’ could not have evolved in unconfined and uncrowded environments because of the diffusional drift to disorder mandated by the second law of thermodynamics.
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页数:6
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共 162 条
[1]  
Benner SA(2012)Asphalt, water, and the prebiotic synthesis of ribose, ribonucleosides, and RNA Acc Chem Res 45 2025-2034
[2]  
Kim H-J(2015)The ribosome challenge to the RNA world J Mol Evol 80 143-161
[3]  
Carrigan MA(2001)Obcells as proto-organisms: membrane heredity, lithophosphorylation and the origins of the genetic code, the first cells, and photosynthesis J Mol Evol 53 555-595
[4]  
Bowman JC(2015)Coupled phases and combinatorial selection in fluctuating hydrothermal pools: a scenario to guide experimental approaches to the origin of cellular life Life 5 872-887
[5]  
Hud NV(1999)Phylogenetic classification and the universal tree Science 284 2124-2128
[6]  
Williams LD(2001)Macromolecular crowding-obvious but underappreciated Trends Biochem Sci 26 597-604
[7]  
Cavalier-Smith T(1999)Chemical etiology of nucleic acid structure Science 284 2118-2124
[8]  
Damer B(2007)The search for the chemistry of life’s origin Tetrahedron 63 2821-12844
[9]  
Deamer D(2015)Ancient horizontal gene transfer and the last common ancestors BMC Evol Biol 15 70-741
[10]  
Doolittle WF(1953)Molecular configuration in sodium thymonucleate Nature 171 740-618