In silico insights: chemical and structural characteristics associated with uridine diphosphate-glucuronosyltransferase substrate selectivity.

IF 2.4 4区 医学 Q3 PHARMACOLOGY & PHARMACY
P A Smith, M J Sorich, R A McKinnon, J O Miners
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引用次数: 22

Abstract

1. Undesirable absorption, distribution, metabolism, excretion properties are the cause of many drug development failures and this has led to the need to identify such problems earlier in the development process. This work highlights computational (in silico) approaches used to identify characteristics influencing the metabolism of uridine diphosphate (UDP)-glucuronosyltransferase (UGT) substrates. Uridine diphosphate-glucuronosyltransferase facilitates conjugation between glucuronic acid and a nucleophilic site within a substrate and is one of the major drug-metabolizing enzymes. 2. An understanding of the relevant structural and chemical characteristics of the ligand and the enzyme active site will lead to greater utilization of metabolically relevant structural information in drug design. However, an X-ray crystal structure of UGT is not yet available, little has been reported about important structurally or catalytically relevant amino acids and only recently has the reported substrate profile of UGT isoforms reached an interpretable level. 3. A database of all the known substrates and non-substrates for each human UGT isoform was assembled and a range of modelling approaches assessed. Currently, pharmacophore models developed using Catalyst (Accelrys, San Diego, CA, USA) indicate that substrates of the UGT1A family share two key hydrophobic regions 3 and 6-7 A from the site of glucuronidation in a well-defined spatial geometry. Furthermore, two-dimensional quantitative structure-activity relationship models show significant reliance on substrate lipophilicity and a range of other descriptors that are known to capture information relevant to ligand-protein interactions. 4. In conclusion, substrate-based modelling of UGT appears both useful and feasible, with significant potential for determining aspects of chemical structure associated with metabolism and to quantify the nature of the relationship for UGT substrates. The development of a novel, user-defined 'glucuronidation feature' for alignment was crucial to the development of pharmacophore-based UGT models.

计算机洞察:与尿苷二磷酸-葡萄糖醛基转移酶底物选择性相关的化学和结构特征。
1. 不良的吸收、分布、代谢和排泄特性是许多药物开发失败的原因,这导致需要在开发过程的早期识别这些问题。这项工作强调了用于识别影响尿苷二磷酸(UDP)-葡萄糖醛基转移酶(UGT)底物代谢的特征的计算(计算机)方法。尿苷二磷酸-葡萄糖醛酸基转移酶促进葡萄糖醛酸与底物内的亲核位点之间的偶联,是主要的药物代谢酶之一。2. 了解配体和酶活性位点的相关结构和化学特征将有助于在药物设计中更好地利用代谢相关的结构信息。然而,UGT的x射线晶体结构尚未得到,关于重要结构或催化相关氨基酸的报道很少,直到最近才报道UGT异构体的底物谱达到可解释的水平。3.组装了每个人类UGT同种异构体的所有已知底物和非底物的数据库,并评估了一系列建模方法。目前,使用Catalyst (Accelrys, San Diego, CA, USA)开发的药效团模型表明,UGT1A家族的底物在一个明确的空间几何结构中,从葡萄糖醛酸化位点共享两个关键疏水区域3和6- 7a。此外,二维定量结构-活性关系模型显示出对底物亲脂性和一系列已知捕获与配体-蛋白质相互作用相关信息的其他描述符的显著依赖。4. 总之,基于底物的UGT建模似乎既有用又可行,具有确定与代谢相关的化学结构方面的重大潜力,并量化UGT底物之间关系的性质。开发一种新的、用户自定义的“葡萄糖醛酸化特征”用于校准对于基于药物团的UGT模型的开发至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Clinical and Experimental Pharmacology and Physiology
Clinical and Experimental Pharmacology and Physiology PHARMACOLOGY & PHARMACY-PHYSIOLOGY
自引率
0.00%
发文量
128
期刊介绍: Clinical and Experimental Pharmacology and Physiology is an international journal founded in 1974 by Mike Rand, Austin Doyle, John Coghlan and Paul Korner. Our focus is new frontiers in physiology and pharmacology, emphasizing the translation of basic research to clinical practice. We publish original articles, invited reviews and our exciting, cutting-edge Frontiers-in-Research series’.
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