神经活性类黄酮与GABAA受体复合物相互作用。

Feng Wang, Michael Shing, Yan Huen, Shui Ying Tsang, Hong Xue
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引用次数: 67

摘要

经典苯二氮卓类药物(BZs)是作用于中枢神经系统(CNS)的最广泛的处方药。它们通过与GABAA受体的bz位点结合,并通过离子通道复合物变构调节氯离子通量来发挥其治疗作用。考虑到经典bz的多重作用,其实用性的严重限制已经指导了许多研究,以开发新的bz位点配体,保留治疗效果和最小的副作用。从对中草药cns活性化学成分的研究来看,黄酮类化合物家族的一些成员对bz位点具有中等的结合亲和力。体内研究表明,这些化合物大多是GABAA受体的部分激动剂,只有少数黄酮类化合物具有拮抗活性。在有效的抗焦虑剂量下,部分激动性类黄酮的作用通常不伴有镇静和肌肉松弛的副作用。基于构效关系(SAR)研究,发现在黄酮主链上的C6和C3'上加入电负性基团可显著增加bz位点的结合亲和力。2′-羟基是黄酮类化合物与bz位点结合的关键基团。这些指导了几种具有高bz位点结合亲和力和体内活性的合成类黄酮的鉴定,并进一步进行了定量SAR研究,从而建立了几种药效团模型。这篇综述试图总结这些发现,这些发现导致了黄酮类化合物作为GABAA受体介导的疾病的潜在治疗药物的建立。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Neuroactive flavonoids interacting with GABAA receptor complex.

Classical benzodiazepines (BZs) are the most widely prescribed drugs acting on the central nervous system (CNS). They exert their therapeutic effects via binding to the BZ-site of GABAA receptors, and allosterically modulating the chloride flux through the ion channel complex. Given the multiple actions of classical BZs, the serious limitations to their usefulness have directed much research into development of novel ligands for the BZ-site with retained therapeutic effectiveness and minimal side effects. From the studies of CNS-active chemical constituents of medicinal herbs, some members of the family of flavonoids were demonstrated to have moderate binding affinities for the BZ-site. In vivo studies revealed that these compounds were mostly partial agonists of GABAA receptors, and only a few flavonoids were shown to possess antagonistic activities. At effective anxiolytic doses, the actions of partial agonistic flavonoids were often not accompanied by sedative and myorelaxant side effects. Based on structure-activity relationship (SAR) studies, incorporation of electronegative groups to the C6 and C3' on the flavone backbone was found to yield significant increases in the binding affinities for the BZ-site. It was also shown that 2'-hydroxyl was a critical moiety on flavonoids with regard to BZ-site binding. These have guided the identification of several synthetic flavonoids with high BZ-site binding affinity and in vivo activity, and further quantitative SAR studies resulted in the development of several pharmacophore models. This review attempts to summarize these findings, which has led to the establishment of flavonoids as potential therapeutics for GABAA receptor-mediated disorders.

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