Untemplated nonenzymatic polymerization of 3',5'cGMP: a plausible route to 3',5'-linked oligonucleotides in primordia
Jazyk angličtina Země Spojené státy americké Médium print-electronic
Typ dokumentu časopisecké články, práce podpořená grantem
PubMed
25625780
DOI
10.1021/acs.jpcb.5b00601
Knihovny.cz E-zdroje
- MeSH
- biologická evoluce MeSH
- chemické modely MeSH
- chlorid sodný chemie MeSH
- guanosinmonofosfát cyklický chemie MeSH
- kationty chemie MeSH
- kvantová teorie MeSH
- oligonukleotidy chemie MeSH
- polymerizace * MeSH
- rozpouštědla chemie MeSH
- roztoky MeSH
- spektrometrie hmotnostní - ionizace laserem za účasti matrice MeSH
- teplota MeSH
- voda chemie MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
- Názvy látek
- chlorid sodný MeSH
- guanosinmonofosfát cyklický MeSH
- kationty MeSH
- oligonukleotidy MeSH
- rozpouštědla MeSH
- roztoky MeSH
- voda MeSH
The high-energy 3',5' phosphodiester linkages conserved in 3',5' cyclic GMPs offer a genuine solution for monomer activation required by the transphosphorylation reactions that could lead to the emergence of the first simple oligonucleotide sequences on the early Earth. In this work we provide an in-depth characterization of the effect of the reaction conditions on the yield of the polymerization reaction of 3',5' cyclic GMPs both in aqueous environment as well as under dehydrating conditions. We show that the threshold temperature of the polymerization is about 30 °C lower under dehydrating conditions than in solution. In addition, we present a plausible exergonic reaction pathway for the polymerization reaction, which involves transient formation of anionic centers at the O3' positions of the participating riboses. We suggest that excess Na(+) cations inhibit the polymerization reaction because they block the anionic mechanism via neutralizing the negatively charged O3'. Our experimental findings are compatible with a prebiotic scenario, where gradual desiccation of the environment could induce polymerization of 3',5' cyclic GMPs synthesized in liquid.
Citace poskytuje Crossref.org
Crystallization as a selection force at the polymerization of nucleotides in a prebiotic context
Acid-Catalyzed RNA-Oligomerization from 3',5'-cGMP
Rewarming the Primordial Soup: Revisitations and Rediscoveries in Prebiotic Chemistry
Non-Enzymatic Oligomerization of 3', 5' Cyclic AMP
Four Ways to Oligonucleotides Without Phosphoimidazolides