Aug 2026· Journal of Chemical Physics· Vol 165 5· 0 citations· 54 references
Medicine
TL;DR
It is illustrated that dynamic association/dissociation is energetically more favorable for folded RNA hairpins, and the presence of additional salt in solution assists the formation of dense droplet like associated phases, while ionic concentration plays a critical role in the formation and stability of the droplet like associated phase.
Abstract
Reversible associations of RNAs among themselves, or with RNA binding proteins through the process of phase separation, are found to be important in many different cellular contexts, including cellular responses to stress, gene regulation, development, and disease. Short RNA repeat sequences, which are mostly linked with many repeat expansion neurodegenerative diseases, are found to undergo phase separation and yield protein-free biomolecular condensates in vitro and in cells. However, the physicochemical principles governing phase separation of RNAs considering both sequence and structural aspects, especially for short RNAs, remain elusive. It is intriguing, as well as challenging, to characterize the RNA phase behavior at a submolecular resolution. Based on atomistic enhanced sampling simulations, here we report potential dynamic structural effects in the mutual association properties of a tetra loop containing 14-mer hairpin RNA. We show that the folded and unfolded conformations of the hairpin fragment lead to different energetic barriers for the formation of an associated pair. Unfolded conformation leads to the formation of gel like energetically stable associated phases spontaneously; the folded hairpin motif is found to yield droplet like associated phases accompanying by cations in solution. Overall, our findings illustrate that dynamic association/dissociation is energetically more favorable for folded RNA hairpins, and the presence of additional salt in solution assists the formation of dense droplet like associated phases, while ionic concentration plays a critical role in the formation and stability of the droplet like associated phase. These observations open avenues for exploring structure-based phase separation mechanisms of RNAs in the context of RNA mediated functional biomolecular condensate formation within cells and designing RNA based novel biomaterials.
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DNA is a fundamental biomolecule in eukaryotic cells, playing central roles in processes ranging from genome organization and transcription to innate immune signaling. Recent studies have revealed that DNA can undergo protein-free phase separation in the presence of divalent cations, yet the underlying molecular mechan...