Kato Atsushi, Nakagome Izumi, Nakagawa Shinpei, Koike Yuriko, Nash Robert J, Adachi Isao, Hirono Shuichi
Department of Hospital Pharmacy, University of Toyama, Toyama 930-0194, Japan.
School of Pharmaceutical Sciences, Kitasato University, Tokyo 108-8641, Japan.
Bioorg Med Chem. 2014 Apr 15;22(8):2435-41. doi: 10.1016/j.bmc.2014.02.057. Epub 2014 Mar 12.
We report on the identification of the required configuration and binding orientation of nor-tropane alkaloid calystegines against β-glucocerebrosidase. Calystegine B2 is a potent competitive inhibitor of human lysosomal β-glucocerebrosidase with Ki value of 3.3 μM. A molecular docking study revealed that calystegine B2 had a favorable van der Waals interactions (Phe128, Trp179, and Phe246) and the hydrogen bonding (Glu235, Glu340, Asp127, Trp179, Asn234, Trp381 and Asn396) was similar to that of isofagomine. All calystegine isomers bound into the same active site as calystegine B2 and the essential hydrogen bonds formed to Asp127, Glu235 and Glu340 were maintained. However, their binding orientations were obviously different. Calystegine A3 bound to β-glucocerebrosidase with the same orientations as calystegine B2 (Type 1), while calystegine B3 and B4 had different binding orientations (Type 2). It is noteworthy that Type 1 orientated calystegines B2 and A3 effectively stabilized β-glucocerebrosidase, and consequently increased intracellular β-glucocerebrosidase activities in N370S fibroblasts, while Type 2 orientated calystegines B3 and B4 could not keep the enzyme activity. These results clearly indicate that the binding orientations of calystegines are changed by the configuration of the hydroxyl groups on the nor-tropane ring and the suitable binding orientation is a requirement for achieving a strong affinity to β-glucocerebrosidase.
我们报告了去甲托烷生物碱卡利斯他汀对β-葡萄糖脑苷脂酶所需的构型和结合方向的鉴定。卡利斯他汀B2是人类溶酶体β-葡萄糖脑苷脂酶的一种强效竞争性抑制剂,Ki值为3.3 μM。分子对接研究表明,卡利斯他汀B2具有良好的范德华相互作用(苯丙氨酸128、色氨酸179和苯丙氨酸246),并且氢键(谷氨酸235、谷氨酸340、天冬氨酸127、色氨酸179、天冬酰胺234、色氨酸381和天冬酰胺396)与异法戈明相似。所有卡利斯他汀异构体都与卡利斯他汀B2结合到相同的活性位点,并且与天冬氨酸127、谷氨酸235和谷氨酸340形成的关键氢键得以维持。然而,它们的结合方向明显不同。卡利斯他汀A3与β-葡萄糖脑苷脂酶的结合方向与卡利斯他汀B2相同(类型1),而卡利斯他汀B3和B4具有不同的结合方向(类型2)。值得注意的是,类型1方向的卡利斯他汀B2和A3有效地稳定了β-葡萄糖脑苷脂酶,因此增加了N370S成纤维细胞中的细胞内β-葡萄糖脑苷脂酶活性,而类型2方向的卡利斯他汀B3和B4不能保持酶活性。这些结果清楚地表明,卡利斯他汀的结合方向因去甲托烷环上羟基的构型而改变,并且合适的结合方向是实现对β-葡萄糖脑苷脂酶强亲和力的必要条件。