Department of Pharmacognosy, Semmelweis University, Budapest, Hungary.
Department of Pharmaceutical Chemistry, Semmelweis University, Budapest, Hungary.
PLoS One. 2022 Mar 17;17(3):e0265639. doi: 10.1371/journal.pone.0265639. eCollection 2022.
Isoflavonoids with various structural elements show a promising potential effect on central nervous system activities. Despite their favorable medicinal properties, the pharmacokinetic characteristics of this thoroughly investigated group of natural phenolics have only been described to a limited extent. Regarding the lack of information about the BBB permeability of isoflavones, isoflavanones, and pterocarpans found in Ononis species, the aim of our study was to investigate their physico-chemical properties influencing their absorption and distribution. Furthermore, we aimed to characterize the possible MAO-B inhibiting features of Ononis isoflavonoids in silico. Octanol-water partitioning and BBB-PAMPA permeability of formononetin, calycosin D, onogenin, sativanone, medicarpin and maackiain were assessed for the first time in our study. The log P values ranged from 2.21 to 3.03 and log D7.4 values from 2.48 to 3.03, respectively, indicating optimal polarity for BBB permeation. The results of PAMPA-BBB expressed as log Pe values fell between -5.60 and -4.45, predicting their good permeation capability as well. The effective permeability values showed structure-dependent differences, indicating that the pterocarpan type skeleton was the most preferred type, followed by isoflavanones, then isoflavones. The methoxy or methylenedioxy substitution of the same skeleton did not influence the permeability significantly, contrary to an additional hydroxyl group. Membrane retention showed a similar structure dependent pattern to that of effective permeability, ranging from 16% to 70%. For the identification of volumes of chemical space related to particular biological activities the ChemGPS-NP framework was used. The MAO-B inhibitory potency and selectivity were also predicted and validated. Based on our results, MAO-B inhibitory potency could be predicted with good precision, but in the case of selectivity, only the direction could be concluded (favors MAO-B or MAO-A), not the magnitude. Our finding reflects that Ononis isoflavonoid aglycones show an excellent fit with the suggested parameters for BBB permeability and this is the first study to confirm the highly favorable position of these natural products for MAO-B inhibition.
具有各种结构元素的异黄酮对中枢神经系统活动显示出有希望的潜在作用。尽管它们具有良好的药用特性,但这个经过充分研究的天然酚类群组的药代动力学特征仅在有限程度上被描述。关于在奥诺尼斯物种中发现的异黄酮、异黄酮烷和紫檀烷的 BBB 通透性缺乏信息,我们的研究旨在调查影响其吸收和分布的理化性质。此外,我们旨在通过计算来表征奥诺尼斯异黄酮的可能的 MAO-B 抑制特征。本研究首次评估了芒柄花黄素、毛蕊异黄酮 D、大豆苷元、萨替凡酮、芒柄花苷和马卡因的辛醇-水分配系数和 BBB-PAMPA 通透性。log P 值范围为 2.21 至 3.03,log D7.4 值范围为 2.48 至 3.03,表明对 BBB 渗透具有最佳的极性。以 log Pe 值表示的 PAMPA-BBB 的结果介于-5.60 和-4.45 之间,表明它们具有良好的渗透能力。有效渗透率值显示出结构依赖性差异,表明紫檀烷类型的骨架是最受欢迎的类型,其次是异黄酮烷,然后是异黄酮。同一骨架的甲氧基或亚甲二氧基取代并没有显著影响通透性,而额外的羟基则相反。膜保留显示出与有效渗透率相似的结构依赖性模式,范围从 16%到 70%。为了确定与特定生物活性相关的化学空间体积,使用了 ChemGPS-NP 框架。还预测和验证了 MAO-B 抑制效力和选择性。基于我们的结果,可以很好地预测 MAO-B 抑制效力,但就选择性而言,只能得出方向(有利于 MAO-B 或 MAO-A),而不能得出幅度。我们的发现反映了奥诺尼斯异黄酮苷元与 BBB 通透性的建议参数非常吻合,这是首次证实这些天然产物对 MAO-B 抑制具有高度有利位置的研究。