Jul 2026· Physical Chemistry, Chemical Physics - PCCP· Vol 28, pp. 18062 - 18071· 0 citations· 58 references
Medicine
TL;DR
The results show that while 2AP substitution does not significantly alter stacking propensity, it substantially modulates the free energy landscape, leading to a redistribution of populations among stacking modes and supporting the hypothesis that base stacking quenches 2AP fluorescence and promotes dark state formation.
Abstract
Fluorescent base analogs, such as 2-aminopurine (2AP), are frequently used to investigate nucleic acid conformational dynamics, particularly base-stacking interactions, through fluorescence spectroscopy. Although 2AP substitution can induce structural perturbations, properly accounting for these effects enables its use as a probe of complex RNA dynamics. Here, we apply explainable machine-learning-derived surrogate-model collective variables to perform enhanced-sampling simulations that comprehensively explore the free-energy landscapes of both 2AP-substituted and unsubstituted RNA dinucleotides and trinucleotides. Our results show that while 2AP substitution does not significantly alter stacking propensity, it substantially modulates the free energy landscape, leading to a redistribution of populations among stacking modes. The fraction of stacked 2AP conformations closely correlates with experimentally observed “dark state” populations, supporting the hypothesis that base stacking quenches 2AP fluorescence and promotes dark state formation. This work and follow-up studies in larger, physiologically relevant RNA systems will establish the ability to correlate observed emissive or dark states of 2AP with specific structures within the free-energy landscape.
This work assesses ML potentials for exploring RNA conformations using the adenine–adenine dinucleoside monophosphate (ApA) dimer, a fundamental RNA building block, and parametrized ML potentials based on the equivariant MACE architecture and informed by both ab initio and semiempirical property data.
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