Skip to content
Open access

Microsolvation of Protonated Glycine: Infrared Spectra from Data-Driven Quantum Many-Body Simulations.

Aug 2026 · Journal of Physical Chemistry A · Vol 130 35, pp. 6933-6947 · 0 citations · 76 references
Medicine

Abstract

Understanding how hydration reshapes the structure and conformational flexibility of biomolecular ions is essential for connecting gas-phase spectroscopy to behavior in aqueous environments. Glycine, the simplest amino acid, exhibits rich microsolvation behavior, with competing intra- and intermolecular hydrogen-bonding motifs that evolve with hydration and temperature. Although cryogenic ion spectroscopy has provided detailed measurements of hydrated protonated glycine (GlyH+) clusters, interpreting these spectra and relating them to molecular hydration motifs remains challenging. Here, we develop a data-driven many-body potential energy function for GlyH+-H2O interactions and combine it with replica-exchange molecular dynamics to identify isomeric equilibria, and with temperature-elevated path-integral coarse-graining simulations to model GlyH+(H2O)n clusters, accounting for nuclear quantum effects. This framework captures many-body interactions with high-level ab initio accuracy and enables direct computation of infrared spectra for comparison with experiment. By applying an inverse spectral reconstruction of isomeric ensembles, we quantitatively decompose the experimental spectra into contributions from competing hydration motifs and extract their relative populations. Our results characterize the sequential formation of the first and second solvation shells, quantify the competition between intramolecular and water-mediated hydrogen bonds, and reveal temperature dependence and nuclear quantum effects. Overall, this study provides a transferable approach to understanding the hydration of biomolecular systems across scales, from gas-phase clusters to bulk aqueous solutions.

Read PDF

Similar papers

Open access Jul 2026

Deciphering the infrared spectrum of the hydrated proton using full-dimensional quantum dynamics.

The nature of the aqueous proton has been traditionally interpreted through two limiting structural motifs: the Zundel and Eigen cations. However, experimental infrared (IR) spectra of the solvated proton reveal a far more dynamic character, as evidenced by distinct intensity modulations within the characteristic conti...

D. Mendive-Tapia, Christoph Schran, Banshi Das et al. · 1 citation
Open access Sep 2026

Liquid-jet XPS and theoretical computations reveal solvation-driven shifts and deprotonation site in uracil.

Solute-solvent interactions are fundamental to understanding the stability, reactivity, and biological function of molecules. Spectroscopic techniques allow gaining molecular-level insights into these interactions. Here we explore the hydration of uracil, a model system for the behavior of biomolecules in an aqueous en...

Marine Fournier, Martin Procházka, Rémi Dupuy et al. · 0 citations
Open access Aug 2026

Beyond a single structure: complementary IR and NMR signatures of multi-minima noncovalent binding

Hydridic hydrogen atoms, where hydrogen carries increased electron density, form a distinct class of noncovalent interactions, yet their structural and energetic characteristics remain poorly understood. Shallow multi-minima potential-energy surfaces and competing low-energy docking motifs make conventional NMR insuffi...

M. Lamanec, M. Marchi, S. H. Hossein Hejazi et al. · 0 citations
Open access Sep 2026

Vibrational Spectra, Conformations, and Optical Rotation of Aqueous Amino Acids: Zwitterions of L-Alanine and L-Valine.

We demonstrate that an efficient computational protocol for accurate quantum mechanical (QM) modeling of IR and Raman spectra of condensed-phase systems is applicable to aqueous zwitterions of L-alanine and L-valine. The approach is based on generating energetically low-lying cluster structures consisting of the solute...

S. Katsyuba, T. Burganov, Tatiana P. Gerasimova et al. · 0 citations
Open access Sep 2026

Unraveling the Complex Hydrogen-Bonding and Solvation Patterns of Fructose Tautomers via Complementary AIMD and Classical MD Simulations

Understanding the molecular-level hydration of fructose tautomers remains a challenge due to their rapid interconversion and structural complexity. A dual-scale approach was employed, combining long-time classical molecular dynamics (MD) and ab initio molecular dynamics (AIMD) to elucidate differences in the hydrogen...

Imre Bakó, Szilvia Pothoczki · 0 citations
Open access Sep 2026

Hydration Ensembles in Proton-Linked Amino-Acid Recognition by Cucurbit[7]uril

The hydrophobic effect is often considered a major driving force for molecular recognition in water, whether through classical desolvation of nonpolar surfaces or through the release of confined high-energy water from host cavities. However, the interplay between protonation, ion–dipole interactions, and hydration re...

E. Zaorska, Natasza Jakubik, David A. Rincón et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.