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首页> 外文期刊>RSC Advances >C-8 Mannich base derivatives of baicalein display improved glucuronidation stability: exploring the mechanism by experimentation and theoretical calculations
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C-8 Mannich base derivatives of baicalein display improved glucuronidation stability: exploring the mechanism by experimentation and theoretical calculations

机译:Baicalein的C-8 Mannich基础衍生物显示出改善的葡萄糖型稳定性:通过实验和理论计算探索机制

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摘要

Baicalein (BA), a natural flavonoid compound, possesses many desirable pharmacological activities. However, poor solubility and extensive metabolism by human UDP-glucuronosyltransferases (UGTs) strongly restrict the clinical applications of BA. We previously reported that two C-8 Mannich base derivatives of BA (BA-a and BA-j) displayed enhanced solubility and anti-cyclin dependent kinase 1 activity, yet the metabolic stabilities of these compounds remained unknown. This study aimed to evaluate the in vitro glucuronidation stability of these BA derivatives and to explore the key factors affecting the UGT-mediated biotransformation. The results showed that the glucuronidation stabilities of these BA derivatives were much higher than BA. BA-a exhibited 12-fold and BA-j exhibited 5-fold improved stability in human liver S9, while in human intestine S9, BA-a and BA-j exhibited 42-fold and 33-fold improved stability, respectively. Further investigations found that the major glucuronidation site(s) were changed from 7-OH and 6-OH in BA to 6-OH in the BA derivatives. Also, both the involved enzymes and their catalytic efficacy in 6-O-glucuronidation of BA derivatives were much lower than that of BA. The formation of an intramolecular hydrogen bond between the C-8 Mannich base substituents and C-7 phenolic groups played a predominant role in these glucuronidation changes. The calculated bond dissociation energy (BDE) of each phenolic group in BA and its derivatives agreed well with their glucuronidation activities. All these findings bring new insights into the structure-glucuronidation relationship and provide a practical strategy for the structural modification to improve the glucuronidation stability of drug candidates, especially for those phenolic compounds.
机译:黄芩素(BA),天然类黄酮化合物,具有许多理想的药理活性。然而,溶解性差和由人UDP-葡糖醛酸(转移酶)广泛代谢强烈限制BA的临床应用。我们以前报道,两个C-8曼尼希碱BA的衍生物(BA-a和BA-j)的显示的增强的溶解性和抗细胞周期蛋白依赖性激酶1活性,但这些化合物的代谢稳定性不明。这项研究的目的是评估这些BA衍生品的体外葡醛酸稳定性,并探讨影响UGT介导的生物转化的关键因素。结果表明,这些BA衍生物葡糖醛酸稳定性比BA高得多。 BA-一个表现出12倍和BA-J显示出5倍的人肝S9改善的稳定性,而在人肠S9,BA-a和BA-J显示出42倍和,分别为33倍提高的稳定性。进一步的研究发现,主要葡萄糖醛酸化位点(一个或多个)从7-OH和6-OH在BA在BA衍生物改为6-OH。此外,这两个所涉及的酶和它们在BA衍生物的6-O-葡糖醛酸催化效力明显高于BA的低得多。在C-8曼尼希碱的取代基和C-7的酚基之间的分子内氢键的形成起到了这些葡萄糖醛酸化的变化的主导作用。在BA和其衍生物的每个酚基团的所计算出的键离解能(BDE)与他们的葡萄糖醛酸化活动吻合。所有这些发现带来新的见解的结构 - 葡糖醛酸结合关系,为结构修饰,以改善候选药物的葡糖醛酸稳定性提供一种实用的策略,特别是对那些酚类化合物。

著录项

  • 来源
    《RSC Advances》 |2015年第109期|共9页
  • 作者单位

    Laboratory of Pharmaceutical Resource Discovery Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian China.;

    State Key Laboratory of Fine Chemicals Dalian University of Technology Dalian 116012 China;

    College of Chemistry Dalian University of Technology Dalian 116024 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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