The knowledge of the mechanism of reactions occurring in solution is a primary research line both in the context of theoretical-computational chemistry and in the field of organic and bio-organic chemistry. Given the importance of the hydrolysis of nucleic acids in life-related phenomena, here we present a combined experimental and computational study on the cleavage of an RNA model compound. This phosphodiester features a cleavage rate strictly dependent on the pH with three different dependence domains. Such experimental evidence, highlighted by an in-depth kinetic investigation, unequivocally suggests a change in the reaction mechanism along the pH scale. In order to interpret the data and to explain the experimental behavior, we have applied a theoretical-computational procedure, involving a hybrid quantum/classical approach, able to model chemical reactions in complex environments, i. e. in solution. This study turns out to quantitatively reproduce the experimental data with accuracy and, in addition, provides useful mechanistic insight into the transesterification process of the investigated compound. The study indicates that the cleavage can occur through an ANDN${A_N D_N }$ , an AN+DN${A_N + D_N }$ , and a DNAN${D_N A_N }$ mechanism depending on the pH values.

Nicola Nardi, A., Olivieri, A., D'Abramo, M., Salvio, R. (2024). Unveiling the Cleavage Mechanism of an RNA Model Compound on the whole pH Scale: Computations Meet Experiments in the Determination of Reaction Rates. CHEMPHYSCHEM, 25(12) [10.1002/cphc.202300873].

Unveiling the Cleavage Mechanism of an RNA Model Compound on the whole pH Scale: Computations Meet Experiments in the Determination of Reaction Rates

Riccardo Salvio
2024-01-01

Abstract

The knowledge of the mechanism of reactions occurring in solution is a primary research line both in the context of theoretical-computational chemistry and in the field of organic and bio-organic chemistry. Given the importance of the hydrolysis of nucleic acids in life-related phenomena, here we present a combined experimental and computational study on the cleavage of an RNA model compound. This phosphodiester features a cleavage rate strictly dependent on the pH with three different dependence domains. Such experimental evidence, highlighted by an in-depth kinetic investigation, unequivocally suggests a change in the reaction mechanism along the pH scale. In order to interpret the data and to explain the experimental behavior, we have applied a theoretical-computational procedure, involving a hybrid quantum/classical approach, able to model chemical reactions in complex environments, i. e. in solution. This study turns out to quantitatively reproduce the experimental data with accuracy and, in addition, provides useful mechanistic insight into the transesterification process of the investigated compound. The study indicates that the cleavage can occur through an ANDN${A_N D_N }$ , an AN+DN${A_N + D_N }$ , and a DNAN${D_N A_N }$ mechanism depending on the pH values.
2024
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHIM/06
Settore CHEM-05/A - Chimica organica
English
Con Impact Factor ISI
Phosphate Chemistry
Phosphate Cleavage Mechanism
RNA Cleavage
Reaction Kinetics
Theoretical-computational and experimental modeling
Nicola Nardi, A., Olivieri, A., D'Abramo, M., Salvio, R. (2024). Unveiling the Cleavage Mechanism of an RNA Model Compound on the whole pH Scale: Computations Meet Experiments in the Determination of Reaction Rates. CHEMPHYSCHEM, 25(12) [10.1002/cphc.202300873].
Nicola Nardi, A; Olivieri, A; D'Abramo, M; Salvio, R
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/366783
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