Effects of sodium cationization versus protonation on the conformations and N-glycosidic bond stabilities of sodium cationized Urd and dUrd: solution conformation of [Urd+Na]+ is preserved upon ESI
Literature Information
Y. Zhu, H. A. Roy, N. A. Cunningham, S. F. Strobehn, J. Gao, M. U. Munshi, G. Berden, J. Oomens, M. T. Rodgers
Uridine (Urd) is one of the naturally occurring pyrimidine nucleosides of RNA. 2′-Deoxyuridine (dUrd) is a naturally occurring modified form of Urd, but is not one of the canonical DNA nucleosides. In order to understand the effects of sodium cationization on the conformations and energetics of Urd and dUrd, infrared multiple photon dissociation (IRMPD) action spectroscopy experiments and density functional theory (DFT) calculations are performed. By comparing the calculated IR spectra of [Urd+Na]+ and [dUrd+Na]+ with the measured IRMPD spectra, the stable low-energy conformers populated in the experiments are determined. Anti oriented bidentate O2 and O2′ binding conformers of [Urd+Na]+ are the dominant conformers populated in the experiments, whereas syn oriented tridentate O2, O4′, and O5′ binding conformers of [dUrd+Na]+ are dominantly populated in the experiments. The 2′-hydroxyl substituent of Urd stabilizes the anti oriented O2 binding conformers of [Urd+Na]+. Significant differences between the measured IRMPD and calculated IR spectra for complexes of [Urd+Na]+ and [dUrd+Na]+ involving minor tautomeric forms of the nucleobase make it obvious that none are populated in the experiments. Survival yield analyses based on energy-resolved collision-induced dissociation (ER-CID) experiments suggest that the relative stabilities of protonated and sodium cationized Urd and dUrd follow the order: [dUrd+H]+ < [Urd+H]+ < [dUrd+Na]+ < [Urd+Na]+. The 2′-deoxy modification is found to weaken the glycosidic bond of dUrd versus that of Urd for the sodium cationized uridine nucleosides.
Recommended Journals

Nature Medicine

Crystallography Reports

Drug Discovery Today

Saudi Pharmaceutical Journal

Russian Journal of Coordination Chemistry

Chemistry Education Research and Practice

Russian Journal of Applied Chemistry

Journal of Natural Medicines

Current Opinion in Solid State & Materials Science

Chemical Communications
Related Literature
Dual-action gallium-flavonoid compounds for combating Pseudomonas aeruginosa infection
Bingjie Han, Yu Guo, Richard Y T Kao, Hongyan Li, Hongzhe Sun, Wei Xia
DOI: 10.1039/D3CB00033H
Integrated multi-material portable 3D-printed platform for electrochemical detection of dopamine and glucose
Roger Domingo-Roca, Alexander R. Macdonald, Stuart Hannah, Damion K. Corrigan
DOI: 10.1039/D2AN00862A
An electronic DNA microarray technique for detection and differentiation of viable Campylobacter species
Hai Zhang, Zhilong Gong, Odell Pui, Yanming Liu, Xing-Fang Li
DOI: 10.1039/B603315F
Molecular dynamics modelling of the interaction of a synthetic zinc-finger miniprotein with DNA
Soraya Learte-Aymamí, José L. Mascareñas
DOI: 10.1039/D3CB00053B
Subfemtomolar electrochemical detection of target DNA by catalytic enlargement of the hybridized gold nanoparticlelabels
Murielle Rochelet-Dequaire, Benoît Limoges, Pierre Brossier
DOI: 10.1039/B603963D
Super-washing does not leave single walled carbon nanotubes iron-free
Kerstin Jurkschat, Xiaobo Ji, Alison Crossley, Richard G. Compton, Craig E. Banks
DOI: 10.1039/B615824B
Transition metal ions and neurotransmitters: coordination chemistry and implications for neurodegeneration
Jeasang Yoo, Jiyeon Han, Mi Hee Lim
DOI: 10.1039/D3CB00052D
The phytase RipBL1 enables the assignment of a specific inositol phosphate isomer as a structural component of human kidney stones
Guizhen Liu, Esther Riemer, Robin Schneider, Daniela Cabuzu, Olivier Bonny, Carsten A. Wagner, Danye Qiu, Adolfo Saiardi, Annett Strauss, Thomas Lahaye, Gabriel Schaaf, Thomas Knoll, Jan P. Jessen, Henning J. Jessen
DOI: 10.1039/D2CB00235C
A compact broadband cavity enhanced absorption spectrometer for detection of atmospheric NO2 using light emitting diodes
Justin M. Langridge, Stephen M. Ball, Roderic L. Jones
DOI: 10.1039/B605636A
You might also like
What is Ethyl 3-cyclohexylpropanoate (CAS: 10094-36-7)?
Ethyl 3-cyclohexylpropanoate is a clear, colorless to light yellow liquid with a...
How should waste containing 2-(Hydroxymethyl)-5-(methoxycarbonyl)-6-methyl-4-(2-nitrophenyl)nicotinic acid (CAS: 34783-31-8) be handled?
Waste containing 2-(Hydroxymethyl)-5-(methoxycarbonyl)-6-methyl-4-(2-nitrophenyl...
How should waste containing 2,4,6-Tris(pentafluoroethyl)-1,3,5-triazine (CAS: 858-46-8) be handled?
Waste containing 2,4,6-Tris(pentafluoroethyl)-1,3,5-triazine (CAS: 858-46-8) sho...
What precautions should be taken when handling Chloroac-nle-oh (CAS: 56787-36-1)?
When handling Chloroac-nle-oh (CAS: 56787-36-1), it is essential to wear appropr...
What industries use Ethyl 6-phenylimidazo[2,1-b][1,3]thiazole-3-carboxylate (CAS: 752244-05-6)?
Ethyl 6-phenylimidazo[2,1-b][1,3]thiazole-3-carboxylate is primarily used in the...
Are there alternatives to alpha-(2-Bromophenyl)benzylamine (CAS: 55095-15-3) in synthesis?
Alternatives to alpha-(2-Bromophenyl)benzylamine (CAS: 55095-15-3) in synthesis ...
How should waste containing 2-Chloro-5-methoxypyridine (CAS: 139585-48-1) be handled?
Waste containing 2-Chloro-5-methoxypyridine (CAS: 139585-48-1) should be managed...
What industries use 1-(4-Methoxyphenyl)-2,5-dimethyl-1H-pyrrole (CAS: 5044-27-9)?
1-(4-Methoxyphenyl)-2,5-dimethyl-1H-pyrrole (CAS: 5044-27-9) is used in various ...
Are there alternatives to 3-Bromo-5-(N-Boc)aminomethylisoxazole (CAS: 903131-45-3) in synthesis?
There are alternative reagents and compounds that can be used in the synthesis o...
What is Tungsten(IV) oxide (CAS: 12036-22-5)?
Tungsten(IV) oxide, also known as tungsten dioxide, is a chemical compound with ...
Source Journal
Physical Chemistry Chemical Physics

Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.



![1-(Hexopyranosyloxy)-4a,5-dihydroxy-7-methyl-1,4a,5,6,7,7a-hexahydrocyclopenta[c]pyran-7-yl 3-phenylacrylate structure 1-(Hexopyranosyloxy)-4a,5-dihydroxy-7-methyl-1,4a,5,6,7,7a-hexahydrocyclopenta[c]pyran-7-yl 3-phenylacrylate structure](https://static.chemtradehub.com/structs/192/19210-12-9-ecae.webp)
