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Updated: Sep 20, 2025

Chemical Triphosphorylation of Oligonucleotides
Published on: June 2, 2022
Trinucleotide substrates under pH-freeze-thaw cycles enable open-ended exponential RNA replication by a polymerase
James Attwater1,2, Teresa L Augustin3,4,5,6, Joseph F Curran3,7
1MRC Laboratory of Molecular Biology, Cambridge Biomedical Campus, Cambridge, UK. j.attwater@ucl.ac.uk.
None:
RNA replication is considered a key process in the origins of life. However, both enzymatic and non-enzymatic RNA replication cycles are impeded by the 'strand separation problem', a form of product inhibition arising from the extraordinary stability of RNA duplexes and their rapid reannealing kinetics. Here we show that RNA trinucleotide triphosphates can overcome this problem by binding to and kinetically trapping dissociated RNA strands in a single-stranded form, while simultaneously serving as substrates for replication by an RNA polymerase ribozyme. When combined with coupled pH and freeze-thaw cycles, this enabled exponential replication of both (+) and (-) strands of double-stranded RNAs, including a fragment of the ribozyme itself. Subjecting random RNA sequence pools to open-ended replication yielded either defined replicating RNA sequences or the gradual emergence of diverse sequence pools. The latter derived from partial ribozyme self-replication alongside generation of new RNA sequences, and their composition drifted towards hypothesized primordial codons. These results unlock broader opportunities to model primordial RNA replication.
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