Uracil (ˈjʊərəsɪl) (symbol U or Ura) is one of the four nucleobases in the nucleic acid RNA. The others are adenine (A), cytosine (C), and guanine (G). In RNA, uracil binds to adenine via two hydrogen bonds. In DNA, the uracil nucleobase is replaced by thymine (T). Uracil is a demethylated form of thymine.
Uracil is a common and naturally occurring pyrimidine derivative. The name "uracil" was coined in 1885 by the German chemist Robert Behrend, who was attempting to synthesize derivatives of uric acid. Originally discovered in 1900 by Alberto Ascoli, it was isolated by hydrolysis of yeast nuclein; it was also found in bovine thymus and spleen, herring sperm, and wheat germ. It is a planar, unsaturated compound that has the ability to absorb light.
Uracil that was formed extraterrestrially has been detected in the Murchison meteorite, in a near-Earth asteroid, and possibly on the surface of the moon Titan. It has been synthesized under cold laboratory conditions similar to outer space, from pyrimidine embedded in water ice and exposed to ultraviolet light.
In RNA, uracil base-pairs with adenine and replaces thymine during DNA transcription. Methylation of uracil produces thymine. In DNA, the evolutionary substitution of thymine for uracil may have increased DNA stability and improved the efficiency of DNA replication (discussed below). Uracil pairs with adenine through hydrogen bonding. When base pairing with adenine, uracil acts as both a hydrogen bond acceptor and a hydrogen bond donor. In RNA, uracil binds with a ribose sugar to form the ribonucleoside uridine. When a phosphate attaches to uridine, uridine 5′-monophosphate is produced.
Uracil undergoes amide-imidic acid tautomeric shifts because any nuclear instability the molecule may have from the lack of formal aromaticity is compensated by the cyclic-amidic stability. The amide tautomer is referred to as the lactam structure, while the imidic acid tautomer is referred to as the lactim structure. These tautomeric forms are predominant at pH 7.
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Nucleobases (nitrogenous bases or simply bases) are nitrogen-containing biological compounds that form nucleosides, which, in turn, are components of nucleotides, with all of these monomers constituting the basic building blocks of nucleic acids. The ability of nucleobases to form base pairs and to stack one upon another leads directly to long-chain helical structures such as ribonucleic acid (RNA) and deoxyribonucleic acid (DNA). Five nucleobases—adenine (A), cytosine (C), guanine (G), thymine (T), and uracil (U)—are called primary or canonical.
La purine est une molécule azotée hétérocyclique constituée d'un cycle pyrimidine fusionné à un cycle imidazole. C'est l'hétérocycle azoté le plus répandu dans la nature. Parmi les neuf tautomères possibles du noyau purine, les formes CH (C2H, C4H, C5H, C6H et C8H), ainsi que les formes N1H et N3H peuvent être négligées car très peu probables (rupture d'aromaticité), seules les formes N7H et surtout N9H (99 %) existent en solution neutre. Le noyau purine nu n'existe pas dans la nature.
La guanine est une base nucléique, et plus exactement une base purique (voir aussi ADN et ARN). On la trouve sous forme de nucléotide : dans l'ADN c'est la dGMP pour désoxyguanosine monophosphate ou désoxyguanylate, et dans l'ARN la GMP pour guanosine monophosphate ou guanylate. La guanine s'apparie avec la cytosine dans l'ADN comme dans l'ARN et existe sous 6 formes tautomères dont 4 stéréoisomères (1,9H, 1,7H, 3,9H et 3,7H) et 2 tautomères avec un groupe fonctionnel différent (7,11H et 9,11H : oxo- en hydroxy-).
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