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左与右:利用光学镊子探索手性穿入插层剂的作用。

Left versus right: Exploring the effects of chiral threading intercalators using optical tweezers.

机构信息

Department of Physics, Photonics and Optical Engineering, Bridgewater State University, Bridgewater, Massachusetts.

Department of Biology and Biological Engineering, Chalmers University of Technology, Gothenburg, Sweden.

出版信息

Biophys J. 2022 Oct 4;121(19):3745-3752. doi: 10.1016/j.bpj.2022.04.025. Epub 2022 Apr 25.

Abstract

Small-molecule DNA-binding drugs have shown promising results in clinical use against many types of cancer. Understanding the molecular mechanisms of DNA binding for such small molecules can be critical in advancing future drug designs. We have been exploring the interactions of ruthenium-based small molecules and their DNA-binding properties that are highly relevant in the development of novel metal-based drugs. Previously we have studied the effects of the right-handed binuclear ruthenium threading intercalator ΔΔ-[μ-bidppz(phen)Ru], or ΔΔ-P for short, which showed extremely slow kinetics and high-affinity binding to DNA. Here we investigate the left-handed enantiomer ΛΛ-[μ-bidppz(phen)Ru], or ΛΛ-P for short, to study the effects of chirality on DNA threading intercalation. We employ single-molecule optical trapping experiments to understand the molecular mechanisms and nanoscale structural changes that occur during DNA binding and unbinding as well as the association and dissociation rates. Despite the similar threading intercalation binding mode of the two enantiomers, our data show that the left-handed ΛΛ-P complex requires increased lengthening of the DNA to thread, and it extends the DNA more than double the length at equilibrium compared with the right-handed ΔΔ-P. We also observed that the left-handed ΛΛ-P complex unthreads three times faster than ΔΔ-P. These results, along with a weaker binding affinity estimated for ΛΛ-P, suggest a preference in DNA binding to the chiral enantiomer having the same right-handed chirality as the DNA molecule, regardless of their common intercalating moiety. This comparison provides a better understanding of how chirality affects binding to DNA and may contribute to the development of enhanced potential cancer treatment drug designs.

摘要

小分子 DNA 结合药物在临床治疗多种癌症方面显示出良好的效果。了解这些小分子与 DNA 结合的分子机制对于推进未来的药物设计至关重要。我们一直在探索钌基小分子的相互作用及其 DNA 结合特性,这对于开发新型金属基药物具有重要意义。此前,我们研究了右手双核钌穿入式嵌入剂 ΔΔ-[μ-bidppz(phen)Ru],简称 ΔΔ-P 的作用,它显示出非常缓慢的动力学和与 DNA 的高亲和力结合。在这里,我们研究了左手对映异构体 ΛΛ-[μ-bidppz(phen)Ru],简称 ΛΛ-P,以研究手性对 DNA 穿入嵌入的影响。我们采用单分子光阱实验来理解 DNA 结合和解离过程中发生的分子机制和纳米级结构变化,以及结合和解离速率。尽管这两种对映异构体的穿入嵌入结合模式相似,但我们的数据表明,左手 ΛΛ-P 配合物需要 DNA 更长的延长才能穿入,并且与右手 ΔΔ-P 相比,在平衡时将 DNA 延长两倍以上。我们还观察到,左手 ΛΛ-P 配合物的解旋速度比 ΔΔ-P 快三倍。这些结果以及对 ΛΛ-P 结合亲和力较弱的估计表明,无论其共同的嵌入部分如何,与 DNA 分子具有相同右手手性的手性对映异构体在 DNA 结合中具有偏好,这可能有助于开发潜在的癌症治疗药物。

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