JL Chambers Biomedical/Biotechnology Research Institute, North Carolina Central University, Durham, North Carolina 27707, USA.
J Biol Chem. 2011 Sep 23;286(38):33422-35. doi: 10.1074/jbc.M111.261651. Epub 2011 Jul 27.
The classical cannabinoid agonist HU210, a structural analog of (-)-Δ(9)-tetrahydrocannabinol, binds to brain cannabinoid (CB1) receptors and activates signal transduction pathways. To date, an exact molecular description of the CB1 receptor is not yet available. Utilizing the minor binding pocket of the CB1 receptor as the primary ligand interaction site, we explored HU210 binding using lipid bilayer molecular dynamics (MD) simulations. Among the potential ligand contact residues, we identified residues Phe-174(2.61), Phe-177(2.64), Leu-193(3.29), and Met-363(6.55) as being critical for HU210 binding by mutational analysis. Using these residues to guide the simulations, we determined essential cannabinoid-binding domains in the CB1 receptor, including the highly sought after hydrophobic pocket important for the binding of the C3 alkyl chain of classical and nonclassical cannabinoids. Analyzing the simulations of the HU210-CB1 receptor complex, the CP55940-CB1 receptor complex, and the (-)-Δ(9)-tetrahydrocannabinol-CB1 receptor complex, we found that the positioning of the C3 alkyl chain and the aromatic stacking between Trp-356(6.48) and Trp-279(5.43) is crucial for the Trp-356(6.48) rotamer change toward receptor activation through the rigid-body movement of H6. The functional data for the mutant receptors demonstrated reductions in potency for G protein activation similar to the reductions seen in ligand binding affinity for HU210.
经典大麻素激动剂 HU210 是(-)-Δ(9)-四氢大麻酚的结构类似物,与大脑大麻素 (CB1) 受体结合并激活信号转导途径。迄今为止,CB1 受体的确切分子描述尚不清楚。我们利用 CB1 受体的次要结合口袋作为主要配体相互作用位点,利用脂质双层分子动力学 (MD) 模拟研究 HU210 结合。在潜在的配体接触残基中,我们通过突变分析确定残基 Phe-174(2.61)、Phe-177(2.64)、Leu-193(3.29)和 Met-363(6.55)对于 HU210 结合至关重要。使用这些残基指导模拟,我们确定了 CB1 受体中的基本大麻素结合结构域,包括高度寻求的疏水口袋,该口袋对于经典和非经典大麻素的 C3 烷基链的结合很重要。分析 HU210-CB1 受体复合物、CP55940-CB1 受体复合物和 (-)-Δ(9)-四氢大麻酚-CB1 受体复合物的模拟,我们发现 C3 烷基链的定位和色氨酸之间的芳香堆积 356(6.48)和色氨酸 279(5.43)对于色氨酸 356(6.48)旋转体朝向通过 H6 的刚体运动而朝向受体激活的变化至关重要。突变受体的功能数据表明,G 蛋白激活的效力降低与 HU210 结合亲和力的降低相似。