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Acridine and acridone derivatives, anticancer properties and synthetic methods: where are we now?

机译:cr啶和a啶酮衍生物,抗癌特性和合成方法:我们现在在哪里?

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Acridine derivatives are interesting chemotherapeutic agents that were first used as antibacterial and antiparasite agents. In this review we wish to concentrate our attention on the anticancer properties of acridines used in clinics since the 1970's. Based on recent results, an outlook on antitumour acridine chemotherapy will be proposed. The biological activity of acridines is mainly attributed to the planarity of these aromatic structures, which can intercalate within the double-stranded DNA structure, thus interfering with the cellular machinery. Recent understanding of the mode of action of acridines leads to continuous and exciting research in this heterocyclic family. Indeed, biological targets such as topoisomerases I and II, telomerase/telomere and protein kinases emerge and allow the design of novel acridine-based patterns. This review further pinpoints the latest progress in the development of anticancer agents based on naturally occurring and synthetic acridines (e.g. acridones, pyridoacridines); for this matter in vitro/in vivo studies and clinical trial results will be discussed. The DNA-affinic property of acridine is also useful to vectorise drugs into cell nuclei and some applications in hypoxia-selective treatment, platinum or N-mustard derived conjugates will be reported. Some other properties including inhibition of multidrug resistance or potential impact on Alzheimer disease will be treated. It is noteworthy that the position and the nature of the substituent on the heterocyclic core are determinants for the biological property and selectivity observed. So, we wish also to disclose a summary of recent synthetic methodologies developed for acridine synthesis.
机译:cr啶衍生物是有趣的化学治疗剂,首先被用作抗菌和抗寄生虫剂。在本综述中,我们希望将注意力集中在自1970年代以来临床上使用的a啶的抗癌特性。基于最近的结果,将提出抗肿瘤a啶化学疗法的前景。 a啶的生物活性主要归因于这些芳族结构的平面性,它们可以插入双链DNA结构内,从而干扰细胞机制。对of啶的作用方式的最新理解导致对该杂环家族的连续和令人兴奋的研究。实际上,出现了诸如拓扑异构酶I和II,端粒酶/端粒和蛋白激酶的生物学靶标,并允许设计基于a啶的新型模式。这篇综述进一步指出了基于天然存在的和合成的cr啶(例如cri啶,吡啶并r啶)的抗癌药开发的最新进展;为此,将讨论体外/体内研究和临床试验结果。 cr啶的DNA亲和力性质也可用于将药物向量化到细胞核中,并且在缺氧选择性治疗的一些应用中,将报道铂或N-芥末衍生的缀合物。其他一些特性包括多药耐药性的抑制或对阿尔茨海默氏病的潜在影响也将得到治疗。值得注意的是,杂环核上取代基的位置和性质是所观察到的生物学性质和选择性的决定因素。因此,我们也希望披露为a啶合成开发的最新合成方法的摘要。

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