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Structure-activity relationships of ruthenium(II) polypyridyl complexes with redox-active intercalating ligands: Correlation between redox activity, DNA cleavage capability and cytotoxicity.

机译:钌(II)聚吡啶基配合物与氧化还原活性的嵌入配体的结构活性关系:氧化还原活性,DNA裂解能力和细胞毒性之间的相关性。

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摘要

The investigation and development of transition metal complexes as cancer chemotherapeutics has gained a lot of interest in the past few decades and has become a promising area of research. Metal complexes of platinum and ruthenium in particular that have demonstrated success as anticancer drugs or are under exploration currently for clinical use are highlighted in Chapter 1.;Chapter 2 describes studies undertaken to understand the neurotoxicity of ruthenium(II) polypyridyl complexes (RPCs), including toxicity in mice and inhibition of the enzyme acetylcholinesterase (AChE), as previous work by Dwyer demonstrated that RPCs could be acutely toxic in mice, presumably due to their inhibition of AChE. Several ruthenium complexes were screened for their enzyme inhibitory potency which was correlated to their structural properties including size, charge, and lipophilicity. In addition, the inhibitory activity of the compounds was correlated to their animal toxicity data so as to understand the potential mode of action of the RPCs in vivo .;Chapter 3 describes the synthesis of a series of novel ruthenium(II) polypyridyl complexes and their characterization. These complexes were prepared in an effort to tune the reduction potential of the redox-active intercalating ligand (RAIL) to potentials slightly above and below those observed for the Ru-tatpp complexes. The redox activity of ruthenium-tatpp complexes appears to be responsible for their DNA cleavage activity and these analogues, with slightly different reduction potentials, should give us additional insight into the activity of this class of RPCs.;In Chapter 4, the electrochemical properties of the RPCs were measured and correlated with their ability to cause DNA cleavage under reducing conditions with GSH. Complexes with reduction potentials less (more positive) than the redox couple of GSH/GSSG were shown to efficiently cleave DNA. However complexes with higher reduction potentials than the biological reducing agent were not observed to cleave DNA under the same conditions. Cytotoxicity screening of these complexes in human non-small cell lung carcinoma cell lines (NSCLC -- H358 and HOP-62) and breast adenocarcinoma cell line (MCF-7), as well as the non-malignant cell line (MCF-10) was performed and described in Chapter 4.
机译:在过去的几十年中,作为癌症化学治疗剂的过渡金属配合物的研究和开发引起了人们的极大兴趣,并且已经成为一个有前途的研究领域。特别是铂和钌的金属配合物已证明已成功用作抗癌药物或正在临床研究中,在第1章中重点介绍;第二章介绍了旨在了解钌(II)聚吡啶基配合物(RPC)的神经毒性的研究,包括对小鼠的毒性和对乙酰胆碱酯酶(AChE)的抑制,如Dwyer先前的研究表明RPCs在小鼠中可能具有剧毒,可能是由于它们对AChE的抑制作用。筛选了几种钌络合物的酶抑制效能,该酶抑制效能与其结构特性(包括大小,电荷和亲脂性)相关。此外,化合物的抑制活性与它们的动物毒性数据相关,以便了解RPC在体内的潜在作用方式。;第3章描述了一系列新型钌(II)多吡啶基配合物的合成及其表征。制备这些配合物是为了将氧化还原活性嵌入配位体(RAIL)的还原电位调节到略高于和低于Ru-tatpp配合物观察到的电位。钌-tatpp复合物的氧化还原活性似乎是其DNA切割活性的原因,这些类似物的还原电位略有不同,应该使我们对这类RPC的活性有更多的了解。在第4章中,测量了RPC,并与它们在还原条件下用GSH引起DNA裂解的能力相关。还原电位比GSH / GSSG的氧化还原对低(更正)的复合物可有效切割DNA。然而,在相同条件下未观察到还原电位比生物还原剂高的复合物裂解DNA。在人非小细胞肺癌细胞系(NSCLC-H358和HOP-62)和乳腺癌细胞系(MCF-7)以及非恶性细胞系(MCF-10)中对这些复合物的细胞毒性筛选在第4章中进行了描述。

著录项

  • 作者

    Narh, Eugenia Soyo.;

  • 作者单位

    The University of Texas at Arlington.;

  • 授予单位 The University of Texas at Arlington.;
  • 学科 Inorganic chemistry.;Biochemistry.;Oncology.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 141 p.
  • 总页数 141
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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