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9 位取代的新型苦参碱衍生物作为高效乙酰胆碱酯酶抑制剂。

New huprine derivatives functionalized at position 9 as highly potent acetylcholinesterase inhibitors.

机构信息

Equipe de Chimie Bio-organique, COBRA-CNRS UMR 6014 & FR 3038, Mont-Saint-Aignan, France.

出版信息

ChemMedChem. 2011 May 2;6(5):876-88. doi: 10.1002/cmdc.201000523. Epub 2011 Feb 23.

DOI:10.1002/cmdc.201000523
PMID:21344648
Abstract

A series of 24 huprine derivatives diversely functionalized at position 9 have been synthesized and evaluated for their inhibitory activity against human recombinant acetylcholinesterase (AChE). These derivatives were prepared in one to five steps from huprine 1 bearing an ester function at position 9. Ten analogues (1, 2, 6-9, 13-15, and 23) are active in the low nanomolar range (IC(50) <5 nM), very close to the parent compound huprine X. Compounds 2, 6, and 7 show a very good selectivity for AChE, with AChE inhibitory activities 700-1160-fold higher than those for butyrylcholinesterase (BChE). The inhibitory potency of these compounds decreases with the steric bulk of the substituents at position 9. According to docking simulations, small substituents fit into the acyl-binding pocket, whereas the larger ones stick out of the active site gorge of AChE. Determination of the kinetic parameters of three of the most potent huprines (2, 6, and 7) showed that most of the difference in K(D) is accounted by a decrease in k(on) , which is correlated to the increase of the substituent size. A first in vivo evaluation has been performed in mice for the most active compound 2 (IC(50) =1.1 nM) and showed a rather weak toxicity (LD(50) =40 mg kg(-1) ) and an ability to cross the blood-brain barrier with doses above 15 mg kg(-1).

摘要

已经合成了一系列在 9 位具有不同功能的 24 个 huprine 衍生物,并评估了它们对人重组乙酰胆碱酯酶(AChE)的抑制活性。这些衍生物是从 9 位带有酯基的 huprine 1 通过一到五步制备的。十个类似物(1、2、6-9、13-15 和 23)在低纳摩尔范围内具有活性(IC 50 <5 nM),非常接近母体化合物 huprine X。化合物 2、6 和 7 对 AChE 具有非常好的选择性,AChE 抑制活性比丁酰胆碱酯酶(BChE)高 700-1160 倍。这些化合物的抑制效力随 9 位取代基的空间位阻而降低。根据对接模拟,小取代基适合酰基结合口袋,而较大的取代基则突出于 AChE 的活性位点峡谷。对三种最有效 huprines(2、6 和 7)的动力学参数进行测定,表明 K(D)的大部分差异是由于 k(on) 的降低引起的,这与取代基大小的增加有关。对最活跃的化合物 2(IC 50 =1.1 nM)在小鼠中进行了首次体内评估,结果表明其毒性相当弱(LD 50 =40 mg kg -1),并且能够在剂量超过 15 mg kg -1 时穿过血脑屏障。

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