Salt Effects on the Thermodynamics of a Frameshifting RNA Pseudoknot under Tension
Naoto Hori, Natalia A. Denesyuk, D. Thirumalai

TL;DR
This study uses coarse-grained simulations to explore how salt concentration and mechanical force influence the structural transitions of a pseudoknot RNA, shedding light on its role in ribosomal frameshifting.
Contribution
It provides a quantitative phase diagram of RNA pseudoknot unfolding under force and salt, validated by experiments, and links stability to frameshift efficiency.
Findings
Simulations reproduce experimental melting behavior.
Critical force scales with salt concentration as a power law.
Stability of the 5'-end hairpin influences frameshift efficiency.
Abstract
Because of the potential link between -1 programmed ribosomal frameshifting and response of a pseudoknot (PK) RNA to force, a number of single molecule pulling experiments have been performed on PKs to decipher the mechanism of programmed ribosomal frameshifting. Motivated in part by these experiments, we performed simulations using a coarse-grained model of RNA to describe the response of a PK over a range of mechanical forces (s) and monovalent salt concentrations (s). The coarse-grained simulations quantitatively reproduce the multistep thermal melting observed in experiments, thus validating our model. The free energy changes obtained in simulations are in excellent agreement with experiments. By varying and , we calculated the phase diagram that shows a sequence of structural transitions, populating distinct intermediate states. As and are changed, the…
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