Murali R, Sharkey D J, Daiss J L, Murthy H M
Department of Pathology, University of Pennsylvania, Philadelphia, PA, 19104, USA.
Proc Natl Acad Sci U S A. 1998 Oct 13;95(21):12562-7. doi: 10.1073/pnas.95.21.12562.
We report the crystal structure of Thermus aquaticus DNA polymerase I in complex with an inhibitory Fab, TP7, directed against the native enzyme. Some of the residues present in a helical conformation in the native enzyme have adopted a gamma turn conformation in the complex. Taken together, structural information that describes alteration of helical structure and solution studies that demonstrate the ability of TP7 to inhibit 100% of the polymerase activity of the enzyme suggest that the change in conformation is probably caused by trapping of an intermediate in the helix-coil dynamics of this helix by the Fab. Antibodies directed against modified helices in proteins have long been anticipated. The present structure provides direct crystallographic evidence. The Fab binds within the DNA binding cleft of the polymerase domain, interacting with several residues that are used by the enzyme in binding the primer:template complex. This result unequivocally corroborates inferences drawn from binding experiments and modeling calculations that the inhibitory activity of this Fab is directly attributable to its interference with DNA binding by the polymerase domain of the enzyme. The combination of interactions made by the Fab residues in both the polymerase and the vestigial editing nuclease domain of the enzyme reveal the structural basis of its preference for binding to DNA polymerases of the Thermus species. The orientation of the structure-specific nuclease domain with respect to the polymerase domain is significantly different from that seen in other structures of this polymerase. This reorientation does not appear to be antibody-induced and implies remarkably high relative mobility between these two domains.
我们报道了嗜热水生栖热菌DNA聚合酶I与一种针对天然酶的抑制性Fab(TP7)形成复合物的晶体结构。在天然酶中呈螺旋构象的一些残基在复合物中采用了γ转角构象。综合描述螺旋结构改变的结构信息以及证明TP7能够100%抑制该酶聚合酶活性的溶液研究,表明构象变化可能是由于Fab在该螺旋的螺旋-卷曲动力学中捕获了一个中间体所致。长期以来一直期待着针对蛋白质中修饰螺旋的抗体。目前的结构提供了直接的晶体学证据。Fab结合在聚合酶结构域的DNA结合裂隙内,与该酶在结合引物:模板复合物时使用的几个残基相互作用。这一结果明确证实了从结合实验和模型计算得出的推论,即该Fab的抑制活性直接归因于其对酶的聚合酶结构域与DNA结合的干扰。Fab残基在酶的聚合酶结构域和残留的编辑核酸酶结构域中形成的相互作用组合揭示了其偏好结合嗜热栖热菌属DNA聚合酶的结构基础。结构特异性核酸酶结构域相对于聚合酶结构域的方向与该聚合酶的其他结构中所见的显著不同。这种重新定向似乎不是由抗体诱导的,这意味着这两个结构域之间具有非常高的相对移动性。