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Interaction of small molecules with nucleic acid targets: From RNA secondary structure to the ribosome.

机译:小分子与核酸靶标的相互作用:从RNA二级结构到核糖体。

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摘要

Nucleic acids have proven to be viable targets for small molecule drugs. While many examples of such drugs are detailed in the literature, only a select few have found practical use in a clinical setting. These currently employed nucleic acid targeting therapies suffer from either debilitating off-target side effects or succumb to a resistance mechanism of the target. The need for new small molecules that target nucleic acids is evident. However, designing a novel drug to bind to DNA or RNA requires a detailed understanding of exactly what binding environments each nucleic acid presents. In an effort to broaden this knowledge, the work presented in this thesis details the binding location and affinity of known and novel nucleic acid binding small molecules with targets ranging from simple RNA secondary structure all the way to the complex structure of ribosomal RNA. Specifically, it is shown that the anthracycline class of antineoplastics prefer to bind at or near mismatch base pairs in both physiologically relevant iron responsive element RNA hairpin constructs as well as DNA hairpin constructs presenting mismatched base pairs. Also characterized in this thesis is a novel class of topoisomerase II / histone deacetylase inhibitor conjugates that display a unique affinity for DNA over RNA. Finally, the novel class of macrolide-peptide conjugates, known as peptolides, are shown to retain potent translation inhibition of the prokaryotic ribosome. The binding pocket of the peptolides, including a crevice previously unreachable by macrolides that extends away from the peptidyl transferase center toward the subunit interface, is confirmed in detail via chemical footprinting of the 70S ribosome. Overall, the identification of a novel binding site for the anthracycline class of drugs and the characterization of the two novel drug designs presented in this thesis will undoubtedly aid in the effort to design and discover new molecules that aim for nucleic acid targets. For example, the anthracycline derivative topoisomerase II / histone deacetylase inhibitor conjugates, with their differential mode of nucleic acid binding, may prove to have a unique side effect profile in a therapeutic application. The peptolide compounds also have the potential to be applied as novel antibiotics as they bind to an area of the prokaryotic ribosome unrelated to known macrolide resistance mutations. Furthermore, as a result of the observation of this thesis work that some peptolides also posses eukaryotic translation inhibition capabilities, they could prove to be useful in preventing the growth of rapidly proliferating eukaryotic cells such as plasmodium, leishmania, or tumor cells. Additionally, different head groups could be utilized in creating new peptolides; for example, an oxazolidinone antibiotic could be employed to sample a different binding area of the ribosome.
机译:核酸已被证明是小分子药物的可行靶标。尽管文献中详细介绍了此类药物的许多示例,但只有少数几个在临床环境中得到实际使用。这些当前使用的核酸靶向疗法遭受使靶外副作用衰弱或屈服于靶标的抗性机制的痛苦。显然需要靶向核酸的新小分子。但是,设计一种与DNA或RNA结合的新型药物需要对每种核酸所呈现的结合环境的准确了解。为了拓宽这一知识范围,本文提出的工作详细介绍了已知和新型核酸结合小分子的结合位置和亲和力,其靶标的范围从简单的RNA二级结构一直到核糖体RNA的复杂结构。具体地,显示出蒽环类的抗肿瘤药更倾向于结合在生理相关的铁反应元件RNA发夹构建体以及呈现错配碱基对的DNA发夹构建体中的错配碱基对处或附近。本论文还表征了一类新型的拓扑异构酶II /组蛋白脱乙酰基酶抑制剂共轭物,其对DNA的亲和力超过RNA。最后,新型大环内酯-肽共轭物,称为肽,显示出保留了对原核生物核糖体的有效翻译抑制作用。通过70S核糖体的化学印迹可以详细确认肽段的结合口袋,包括以前大环内酯类无法到达的,从肽基转移酶中心向亚基界面延伸的缝隙。总体而言,本文蒽环类药物的新型结合位点的鉴定和两种新型药物设计的表征无疑将有助于设计和发现针对核酸靶标的新分子。例如,蒽环类衍生物拓扑异构酶II /组蛋白脱乙酰基酶抑制剂结合物,具有核酸结合的不同模式,在治疗应用中可能被证明具有独特的副作用。肽化物化合物还具有作为新型抗生素的潜力,因为它们与原核生物核糖体的某个区域结合,而该区域与已知的大环内酯类药物耐药性突变无关。此外,由于观察到本论文的结果,某些肽类化合物也具有真核翻译抑制能力,因此它们可被证明可用于阻止迅速增殖的真核细胞,如纤毛,利什曼原虫或肿瘤细胞的生长。另外,可以使用不同的头基来制备新的肽肽。例如,恶唑烷酮抗生素可用于取样核糖体的不同结合区域。

著录项

  • 作者

    Canzoneri, Joshua Craig.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Pharmacy sciences.;Physical chemistry.;Biochemistry.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 207 p.
  • 总页数 207
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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