Heat flows enrich prebiotic building blocks and enhance their reactivity.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 38570715.
- Also identified by DOI 10.1038/s41586-024-07193-7 and PMC identifier 10990939.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
The emergence of biopolymer building blocks is a crucial step during the origins of life<sup>1-6</sup>. However, all known formation pathways rely on rare pure feedstocks and demand successive purification and mixing steps to suppress unwanted side reactions and enable high product yields. Here we show that heat flows through thin, crack-like geo-compartments could have provided a widely available yet selective mechanism that separates more than 50 prebiotically relevant building blocks from complex mixtures of amino acids, nucleobases, nucleotides, polyphosphates and 2-aminoazoles. Using measured thermophoretic properties<sup>7,8</sup>, we numerically model and experimentally prove the advantageous effect of geological networks of interconnected cracks<sup>9,10</sup> that purify the previously mixed compounds, boosting their concentration ratios by up to three orders of magnitude. The importance for prebiotic chemistry is shown by the dimerization of glycine<sup>11,12</sup>, in which the selective purification of trimetaphosphate (TMP)<sup>13,14</sup> increased reaction yields by five orders of magnitude. The observed effect is robust under various crack sizes, pH values, solvents and temperatures. Our results demonstrate how geologically driven non-equilibria could have explored highly parallelized reaction conditions to foster prebiotic chemistry.
Medical subject headings
- Biopolymers
- Evolution, Chemical
- Hot Temperature
- Origin of Life