首页> 外文期刊>Journal of the American Chemical Society >SOLUTION STRUCTURE OF THE HEAD-TO-HEAD DIMER OF CALICHEAMICIN OLIGOSACCHARIDE DOMAIN AND D(CGTAGGATATCCTACG)(2)
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SOLUTION STRUCTURE OF THE HEAD-TO-HEAD DIMER OF CALICHEAMICIN OLIGOSACCHARIDE DOMAIN AND D(CGTAGGATATCCTACG)(2)

机译:降钙素酶寡糖域和D(CGTAGGATATCCTACG)的头对头二聚体的溶液结构(2)

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The head-to-head dimer of the calicheamicin oligosaccharide domain exhibits an impressive nanomolar affinity for its specific DNA recognition sites and a substantially higher degree of sequence selectivity relative to the oligosaccharide monomer. In an effort to detennine the structural basis for these binding properties, the solution structure of the 1:1 complex between the head-to-head dimer and the self-complementary oligonucleotide d(CGTAGGATATCCTACG)(2) has been solved using H-1 NMR-derived distance and torsion angle constraints and molecular dynamics calculations. Complete sequence specific proton assignments of both the DNA duplex and the carbohydrate have been obtained by 2D-NMR. A total of 607 experimentally derived constraints were identified including 452 proton-proton distance constraints derived from NOESY cross peaks intensities and assigned hydrogen bonds, along with 155 dihedral angle constraints obtained from a detailed analysis of the multiplet structure of cross-peaks for the sugar rings and from qualitative analysis of nuclear Overhauser effects for the DNA backbone. The final conformation of the complex is represented by an ensemble of seven structures (the average all-atom root mean square deviation from the mean is 1.07 Angstrom in the well-defined region) obtained by refining 14 initial conformations with widely different nonstandard DNA geometries. A number of favorable interactions are found to stabilize the structure of the complex and account for binding sequence preferences. Overall, the binding mode of each oligosaccharide unit of the head-to-head dimer in the DNA minor groove seems to be very close to that observed in the case of the monomeric calicheamicin oligosaccharide bound to its corresponding TCCT recognition site. Variable temperature NMR studies have shown that this dimer binds to d(CGTAGGATATCCTACG)(2) in two subtly different conformations, probably differing in the positioning of rings E and E', interconverting with a rate constant of similar to 0.35 s(-1). The solution structure of this carbohydrate-DNA complex provides confirmation of design principles for new calicheamicin-based DNA-binding agents and confirms insights obtained previously into the molecular basis for oligosaccharide recognition within the DNA minor groove.
机译:相对于寡糖单体,加利车霉素寡糖结构域的头对头二聚体对其特定的DNA识别位点表现出令人印象深刻的纳摩尔亲和力,并且序列选择性的程度更高。为了确定这些结合特性的结构基础,使用H-1解决了头对头二聚体与自身互补寡核苷酸d(CGTAGGATATCCTACG)(2)之间1:1配合物的溶液结构NMR得出的距离和扭转角约束以及分子动力学计算。通过2D-NMR已经获得了DNA双链体和碳水化合物的完整的序列特异性质子分配。总共确定了607个实验得出的约束条件,包括从NOESY交叉峰强度和分配的氢键得出的452个质子-质子距离约束条件,以及从对糖环交叉峰的多重结构进行详细分析获得的155个二面角约束条件以及对DNA主链的核Overhauser效应的定性分析。该复合物的最终构象由七个结构的整体表示(在定义明确的区域中,平均原子平均均方根偏离均值是1.07埃),该构图是通过用非常不同的非标准DNA几何形状精炼14个初始构象而获得的。发现许多有利的相互作用使复合物的结构稳定并解释了结合序列的偏好。总体而言,DNA小沟中头对头二聚体的每个寡糖单元的结合模式似乎与单体加利车霉素寡糖结合至其相应的TCCT识别位点的情况非常接近。可变温度NMR研究表明,该二聚体以两个微妙不同的构型与d(CGTAGGATATCCTACG)(2)结合,可能在环E和E'的位置不同,相互转化的速率常数类似于0.35 s(-1) 。该碳水化合物-DNA复合物的溶液结构为新的基于加利车霉素的DNA结合剂的设计原理提供了证实,并证实了先前在DNA小沟内识别寡糖的分子基础上获得的见识。

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