Dications that target the DNA minor groove: compound design and preparation, DNA interactions, cellular distribution and biological activity.

W David Wilson, Binh Nguyen, Farial A Tanious, Amanda Mathis, James Edwin Hall, Chad E Stephens, David W Boykin
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引用次数: 158

Abstract

Fluorescence microscopy of trypanosomes from drug treated mice shows that biologically active heterocyclic diamidines that target the DNA minor groove bind rapidly and specifically to parasite kinetoplast DNA (k-DNA). The observation that the kinetoplast is destroyed, generally within 24 hours, after drug treatment is very important for understanding the biological mechanism, and suggests that the diamidines may be inhibiting some critical opening/closing step of circular k-DNA. Given the uncertainties in the biological mechanism, we have taken an empirical approach to generating a variety of synthetic compounds and DNA minor groove interactions for development of improved and new biological activities. Furamidine, DB75, is a diphenyl-diamidine that has the curvature to match the DNA minor groove as expected in the classical groove interaction model. Surprisingly, a linear diamidine with a nitrogen rich linker has significantly stronger binding than furamidine due to favorable linker and water-mediated DNA interactions. The water interaction is very dependant on compound structure since other linear compounds do not have similar interactions. Change of one phenyl of furamidine to a benzimidazole does not significantly enhance DNA binding but additional conversion of the furan to a thiophene (DB818) yields a compound with ten times stronger binding. Structural analysis shows that DB818 has a very favorable curvature for optimizing minor groove interactions. It is clear that there are many ways for compounds to bind to k-DNA and exert specific effects on kinetoplast replication and/or transcription that are required to obtain an active compound.

针对DNA次要凹槽的指示:化合物设计和制备,DNA相互作用,细胞分布和生物活性。
药物治疗小鼠的锥虫荧光显微镜显示,靶向DNA小槽的具有生物活性的杂环二胺能快速特异性地与寄生虫的着丝体DNA结合。通常在药物治疗后24小时内,着丝体就会被破坏,这对了解其生物学机制非常重要,并提示二胺类化合物可能抑制了环状k-DNA的一些关键的打开/关闭步骤。鉴于生物机制的不确定性,我们采取了经验方法来生成各种合成化合物和DNA小槽相互作用,以开发改进的和新的生物活性。Furamidine, DB75,是一种二苯基二胺,其曲率与经典凹槽相互作用模型中预期的DNA小凹槽相匹配。令人惊讶的是,具有富氮连接体的线性二胺由于良好的连接体和水介导的DNA相互作用,其结合能力明显强于呋喃胺。水的相互作用非常依赖于化合物的结构,因为其他线性化合物没有类似的相互作用。将呋喃的一个苯基转化为苯并咪唑不会显著增强DNA结合,但将呋喃转化为噻吩(DB818)产生的化合物的结合能力强10倍。结构分析表明,DB818具有非常有利的曲率来优化小槽相互作用。很明显,化合物与k-DNA结合并对着丝体复制和/或转录产生特定影响的方法有很多种,这是获得活性化合物所必需的。
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