Durdagi Serdar, Reis Heribert, Papadopoulos Manthos G, Mavromoustakos Thomas
Institute of Organic and Pharmaceutical Chemistry, The National Hellenic Research Foundation, 48 Vas. Constantinou Avenue, 11635 Athens, Greece.
Bioorg Med Chem. 2008 Aug 1;16(15):7377-87. doi: 10.1016/j.bmc.2008.06.019. Epub 2008 Jun 14.
The C-1'-dithiolane Delta(8)-tetrahydrocannabinol (Delta(8)-THC) amphiphilic analogue (-)-2-(6a,7,10,10a-tetrahydro-6,6,9-trimethylhydroxy-6H-dibenzo[b,d]pyranyl)-2-hexyl-1,3-dithiolane (AMG3) is considered as one of the most potent synthetic analgesic cannabinoid (CB) ligands. Its structure is characterized by rigid tricyclic and flexible alkyl chain segments. Its conformational properties have not been fully explored. Structure-activity relationship (SAR) studies on classical CBs showed that the alkyl side chain is the most critical structural part for the receptor activation. However, reported low energy conformers of classical CB analogues vary mainly in the conformation of their alkyl side chain segment. Therefore, comparative molecular dynamics (MD) simulations of low energy conformers of AMG3 were performed in order to investigate its structural and dynamical properties in two different systems. System-I includes ligand and amphoteric solvent DMSO, simulating the biological environment and system-II includes ligand at active site of the homology models of CB1 and CB2 receptors in the solvent. The trajectory analysis results are compared for the systems I and II. In system-I, the dihedral angle defined between aromatic ring and dithiolane ring of AMG3 shows more resistance to be transformed into another torsional angle and the dihedral angle adjacent to dithiolane ring belonging in the alkyl chain has flexibility to adopt gauche+/- and trans dihedral angles. The rest of the dihedral angles within the alkyl chain are all trans. These results point out that wrapped conformations are dynamically less favored in solution than linear conformations. Two possible plane angles defined between the rigid and flexible segments are found to be the most favored and adopting values of approximately 90 degrees and approximately 140 degrees. In system-II, these values are approximately 90 degrees and approximately 120 degrees. Conformers of AMG3 at the CB1 receptor favor to establish a cis conformation defined between aromatic and dithiolane ring and a trans conformation in the CB2 receptor. These different orientations of ligand inside the binding pocket of CB1 and CB2 receptors may explain its different binding affinity in the two receptors. The results of this study can be applied to other synthetic classical CB ligands to produce low energy conformations and can be of general use for the molecules possessing flexible alkyl chain(s). In addition, this study can be useful when restraint of the alkyl chain is sought for optimizing drug design.
C-1'-二硫戊环Δ(8)-四氢大麻酚(Δ(8)-THC)两亲类似物(-)-2-(6a,7,10,10a-四氢-6,6,9-三甲基羟基-6H-二苯并[b,d]吡喃基)-2-己基-1,3-二硫戊环(AMG3)被认为是最有效的合成镇痛大麻素(CB)配体之一。其结构的特征是具有刚性三环和柔性烷基链段。其构象性质尚未得到充分研究。对经典CB的构效关系(SAR)研究表明,烷基侧链是受体激活最关键的结构部分。然而,报道的经典CB类似物的低能构象主要在其烷基侧链段的构象上有所不同。因此,进行了AMG3低能构象的比较分子动力学(MD)模拟,以研究其在两种不同体系中的结构和动力学性质。体系-I包括配体和两性溶剂二甲基亚砜(DMSO),模拟生物环境,体系-II包括在溶剂中CB1和CB2受体同源模型活性位点的配体。对体系I和体系II的轨迹分析结果进行了比较。在体系-I中,AMG3芳香环与二硫戊环之间定义的二面角显示出更难转变为另一个扭转角,而属于烷基链的与二硫戊环相邻的二面角具有采用gauche+/-和反式二面角的灵活性。烷基链内其余的二面角均为反式。这些结果表明,在溶液中,包裹构象在动力学上不如线性构象有利。发现刚性和柔性段之间定义的两个可能的平面角是最有利的,其值约为90度和约140度。在体系-II中,这些值约为90度和约120度。AMG3在CB1受体处的构象倾向于在芳香环和二硫戊环之间建立顺式构象,而在CB2受体处为反式构象。配体在CB1和CB2受体结合口袋内的这些不同取向可能解释了其在两种受体中的不同结合亲和力。本研究结果可应用于其他合成经典CB配体以产生低能构象,并且对于具有柔性烷基链的分子具有普遍用途。此外,当寻求限制烷基链以优化药物设计时,本研究可能会有所帮助。