Acid-Catalyzed RNA-Oligomerization from 3',5'-cGMP
Sreekar Wunnava1, Christina F Dirscherl1, Jakub Výravský2,3
1Department of Physics, NanoSystems Initiative Munich and Center for Nanoscience, Ludwig-Maximilians-Universität München, Amalienstrasse 54, 80799, Munich, Germany.
Chemistry (Weinheim an Der Bergstrasse, Germany)
|November 2, 2021
Summary
Dry polymerization of cyclic guanosine monophosphate (cGMP) can form oligonucleotides. Cations do not hinder this process if the reaction occurs in an acidic environment, suggesting geological relevance for prebiotic chemistry.
Area of Science:
- Astrobiology
- Prebiotic Chemistry
- Origin of Life Studies
Background:
- The formation of informational polymers from nucleotide precursors is crucial for understanding the origin of life.
- Dry polymerization of 3',5'-cyclic guanosine monophosphate (3',5'-cGMP) has been proposed as a method for synthesizing oligonucleotides.
- Previous studies indicated that cation presence negatively impacts this polymerization, questioning its geological applicability.
Purpose of the Study:
- To investigate the influence of cations on the dry polymerization of 3',5'-cGMP.
- To determine the optimal environmental conditions (pH) for cation-tolerant oligonucleotide synthesis.
- To assess the geological relevance of 3',5'-cGMP polymerization for the origin of life.
Main Methods:
- Experimental investigation of 3',5'-cGMP dry polymerization under varying cation concentrations.
- Systematic analysis of reaction outcomes across a range of pH conditions, focusing on acidic environments.
- Comparison of experimental results with previous findings on cation sensitivity and pH optima.
Main Results:
- The dry polymerization of 3',5'-cGMP to form oligonucleotides (15-20 units) is feasible.
- Contrary to previous reports, the presence of cations does not restrict the reaction.
- Acidic conditions (low pH) permit cation-inclusive polymerization, whereas previous work suggested alkaline conditions (pH 9).
Conclusions:
- The dry polymerization of 3',5'-cGMP is a viable pathway for prebiotic oligonucleotide synthesis.
- The reaction's tolerance to cations in acidic environments enhances its potential relevance to early Earth geology.
- This finding broadens the scope of plausible chemical pathways for the origin of life.
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