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DNA-interactive anticancer aza-anthrapyrazoles: biophysical and biochemical studies relevant to the mechanism of action.

机译:DNA相互作用抗癌氮杂蒽吡唑:与作用机理相关的生物物理和生化研究。

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The physicochemical and DNA-binding properties of anticancer 9-aza-anthrapyrazoles (9-aza-APs) were investigated and compared with the carbocyclic analogs losoxantrone (LX) and mitoxantrone (MX). Unlike their carbocyclic counterparts, the tested 9-aza-APs do not undergo self-aggregation phenomena. The pyridine nitrogen at position 9, missing in the carbocyclic derivatives, is involved in protonation equilibria at physiological pH. In addition, 9-aza-APs are electrochemically reduced at a potential intermediate between LX and MX. These data fully agree with quantum mechanical calculations. Binding to nucleic acids was examined by spectroscopic, chiroptical, and DNase I footprinting techniques as a function of ionic strength and base composition. The 9-aza-APs exhibit prominent affinity for DNA, with an important electrostatic contribution to the binding free energy. A very remarkable sequence preference pattern dramatically favors GC steps in double-helical DNA, whereas the carbocyclic reference compounds show a substantially lower selectivity for GC. A common DNA complexation geometry, considerably differing from that of MX, characterizes all anthrapyrazoles. Hence, bioisosteric substitution and ring-hydroxy deletion play an important role in defining the physicochemical properties and in modulating the affinity of anthrapyrazoles for the nucleic acid, the geometry of the intercalation complex, and the sequence specific contacts along the DNA chain. Drug stimulation of topoisomerase II-mediated DNA cleavage is remarkably attenuated in the aza-bioisosteric derivatives, suggesting that other non-enzyme-mediated cytotoxic mechanism(s), possibly connected with free radical production, are responsible for efficient cell killing. The biophysical and biochemical properties exhibited by 9-aza-APs contribute to clarifying the peculiar pharmacological profile of this family of compounds.
机译:研究了抗癌9-氮杂-蒽吡唑(9-氮杂-APs)的理化性质和DNA结合特性,并将其与碳环类似物losoxantrone(LX)和mitoxantrone(MX)进行了比较。与它们的碳环类似物不同,经过测试的9-氮杂-AP不会发生自聚集现象。碳环衍生物中缺失的9位吡啶氮在生理pH下参与质子平衡。另外,在LX和MX之间的电势中间,9-氮杂-AP被电化学还原。这些数据与量子力学计算完全吻合。通过光谱,手性和DNase I足迹技术检查与核酸的结合,作为离子强度和碱基组成的函数。 9-氮杂-AP对DNA表现出显着的亲和力,对结合自由能具有重要的静电作用。非常显着的序列偏好模式极大地有利于双螺旋DNA中的GC步骤,而碳环参考化合物对GC的选择性低得多。所有蒽吡唑均具有常见的DNA络合几何形状,与MX有很大不同。因此,生物等位取代和环羟基缺失在定义理化性质和调节蒽吡唑对核酸的亲和力,插层复合物的几何形状以及沿着DNA链的序列特异性接触方面起着重要作用。拓扑异构酶II介导的DNA裂解的药物刺激在氮杂-生物立体异构衍生物中显着减弱,表明可能与自由基产生有关的其他非酶介导的细胞毒性机制可导致有效的细胞杀伤。 9-氮杂-AP显示的生物物理和生化特性有助于阐明该化合物家族的独特药理特性。

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