Synthesis of long prebiotic oligomers on mineral surfaces
- 1 May 1996
- journal article
- Published by Springer Nature in Nature
- Vol. 381 (6577), 59-61
- https://doi.org/10.1038/381059a0
Abstract
Most theories of the origin of biological organization assume that polymers with lengths in the range of 30-60 monomers are needed to make a genetic system viable. But it has not proved possible to synthesize plausibly prebiotic polymers this long by condensation in aqueous solution, because hydrolysis competes with polymerization. The potential of mineral surfaces to facilitate prebiotic polymerization was pointed out long ago. Here we describe a system that models prebiotic polymerization by the oligomerization of activated monomers--both nucleotides and amino acids. We find that whereas the reactions in solution produce only short oligomers (the longest typically being a 10-mer), the presence of mineral surfaces (montmorillonite for nucleotides, illite and hydroxylapatite for amino acids) induces the formation of oligomers up to 55 monomers long. These are formed by successive 'feedings' with the monomers; polymerization takes place on the mineral surfaces in a manner akin to solid-phase synthesis of biopolymers.Keywords
This publication has 7 references indexed in Scilit:
- Kinetic and Mechanistic Analysis of Dinucleotide and Oligonucleotide Formation from the 5'-Phosphorimidazolide of Adenosine on Na+-MontmorilloniteJournal of the American Chemical Society, 1994
- Montmorillonite catalysis of RNA oligomer formation in aqueous solution. A model for the prebiotic formation of RNAJournal of the American Chemical Society, 1993
- The binding and reactions of nucleotides and polynucleotides on iron oxide hydroxide polymorphsOrigins of Life and Evolution of Biospheres, 1993
- Template-directed oligonucleotide ligation on hydroxylapatiteNature, 1986
- Template-directed polynucleotide synthesis on mineral surfacesJournal of Molecular Evolution, 1985
- Template-directed synthesis and selective adsorption of oligoadenylates on hydroxyapatiteJournal of Molecular Evolution, 1980
- N,N′-carbonyldiimidazole-induced peptide formation in aqueous solutionBiochimica et Biophysica Acta (BBA) - Protein Structure, 1976