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Strong DNA deformation required for extremely slow DNA threading intercalation by a binuclear ruthenium complex

机译:双核钌络合物极慢地进行DNA穿入所需的强DNA变形

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摘要

DNA intercalation by threading is expected to yield high affinity and slow dissociation, properties desirable for DNA-targeted therapeutics. To measure these properties, we utilize single molecule DNA stretching to quantify both the binding affinity and the force-dependent threading intercalation kinetics of the binuclear ruthenium complex Δ,Δ-[μ‐bidppz‐(phen)4Ru2]4+ (Δ,Δ-P). We measure the DNA elongation at a range of constant stretching forces using optical tweezers, allowing direct characterization of the intercalation kinetics as well as the amount intercalated at equilibrium. Higher forces exponentially facilitate the intercalative binding, leading to a profound decrease in the binding site size that results in one ligand intercalated at almost every DNA base stack. The zero force Δ,Δ-P intercalation Kd is 44 nM, 25-fold stronger than the analogous mono-nuclear ligand (Δ-P). The force-dependent kinetics analysis reveals a mechanism that requires DNA elongation of 0.33 nm for association, relaxation to an equilibrium elongation of 0.19 nm, and an additional elongation of 0.14 nm from the equilibrium state for dissociation. In cells, a molecule with binding properties similar to Δ,Δ-P may rapidly bind DNA destabilized by enzymes during replication or transcription, but upon enzyme dissociation it is predicted to remain intercalated for several hours, thereby interfering with essential biological processes.
机译:通过穿线插入DNA有望产生高亲和力和缓慢解离,这是靶向DNA的治疗剂所希望的特性。为了测量这些性质,我们利用单分子DNA拉伸来量化双核钌配合物Δ,Δ-[μ-bidppz-(phen)4Ru2] 4+ <的结合亲和力和受力依赖的穿插动力学。 / sup>(Δ,Δ-P)。我们使用镊子在恒定的拉伸力范围内测量DNA的延伸率,从而可以直接表征嵌入动力学以及平衡时嵌入的量。更高的力成指数地促进了嵌入结合,从而导致结合位点大小的显着减小,从而导致几乎每个DNA碱基堆栈都插入了一个配体。零力Δ,Δ-P嵌入Kd为44 nM,比类似的单核配体(Δ-P)强25倍。依赖于力的动力学分析揭示了一种机制,该机制要求缔合所需的DNA伸长为0.33 nm,从平衡态到平衡伸长的弛豫为0.19 nm,离解的平衡状态额外需要的伸长为0.14 nm。在细胞中,具有与Δ,Δ-P相似的结合特性的分子可以在复制或转录过程中迅速结合被酶破坏的DNA,但是在酶解离后,预计将插入数小时,从而干扰基本的生物学过程。

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