首页> 外文期刊>Drug metabolism and pharmacokinetics. >In silico and in vitro approaches to elucidate the thermal stability of human UDP-glucuronosyltransferase (UGT) 1A9.
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In silico and in vitro approaches to elucidate the thermal stability of human UDP-glucuronosyltransferase (UGT) 1A9.

机译:通过计算机和体外方法阐明人U​​DP-葡萄糖醛酸转移酶(UGT)1A9的热稳定性。

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摘要

UDP-Glucuronosyltransferases (UGTs) are predominant drug metabolizing enzymes in the liver and extrahepatic tissues. Human UGT1A9 is uniquely stable against heat treatment. To understand the unique properties of UGT1A9, the three-dimensional structure was constructed by homology modeling using a crystal structure of TDP-epi-vancosaminyltransferase as template. Sequence alignment analysis revealed that 13 amino acid residues (Arg42, Lys91, Ala92, Tyr106, Gly111, Tyr113, Asp115, Asn152, Leu173, Leu219, His221, Arg222, and Glu241) are unique to UGT1A9 as compared with UGT1A7, UGT1A8 and UGT1A10. To examine the roles of these residues in the conformational stability of UGT1A9, molecular dynamics simulation of the structures was carried out at 310 K and 360 K in aqueous solution for 3.0 nanoseconds. Root mean square deviation analyses revealed that Arg42, Leu173, Leu219, His221 and Arg222 were responsible for the thermal stability. Root mean square fluctuation analyses and a dynamical cross correlation map revealed that Lys91, Ala92, Tyr106, Gly111, Tyr113, Asp115, Leu219, His221, Arg222 and Glu241 were responsible for the thermal stability. In vitro study using mutants of these residues demonstrated that all these amino acids may be collectively involved in the thermal stability of UGT1A9. The results presented here provide a molecular basis for the thermal stability of human UGT1A9.
机译:UDP-葡萄糖醛酸转移酶(UGT)是肝脏和肝外组织中的主要药物代谢酶。人UGT1A9具有独特的抗热处理稳定性。为了了解UGT1A9的独特特性,使用TDP-表-二十二烷基氨基转移酶的晶体结构作为模板,通过同源性建模构建了三维结构。序列比对分析显示,与UGT1A7,UGT1A8和UGT1A10相比,UGT1A9独有13个氨基酸残基(Arg42,Lys91,Ala92,Tyr106,Gly111,Tyr113,Asp115,Asn152,Leu173,Leu219,His221,Arg222和Glu241)是唯一的。为了检查这些残基在UGT1A9构象稳定性中的作用,在310 K和360 K的水溶液中进行了3.0纳秒的结构分子动力学模拟。均方根分析表明,Arg42,Leu173,Leu219,His221和Arg222负责热稳定性。均方根波动分析和动力学互相关图表明,Lys91,Ala92,Tyr106,Gly111,Tyr113,Asp115,Leu219,His221,Arg222和Glu241负责热稳定性。使用这些残基的突变体进行的体外研究表明,所有这些氨基酸都可能共同参与了UGT1A9的热稳定性。此处提供的结果为人类UGT1A9的热稳定性提供了分子基础。

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