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利托那韦分子的构象能量景观

Conformational Energy Landscape of the Ritonavir Molecule.

作者信息

Chakraborty Debayan, Sengupta Neelanjana, Wales David J

机构信息

Department of Chemistry, University of Cambridge , Lensfield Road, Cambridge CB2 1EW, United Kingdom.

Physical Chemistry Division, CSIR-National Chemical Laboratory , Dr. Homi Bhaba Road, Pune 411008, India.

出版信息

J Phys Chem B. 2016 May 19;120(19):4331-40. doi: 10.1021/acs.jpcb.5b12272. Epub 2016 May 10.

Abstract

Conformational polymorphism of ritonavir, a well-known pharmaceutical drug, is intricately linked to its efficacy in the treatment of acquired immunodeficiency syndrome (AIDS). Polymorphic transition from the crystalline form I to form II leads to the loss of bioactivity. The constituent ritonavir molecules adopt a trans configuration about the carbamate torsion angle in the form I crystal, and a cis configuration in the form II crystal. Investigating the energetics and mechanistic features of conformational transitions at the single molecule level is a key step toward decoding the complex features of the solid state polymorphism. In this work, we employ the energy landscape framework to investigate the conformational transitions of an isolated ritonavir molecule. The landscape is explored using discrete path sampling (DPS) and visualized in terms of disconnectivity graphs. We identify two distinct funnels corresponding to the two molecular forms that are identified by crystallography. The two regions can be reliably distinguished using the carbamate torsion angle, and the corresponding interconversion rates are predicted to follow Arrhenius behavior. The results provide mechanistic insight into pathways for cis ↔ trans interconversion at the molecular level and may also help in elucidating the polymorphic transitions in the crystal state.

摘要

著名药物利托那韦的构象多态性与其治疗获得性免疫缺陷综合征(艾滋病)的疗效密切相关。从晶型I到晶型II的多晶型转变会导致生物活性丧失。在晶型I晶体中,利托那韦分子的组成部分围绕氨基甲酸酯扭转角呈反式构型,而在晶型II晶体中呈顺式构型。在单分子水平上研究构象转变的能量学和机制特征是解读固态多态性复杂特征的关键一步。在这项工作中,我们采用能量景观框架来研究孤立利托那韦分子的构象转变。使用离散路径采样(DPS)探索该景观,并根据不连通图进行可视化。我们识别出对应于晶体学确定的两种分子形式的两个不同漏斗。可以使用氨基甲酸酯扭转角可靠地区分这两个区域,并且预测相应的相互转化率遵循阿伦尼乌斯行为。这些结果为分子水平上顺式⇄反式相互转化的途径提供了机制性见解,也可能有助于阐明晶体状态下的多晶型转变。

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