首页> 美国卫生研究院文献>Protein Science : A Publication of the Protein Society >Crystal structure of an engineered Cro monomer bound nonspecifically to DNA: possible implications for nonspecific binding by the wild-type protein.
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Crystal structure of an engineered Cro monomer bound nonspecifically to DNA: possible implications for nonspecific binding by the wild-type protein.

机译:非特异性结合DNA的工程Cro单体的晶体结构:对野生型蛋白非特异性结合的可能影响。

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摘要

The structure has been determined at 3.0 A resolution of a complex of engineered monomeric Cro repressor with a seven-base pair DNA fragment. Although the sequence of the DNA corresponds to the consensus half-operator that is recognized by each subunit of the wild-type Cro dimer, the complex that is formed in the crystals by the isolated monomer appears to correspond to a sequence-independent mode of association. The overall orientation of the protein relative to the DNA is markedly different from that observed for Cro dimer bound to a consensus operator. The recognition helix is rotated 48 degrees further out of the major groove, while the turn region of the helix-turn-helix remains in contact with the DNA backbone. All of the direct base-specific interactions seen in the wild-type Cro-operator complex are lost. Virtually all of the ionic interactions with the DNA backbone, however, are maintained, as is the subset of contacts between the DNA backbone and a channel on the protein surface. Overall, 25% less surface area is buried at the protein DNA interface than for half of the wild-type Cro-operator complex, and the contacts are more ionic in character due to a reduction of hydrogen bonding and van der Waals interactions. Based on this crystal structure, model building was used to develop a possible model for the sequence-nonspecific interaction of the wild-type Cro dimer with DNA. In the sequence-specific complex, the DNA is bent, the protein dimer undergoes a large hinge-bending motion relative to the uncomplexed form, and the complex is twofold symmetric. In contrast, in the proposed nonspecific complex the DNA is straight, the protein retains a conformation similar to the apo form, and the complex lacks twofold symmetry. The model is consistent with thermodynamic, chemical, and mutagenic studies, and suggests that hinge bending of the Cro dimer may be critical in permitting the transition from the binding of protein at generic sites on the DNA to binding at high affinity operator sites.
机译:该结构已在3.0 A分辨率下确定了工程化的单体Cro阻遏物与7个碱基对DNA片段的复合物。尽管DNA的序列对应于野生型Cro二聚体的每个亚基识别的共有半操纵子,但分离出的单体在晶体中形成的复合物似乎对应于序列无关的缔合模式。蛋白质相对于DNA的总体方向与结合到共有操纵子的Cro二聚体观察到的方向明显不同。识别螺旋从主凹槽中进一步旋转48度,而螺旋的螺旋区-转-螺旋保持与DNA骨架接触。在野生型Cro-operator复合物中看到的所有直接的碱基特异性相互作用都丢失了。然而,几乎所有与DNA骨架的离子相互作用都得以维持,DNA骨架与蛋白质表面通道之间的接触子集也得以保持。总体而言,与野生型Cro-operator复合物的一半相比,蛋白质DNA界面处的表面积减少了25%,并且由于氢键和范德华相互作用的减少,接触点的离子性更高。基于这种晶体结构,模型构建被用于开发可能的模型,用于野生型Cro二聚体与DNA的序列-非特异性相互作用。在序列特异性复合物中,DNA弯曲,蛋白质二聚体相对于未复合形式经历较大的铰链弯曲运动,并且复合物是双重对称的。相反,在提出的非特异性复合物中,DNA是直的,蛋白质保留类似于载脂蛋白形式的构象,并且复合物缺乏双重对称性。该模型与热力学,化学和诱变研究一致,表明Cro二聚体的铰链弯曲对于允许从DNA通用位点的蛋白质结合过渡到高亲和力操纵子位点的结合可能至关重要。

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