喹诺酮类药物的抗病毒特性。

Sara Richter, Cristina Parolin, Manlio Palumbo, Giorgio Palù
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引用次数: 69

摘要

喹诺酮类药物是一类重要的广谱抗菌药物,其主要结构特征是1,4 -二氢-4-氧喹啉基部分在3位上有一个必需的羧基。喹诺酮类药物通过直接结合细菌染色体抑制原核生物II型拓扑异构酶,即DNA旋切酶,在少数情况下抑制拓扑异构酶IV。基于这些药物也能与病毒核酸或核蛋白复合物结合的假设,测试了几种喹诺酮类衍生物的抗病毒活性。事实上,抗菌氟喹诺酮类药物已被证明对牛痘病毒和乳头状病毒有效;这些初步结果有助于合成修饰喹诺酮类药物,优化抗病毒作用,提高选择性指数。在氟喹诺酮的哌嗪部分引入芳基,使其活性从抗菌转变为抗病毒,对艾滋病毒具有特异性作用。抗病毒活性似乎与转录水平的抑制作用有关,进一步的证据表明其作用机制是通过抑制Tat功能介导的。用胺基取代6号位置的氟,得到芳基-哌嗪基-6-氨基喹诺酮类药物,提高了对HIV-1的活性和选择性:该系列中最有效的化合物被证明通过干扰Tat-TAR相互作用来抑制病毒复制。基于对喹诺酮模板片段的额外化学干预,如引入核苷衍生物函数,进行了全面的SAR调查。到目前为止所获得的信息将有助于未来合理的药物设计,旨在开发具有最佳抗病毒活性的新化合物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Antiviral properties of quinolone-based drugs.

Quinolones represent an important class of broad-spectrum antibacterials, the main structural features of which are a 1,4 dihydro-4-oxo-quinolinyl moiety bearing an essential carboxyl group at position 3. Quinolones inhibit prokaryotic type II topoisomerases, namely DNA gyrase and, in a few cases, topoisomerase IV, through direct binding to the bacterial chromosome. Based on the hypothesis that these drugs could also bind to the viral nucleic acids or nucleoprotein-complexes, several quinolone derivatives were tested for their antiviral activity. Indeed, antibacterial fluoroquinolones were shown to be effective against vaccinia virus and papovaviruses; these preliminary results prompted the synthesis of modified quinolones to optimize antiviral action and improve selectivity index. The introduction of an aryl group at the piperazine moiety of the fluoroquinolone shifted the activity from antibacterial to antiviral, with a specific action against HIV. The antiviral activity seemed to be related to an inhibitory effect at the transcriptional level, and further evidence suggested a mechanism of action mediated by inhibition of Tat functions. Substitution of the fluorine at position 6 with an amine group to give aryl-piperazinyl-6-amino-quinolones improved the activity and selectivity against HIV-1: the most potent compound of this series was shown to inhibit virus replication through interference with Tat-TAR interaction. A comprehensive SAR investigation was performed based on additional chemical intervention to the quinolone template moiety, such as the introduction of nucleoside derivative functions. The information gained so far will be useful for future rational drug design aimed at developing new compounds with optimized antiviral activity.

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