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具有悬垂胺的取代惰性多核铂配合物:核酸的缩合/聚集和抑制与 DNA 相关的酶活性。

Substitution-Inert Polynuclear Platinum Complexes with Dangling Amines: Condensation/Aggregation of Nucleic Acids and Inhibition of DNA-Related Enzymatic Activities.

机构信息

Czech Academy of Sciences , Institute of Biophysics , Kralovopolska 135 , CZ-61265 Brno , Czech Republic.

Department of Chemistry , Virginia Commonwealth University , Richmond , Virginia 23284-2006 , United States.

出版信息

Inorg Chem. 2019 May 20;58(10):6804-6810. doi: 10.1021/acs.inorgchem.9b00254. Epub 2019 May 2.

Abstract

The substitution-inert polynuclear platinum complexes (SI-PPCs) are now recognized as a distinct subclass of platinum anticancer drugs with high DNA binding affinity. Here, we investigate the effects of SI-PPCs containing dangling amine groups in place of NH as ligands to increase the length of the molecule and therefore overall charge and its distribution. The results obtained with the aid of biophysical techniques, such as total intensity light scattering, gel electrophoresis, and atomic force microscopy, show that addition of dangling amine groups considerably augments the ability of SI-PPCs to condense/aggregate nucleic acids. Moreover, this enhanced capability of SI-PPCs correlates with their heightened efficiency to inhibit DNA-related enzymatic activities, such as those connected with DNA transcription, catalysis of DNA relaxation by DNA topoisomerase I, and DNA synthesis catalyzed by Taq DNA polymerase. Thus, the addition of the dangling amine groups resulting in structures of SI-PPCs, which differ so markedly from the derivatives of cisplatin used in the clinic, appears to contribute to the overall biological activity of these molecules.

摘要

取代稳定的多核铂配合物(SI-PPCs)现在被认为是一类具有高 DNA 结合亲和力的新型铂类抗癌药物。在这里,我们研究了用悬垂胺基取代 NH 作为配体来增加分子长度,从而增加整体电荷及其分布的 SI-PPC 的效果。借助于全强度光散射、凝胶电泳和原子力显微镜等生物物理技术获得的结果表明,添加悬垂胺基可大大增强 SI-PPC 凝聚/聚集核酸的能力。此外,这种 SI-PPC 的增强能力与其抑制与 DNA 相关的酶活性的效率相关,例如与 DNA 转录、DNA 拓扑异构酶 I 催化的 DNA 松弛以及由 Taq DNA 聚合酶催化的 DNA 合成相关的酶活性。因此,添加悬垂胺基导致 SI-PPC 的结构与临床上使用的顺铂衍生物明显不同,这似乎有助于这些分子的整体生物学活性。

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