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1.
J Mol Model ; 28(2): 43, 2022 Jan 25.
Article in English | MEDLINE | ID: mdl-35079869

ABSTRACT

The effect of vicinal molecular groups on the intrinsic acidity of a central guanine residue in short single-stranded DNA models and the potentials exerted by the backbone and the nucleobases on the leaving proton were determined by the fragment molecular orbital (FMO) method, in terms of quantum descriptors (QDs) and pair interaction interfragment decomposition analysis (PIEDA). The acidity of the central guanine moiety decreased with increasing oligonucleotide length, in response to changes by less than 1 eV in the ionization potential, global softness, electrophilicity index, and electronegativity descriptors. The differences in these descriptors were majorly interpreted in terms of the electrostatic influence of the negative charges residing on the backbone of the molecule. Additionally, this electric-field effect was determined explicitly for the displacement of the test hydronium ion to a distance of 250 Å from its original position, resulting in good agreement with calculations of the variation in Gibbs free energies, obtained from physical experiments conducted on the identical oligonucleotide sequences. The reported results are useful for biophysical applications of deoxyriboligonucleotides containing guanine residues in order to induce local negative charges at specific positions in the DNA chain.


Subject(s)
Guanine/chemistry , Models, Chemical , Models, Molecular , Oligodeoxyribonucleotides/chemistry , Protons , Algorithms , Molecular Conformation , Molecular Structure , Oligonucleotides/chemistry , Static Electricity
2.
Article in English | MEDLINE | ID: mdl-30942138

ABSTRACT

Degradation of 2'-deoxyribonucleosides in 0.5 M aqueous pyrrolidine at 110 °C proceeds at different rates, ordered as deoxyuridine > deoxyadenosine > deoxycytidine > deoxyguanosine ≫ deoxythymidine. Deoxyadenosine degradation produces the free base, adenine, while deoxycytidine by deamination produces deoxyuridine, and then uracil. The solvolysis of deoxyadenosine has an activation energy of 23.3 kcal/mol. Ammonolysis is slower than pyrrolidinolysis for deoxyadenosine, but faster for deoxyguanosine. In pyrrolidinolysis of the trinucleotides, d-TGT and d-TAT, the guanine moiety reacts faster than the adenine moiety. These trends are interpreted in terms of the ionization of the guanine moieties under basic conditions, rendering them less susceptible to nucleophilic attack.


Subject(s)
Amines/chemistry , Deoxyribonucleosides/chemistry , Heterocyclic Compounds/chemistry , Hot Temperature , Kinetics , Solvents , Thermodynamics , Water
3.
Chembiochem ; 19(19): 2088-2098, 2018 10 04.
Article in English | MEDLINE | ID: mdl-30073767

ABSTRACT

Single-stranded model oligodeoxyribonucleotides, each containing a single protonatable base-cytosine, adenine, guanine, or 5-methylcytosine-centrally located in a background of non-protonatable thymine residues, were acid-titrated in aqueous solution, with UV monitoring. The basicity of the central base was shown to depend on the type of the central base and its nearest neighbours and to rise with increasing oligonucleotide length and decreasing ionic strength of the solution. More complex model oligonucleotides, each containing a centrally located 5-methylcytosine base, were comparatively evaluated in single-stranded and double-stranded form, by UV spectroscopy and high-field NMR. The N3 protonation of the 5-methylcytosine moiety in the double-stranded case occurred at much lower pH, at which the duplex was already experiencing general dissociation, than in the single-stranded case. The central guanine:5-methylcytosine base pair remained intact up to this point, possibly due to an unusual alternative protonation on O2 of the 5-methylcytosine moiety, already taking place at neutral or weakly basic pH, as indicated by UV spectroscopy, thus suggesting that 5-methylcytosine sites in double-stranded DNA might be protonated to a significant extent under physiological conditions.


Subject(s)
DNA, Single-Stranded , Oligodeoxyribonucleotides , 5-Methylcytosine/metabolism , Adenine/metabolism , Base Sequence , DNA, Single-Stranded/chemistry , DNA, Single-Stranded/metabolism , Guanine/metabolism , Hydrogen-Ion Concentration , Nucleic Acid Conformation , Oligodeoxyribonucleotides/chemistry , Oligodeoxyribonucleotides/metabolism , Osmolar Concentration , Protons , Thymine/metabolism
4.
Biophys Chem ; 206: 58-65, 2015 Nov.
Article in English | MEDLINE | ID: mdl-26188860

ABSTRACT

The deprotonation of ionizable nucleobases centrally placed in short model oligonucleotides was examined under different physical conditions, using UV absorption spectroscopy. The oligonucleotide sequences were designed so that only the central base would be ionized over the pH range examined. pKa values of 9.90±0.01 and 9.34±0.04 were determined for the guanine group in the oligomer d-ACAGCAC and 2'-deoxyguanosine, respectively, both at 25°C and 0.1M NaCl. Lengthening the oligonucleotide up to the tridecamer stage further increases the pKa of the central guanine moiety. Electrolyte concentration, temperature, and mixed water-ethanol solvents affect the acidity of the central base. Changes in the sequence surrounding the central guanine can also have a significant effect, especially in the case of strongly stacking sequences. The pKa values were also determined for the hepta(2'-O-methyl)ribonucleotide and the heptamer PNA of identical sequence, as well as for oligodeoxyribonucleotides with different deprotonable bases, viz. thymine, uracil, or hypoxanthine, in the central position. The results are interpreted in terms of the electric-field effect exerted on the departing proton by the negative electric charges located on the internucleotide phosphate groups, and calculations show this effect to approximately explain the magnitude of the pKa difference observed between the deoxyriboheptanucleotide and its electroneutral PNA analogue.


Subject(s)
Deoxyguanosine/chemistry , Guanine/chemistry , Oligodeoxyribonucleotides/chemistry , Oligonucleotides/chemistry , Peptide Nucleic Acids/chemistry , Base Sequence , Models, Molecular , Osmolar Concentration , Protons , Spectrophotometry, Ultraviolet , Static Electricity , Thermodynamics , Titrimetry
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