Marky L A, Breslauer K J
Proc Natl Acad Sci U S A. 1987 Jul;84(13):4359-63. doi: 10.1073/pnas.84.13.4359.
We report complete thermodynamic profiles for netropsin binding to an oligomeric and to several polymeric DNA host duplexes. These data allow us to reach the following conclusions: netropsin binding by deep penetration into the minor groove is overwhelmingly enthalpy driven and exhibits a very high binding affinity (K approximately 10(9) at 25 degrees C); deep penetration into the minor groove is required to form those drug-DNA interactions responsible for the enthalpy-driven high binding affinity of netropsin; I-C base pairs form binding sites for netropsin that thermodynamically are equivalent to those formed by A-T base pairs; the positive binding entropies reflect entropic contributions from molecular events other than just water spine disruption; the thermodynamic binding data primarily reflect local netropsin-DNA interactions rather than long-range binding-induced conformational changes at regions distant from the binding site; the enhanced binding affinity associated with deep penetration of netropsin into the minor groove does not result from more favorable electrostatic interactions; the binding of netropsin to the central AATT core of the decamer duplex [d(GCGAATTCGC)]2 is thermodynamically modeled best by netropsin binding to the poly[d(AT)].poly[d(AT)] duplex rather than the poly(dA).poly(dT) duplex. We propose correlations between our thermodynamic data and specific molecular interactions defined by NMR and x-ray structural studies on similar and identical drug-DNA complexes.
我们报告了纺锤菌素与寡聚体及几种聚合DNA宿主双链体结合的完整热力学概况。这些数据使我们能够得出以下结论:通过深入小沟进行的纺锤菌素结合主要由焓驱动,且表现出非常高的结合亲和力(25℃时K约为10⁹);深入小沟是形成那些导致纺锤菌素焓驱动的高结合亲和力的药物-DNA相互作用所必需的;I-C碱基对形成的纺锤菌素结合位点在热力学上与A-T碱基对形成的位点相当;正的结合熵反映了除水链破坏之外的分子事件的熵贡献;热力学结合数据主要反映局部的纺锤菌素-DNA相互作用,而非结合位点远处区域的长程结合诱导的构象变化;纺锤菌素深入小沟所带来的增强的结合亲和力并非源于更有利的静电相互作用;纺锤菌素与十聚体双链体[d(GCGAATTCGC)]₂的中央AATT核心的结合,在热力学上用纺锤菌素与聚[d(AT)]·聚[d(AT)]双链体而非聚(dA)·聚(dT)双链体的结合来模拟最佳。我们提出了我们的热力学数据与通过对相似及相同药物-DNA复合物的NMR和X射线结构研究确定的特定分子相互作用之间的相关性。