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Biology subjects

Attwater, J.

Publications and source records attributed to Attwater, J..

2 recordsLinked to original sources

Trinucleotide building blocks enable exponential ribozyme-catalysed RNA replication and open-ended growth of diverse RNA sequence pools

RNA replication is considered a crucial stage in the origins of life. However, both enzymatic and non-enzymatic RNA replication cycles are impeded by the "strand separation problem" (SSP), a form of product inhibition arising from the extraordinary stability of RNA duplexes and their rapid kinetics of reannealing. Here we show that RNA trinucleotide triphosphates (triplets) can overcome the SSP by binding to and kinetically trapping dissociated RNA strands in a single-stranded form, while simultaneously serving as substrates for RNA replication by a triplet polymerase ribozyme (TPR). This enabled exponential replication of both (+) and (-) strands of double-stranded RNAs by the TPR when driven by coupled pH and freeze-thaw cycles. We demonstrate replication of a fragment of the ribozyme itself, and open-ended amplification of random RNA sequence pools over >70 cycles, with emergence of partial, distributive TPR self-replication and triplet codon drift towards a primordial genetic code. One-sentence summaryRNA trinucleotide substrates together with simple physicochemical cycles enable RNA-catalysed replication of double-stranded RNA and partial, distributive self-replication of an RNA polymerase ribozyme.

molecular biology↗

Cryo-EM structure and functional landscape of an RNA polymerase ribozyme

The emergence of an RNA replicase capable of self-replication is considered an important stage in the origin of life. RNA polymerase ribozymes (PR) including a variant that uses trinucleotide triphosphates (triplets) as substrates have been created by in vitro evolution and are the closest functional analogues of the replicase but the structural basis for their function is poorly understood. Here, we leverage single-particle cryo-EM and high-throughput mutation analysis to obtain the structure of a triplet polymerase ribozyme (TPR) apoenzyme and map its functional landscape. The TPR cryo-EM structure at 5-[A] resolution reveals an RNA heterodimer comprising a catalytic and an inactive accessory subunit, where the complex resembles a left hand with thumb and fingers at a 70{degrees} angle. The two subunits are connected by two distinct kissing-loop (KL) interactions that are essential for polymerase function. Our combined structural and functional data suggest a model for templated RNA synthesis by the TPR holoenzyme whereby heterodimer formation and KL interactions preorganize the TPR for optimal template binding and templated RNA synthesis activity. These results provide a foundation for a better understanding RNAs potential for self-replication.

biochemistry↗