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双核钌配合物的连接子长度调控DNA穿线插入动力学。

Binuclear ruthenium complex linker length tunes DNA threading intercalation kinetics.

作者信息

Almaqwashi Ali A, McCauley Micah J, Andersson Johanna, Rouzina Ioulia, Westerlund Fredrik, Lincoln Per, Williams Mark C

机构信息

Physics Department, College of Science and Arts, King Abdulaziz University, Rabigh, Saudi Arabia.

Department of Physics, Northeastern University, Boston, Massachusetts.

出版信息

Biophys J. 2025 Feb 18;124(4):667-676. doi: 10.1016/j.bpj.2025.01.002. Epub 2025 Jan 10.

Abstract

Binuclear ruthenium complexes have been investigated for potential DNA-targeted therapeutic and diagnostic applications. Studies of DNA threading intercalation, in which DNA basepairs must be broken for intercalation, have revealed means of optimizing a model binuclear ruthenium complex to obtain reversible DNA-ligand assemblies with the desired properties of high affinity and slow kinetics. Here, we used single-molecule force spectroscopy to study a binuclear ruthenium complex with a longer semirigid linker relative to the model complex. Equilibrium results suggest a DNA affinity that is an order of magnitude higher than the parent binuclear ruthenium complex, likely due to a sterically relieved DNA threading intercalation mechanism. Notably, kinetics analysis shows that less DNA elongation is required for threading intercalation compared to the parent complex, and the association rate is two orders of magnitude faster. The ruthenium complex elongates the DNA duplex by ∼0.3 nm per bound ligand to reach the equilibrium intercalated state, with a significantly different energy landscape relative to the parent complex. Mechanical properties of the ligand-saturated DNA duplex show a higher persistence length, indicating that the longer semirigid linker provides enough molecular spacing to allow a single monomer to fully stack with basepairs, comparable to the monomeric parent ruthenium complex. The DNA basepairs in the equilibrium threading intercalated state are likely intact, and the ruthenium complex is shielded from the polar solution, providing measurable single-molecule confocal fluorescence signals. The obtained confocal fluorescence imaging of the bound dye confirms mostly uniform intercalation along the tethered DNA, consistent with other intercalators. The results of this study, along with previously examined ruthenium complex variants, illustrate tunable intercalation mechanisms guided by the rational design of therapeutic and diagnostic small molecules to target and modify the DNA duplex.

摘要

双核钌配合物已被研究用于潜在的靶向DNA的治疗和诊断应用。对DNA穿线插入的研究表明,插入时DNA碱基对必须断裂,该研究揭示了优化模型双核钌配合物以获得具有高亲和力和慢动力学所需特性的可逆DNA-配体组装体的方法。在这里,我们使用单分子力谱来研究一种相对于模型配合物具有更长半刚性连接体的双核钌配合物。平衡结果表明,其DNA亲和力比母体双核钌配合物高一个数量级,这可能是由于空间位阻缓解的DNA穿线插入机制。值得注意的是,动力学分析表明,与母体配合物相比,穿线插入所需的DNA伸长较少,且缔合速率快两个数量级。钌配合物使DNA双链体每个结合的配体伸长约0.3 nm以达到平衡插入状态,其能量景观相对于母体配合物有显著差异。配体饱和的DNA双链体的力学性质显示出更高的持久长度,这表明更长的半刚性连接体提供了足够的分子间距,使单个单体能够与碱基对完全堆叠,这与单体母体钌配合物相当。处于平衡穿线插入状态的DNA碱基对可能是完整的,并且钌配合物被与极性溶液隔离,从而提供可测量的单分子共聚焦荧光信号。所获得的结合染料的共聚焦荧光成像证实,沿着连接的DNA大部分是均匀插入的,这与其他插入剂一致。这项研究的结果,连同之前研究的钌配合物变体,说明了通过合理设计治疗和诊断小分子来靶向和修饰DNA双链体所指导的可调插入机制。

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