Lin C H, Wang W, Jones R A, Patel D J
Cellular Biochemistry and Biophysics Program, Memorial Sloan-Kettering Cancer Center, New York, NY 10021, USA.
Chem Biol. 1998 Oct;5(10):555-72. doi: 10.1016/s1074-5521(98)90114-4.
In vitro selection has identified DNA aptamers that target cofactors, amino acids, peptides and proteins. Structure determination of such ligand-DNA aptamer complexes should elucidate the details of adaptive DNA structural transitions, binding-pocket architectures and ligand recognition. We have determined the solution structure of the complex of a DNA aptamer containing a guanine-rich 18-residue hairpin loop that binds L-argininamide with approximately 100 microM affinity.
The DNA aptamer generates its L-argininamide-binding pocket by adaptive zippering up the 18-residue loop through formation of Watson-Crick pairs, mismatch pairs and base triples, while maximizing stacking interactions. Three of the four base triples involve minor-groove recognition through sheared G.A mismatch formation. The unique fold is also achieved through positioning of an adenine residue deep within the minor groove and through nestling of a smaller loop within the larger loop on complex formation. The accessibility to the unique L-argininamide-binding pocket is restricted by a base pair that bridges across one side of the major-groove-binding site. The guanidinium group of the bound L-argininamide aligns through intermolecular hydrogen-bond formation with the base edges of nonadjacent guanine and cytosine residues while being sandwiched between the planes of nonadjacent guanine residues.
The available structures of L-arginine/L-argininamide bound to their DNA and RNA targets define the common principles and patterns associated with molecular recognition, as well as the diversity of intermolecular hydrogen-bonding alignments associated with the distinct binding pockets.
体外筛选已鉴定出靶向辅因子、氨基酸、肽和蛋白质的DNA适配体。此类配体-DNA适配体复合物的结构测定应能阐明适应性DNA结构转变、结合口袋结构和配体识别的细节。我们已确定了一种DNA适配体复合物的溶液结构,该适配体含有一个富含鸟嘌呤的18个残基的发夹环,与L-精氨酰胺的结合亲和力约为100微摩尔。
该DNA适配体通过形成沃森-克里克碱基对、错配碱基对和碱基三联体,以适应性拉链方式将18个残基的环向上拉,同时最大化堆积相互作用,从而生成其L-精氨酰胺结合口袋。四个碱基三联体中的三个涉及通过剪切的G·A错配形成进行小沟识别。独特的折叠结构还通过将一个腺嘌呤残基定位在小沟深处以及在复合物形成时将一个较小的环嵌套在较大的环内来实现。一个跨越主要沟结合位点一侧的碱基对限制了对独特的L-精氨酰胺结合口袋的可及性。结合的L-精氨酰胺的胍基通过分子间氢键形成与不相邻的鸟嘌呤和胞嘧啶残基的碱基边缘对齐,同时夹在不相邻的鸟嘌呤残基平面之间。
与DNA和RNA靶点结合 的L-精氨酸/L-精氨酰胺的现有结构定义了与分子识别相关的共同原理和模式,以及与不同结合口袋相关的分子间氢键排列的多样性。