Biopolymers · 1979 · 338 citations · 28 references
Nitrogen BasesEngineeringMolecular BiologyChemistryMolecular InteractionsEvaporation RateNucleic Acid ChemistryReactive Nitrogen SpecieMolecular SimulationSublimation HeatsDna ComputingBiophysicsChemical ThermodynamicsBiochemistryOligonucleotideDna ReplicationPhysical ChemistryMolecular ChemistryPhysicochemical AnalysisNatural SciencesHydrogen BondBase TrimersNucleic Acids
The study measured temperature‑dependent evaporation rates of solid nucleic‑acid bases, enhanced sublimation‑heat measurements with a quartz resonator, derived dimer formation enthalpies from ionic‑current temperature dependence, and investigated hydrogen‑bound trimers and aqueous associates. New experimental data show sublimation heats for canonical bases and derivatives, reveal hydrogen‑bonded base associates in vacuo via mass spectrometry, indicate that dimer formation enthalpies are higher for complementary pairs, and demonstrate that identical‑base trimers yield greater per‑base energy gain than dimers.
Abstract New experimental results concerning molecular interactions between the nitrogen bases of nucleic acids in the crystalline phase and in vacuo are reported. The temperature dependence of the evaporation rate is measured for solid species. The sensitivity of conventional methods of sublimation heat measurements was improved essentially using a quartz resonator serving as a precise sensor of evaporation rate. Sublimation heats were found for both canonical bases and a number of their derivatives. The in vacuo formation of base associates interacting through hydrogen bonds was observed with a field mass spectrometer. The dimer formation enthalpies, which are indicative of a stronger attraction in complementary pairs compared with noncomplementary ones, were derived from the temperature dependence of ionic currents. Hydrogen‐bound complexes of more intricate associates (base trimers and aqueous molecules associates) were studied. The energy gain in the formation of trimers of identical molecules was shown to be larger (per base molecule) than that for dimers.
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Jerry Donohue, K. N. Trueblood · Journal of Molecular Biology · 1960 · 340 citations
Chromatin, Dna, Natural Sciences +8