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bioRxiv · 10.1101/2021.07.02.450908

RAFFT: Efficient prediction of RNA folding pathways using the fast Fourier transform

Abstract

We propose a novel heuristic to predict RNA secondary structure formation pathways that has two components: (i) a folding algorithm and (ii) a kinetic ansatz. This heuristic is inspired by the kinetic partitioning mechanism, by which molecules follow alternative folding pathways to their native structure, some much faster than others. Similarly, our algorithm RAFFT starts by generating an ensemble of concurrent folding pathways ending in multiple metastable structures, which is in contrast with traditional thermodynamic approaches that find single structures with minimal free energies. When we constrained the algorithm to predict only 50 structures per sequence, nearnative structures were found for RNA molecules of length [≤] 200 nucleotides. Our heuristic has been tested on the coronavirus frameshifting stimulation element (CFSE): an ensemble of 68 distinct structures allowed us to produce complete folding kinetic trajectories, whereas known methods require evaluating millions of sub-optimal structures to achieve this result. Thanks to the fast Fourier transform on which RAFFT is based, these computations are efficient, with complexity [O](L2 log L).

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BibTeXRIS

opuu, v., Nono Saha, C. M., Smerlak, M.. 2021-07-04. RAFFT: Efficient prediction of RNA folding pathways using the fast Fourier transform. https://doi.org/10.1101/2021.07.02.450908

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