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3-乙酰-11-酮基-β-乳香酸和11-酮基-β-乳香酸在人体体外制剂中的代谢概况、种属差异及生物活性变化

Metabolic Profile of 3-Acetyl-11-Keto-β-Boswellic Acid and 11-Keto-β-Boswellic Acid in Human Preparations In Vitro, Species Differences, and Bioactivity Variation.

作者信息

Cui Yonglei, Tian Xiangge, Ning Jing, Wang Chao, Yu Zhenlong, Wang Yan, Huo Xiaokui, Jin Lingling, Deng Sa, Zhang Baojing, Ma Xiaochi

机构信息

College of Pharmacy, Academy of Integrative Medicine, Dalian Medical University, 9 West Section, Lvshun South Road, Lvshunkou District, Dalian, 116044, China.

College of Basic Medical Science, Dalian Medical University, Dalian, China.

出版信息

AAPS J. 2016 Sep;18(5):1273-1288. doi: 10.1208/s12248-016-9945-7. Epub 2016 Jun 21.

Abstract

3-Acetyl-11-keto-β-boswellic acid (AKBA) and 11-keto-β-boswellic acid (KBA) are widely used in the clinic as anti-inflammatory drugs. However, these drugs have the poor bioavailability, which may be caused by their extensive metabolism. In this study, we systemically characterized both phase I and II metabolism of AKBA and KBA in vitro. In total, four major metabolites were firstly biosynthesized and identified using 1D and 2D NMR spectroscopy. Among them, three metabolites were novel. The kinetic parameters (K m , V max , CL int, and K i ) were also analyzed systematically in various biological samples. Finally, the deacetylation of AKBA and hydroxylation of KBA were confirmed to be the major metabolic pathways based on their large CL int and the high amounts of KBA (46.7%) and hydroxylated KBA (50.8%) along with a low amount of AKBA (2.50%) in human primary hepatocytes. Carboxylesterase 2 (CE2) selectively catalyzed the deacetylation of AKBA to form KBA. Although CYP3A4, CYP3A5, and CYP3A7 catalyzed the metabolism of KBA, CYP3A4 played a predominant role in the hydroxylation reaction of KBA in human. Notably, deacetylation and regioselective hydroxylation exhibited considerable species differences. Deacetylation was only observed in human liver microsomes and primary human hepatocytes; 21- and 20-mono-hydroxylation of KBA were primarily observed in human, monkey, and dog; and 16- and 30-mono-hydroxylation were observed in other species. More importantly, all four mono-hydroxylation metabolites exhibited a moderate anti-inflammatory activity. The 21- and 20-hydroxylation metabolites inhibited the expression of iNOS, the LPS-induced activation of IkBα and p65 phosphorylation, and suppressed p65 nuclear translocation in RAW264.7 cells.

摘要

3-乙酰基-11-酮基-β-乳香酸(AKBA)和11-酮基-β-乳香酸(KBA)作为抗炎药物在临床上被广泛使用。然而,这些药物的生物利用度较差,这可能是由它们广泛的代谢所导致的。在本研究中,我们在体外系统地表征了AKBA和KBA的I相和II相代谢。总共,首先利用一维和二维核磁共振光谱法生物合成并鉴定了四种主要代谢物。其中,三种代谢物是新的。还在各种生物样品中系统地分析了动力学参数(Km、Vmax、CLint和Ki)。最后,基于AKBA的大CLint以及人原代肝细胞中大量的KBA(46.7%)和羟基化KBA(50.8%)以及少量的AKBA(2.50%),证实AKBA的脱乙酰化和KBA的羟基化是主要代谢途径。羧酸酯酶2(CE2)选择性地催化AKBA的脱乙酰化以形成KBA。虽然CYP3A4、CYP3A5和CYP3A7催化KBA的代谢,但CYP3A4在人KBA的羟基化反应中起主要作用。值得注意的是,脱乙酰化和区域选择性羟基化表现出相当大的种属差异。脱乙酰化仅在人肝微粒体和人原代肝细胞中观察到;KBA的21-和20-单羟基化主要在人、猴和狗中观察到;而在其他物种中观察到16-和30-单羟基化。更重要的是,所有四种单羟基化代谢物均表现出中等程度的抗炎活性。21-和20-羟基化代谢物抑制RAW264.7细胞中诱导型一氧化氮合酶(iNOS)的表达、脂多糖(LPS)诱导的IkBα激活和p65磷酸化,并抑制p65核转位。

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