paper

Universal Cold RNA Phase Transitions

arXiv:2403.15352

Abstract

RNA's diversity of structures and functions impacts all life forms since primordia. We use calorimetric force spectroscopy to investigate RNA folding landscapes in previously unexplored low-temperature conditions. We find that Watson-Crick RNA hairpins, the most basic secondary structure elements, undergo a glass-like transition below C where the heat capacity abruptly changes and the RNA folds into a diversity of misfolded structures. We hypothesize that an altered RNA biochemistry, determined by sequence-independent ribose-water interactions, outweighs sequence-dependent base pairing. The ubiquitous ribose-water interactions lead to universal RNA phase transitions below , such as maximum stability at C where water density is maximum, and cold denaturation at C. RNA cold biochemistry may have a profound impact on RNA function and evolution.

Main: 21 pages, 5 figures. Supplementary Info: 29 pages, 10 figures, 6 tables