Department of Bioorganic Chemistry, Instituto de Investigaciones Químicas, CSIC-Universidad de Sevilla, Américo Vespucio 49, 41092, Sevilla, Spain.
Instituto de Química Física "Rocasolano", CSIC, 28006, Madrid, Spain.
Angew Chem Int Ed Engl. 2016 Jul 18;55(30):8643-7. doi: 10.1002/anie.201603510. Epub 2016 Jun 22.
Noncovalent forces rule the interactions between biomolecules. Inspired by a biomolecular interaction found in aminoglycoside-RNA recognition, glucose-nucleobase pairs have been examined. Deoxyoligonucleotides with a 6-deoxyglucose insertion are able to hybridize with their complementary strand, thus exhibiting a preference for purine nucleobases. Although the resulting double helices are less stable than natural ones, they present only minor local distortions. 6-Deoxyglucose stays fully integrated in the double helix and its OH groups form two hydrogen bonds with the opposing guanine. This 6-deoxyglucose-guanine pair closely resembles a purine-pyrimidine geometry. Quantum chemical calculations indicate that glucose-purine pairs are as stable as a natural T-A pair.
非共价键主宰着生物分子间的相互作用。受氨基糖苷 - RNA 识别中发现的生物分子相互作用的启发,人们研究了葡萄糖 - 碱基对。带有 6-脱氧葡萄糖插入物的脱氧寡核苷酸能够与互补链杂交,从而表现出对嘌呤碱基的偏好。尽管形成的双链不如天然双链稳定,但它们只呈现出较小的局部扭曲。6-脱氧葡萄糖完全整合在双链中,其 OH 基团与相反的鸟嘌呤形成两个氢键。这种 6-脱氧葡萄糖 - 鸟嘌呤对非常类似于嘌呤 - 嘧啶的几何形状。量子化学计算表明,葡萄糖 - 嘌呤对与天然的 T-A 对一样稳定。