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Synthesis and SAR studies of chiral non-racemic dexoxadrol analogues as uncompetitive NMDA receptor antagonists.

机译:手性非外消旋Dexoxadrool类似物作为非竞争力的NMDA受体拮抗剂的合成与SAR研究。

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A series of chiral non-racemic dexoxadrol analogues with various substituents in position 4 of the piperidine ring was synthesized and pharmacologically evaluated. Only the enantiomers having (S)-configuration at the 2-position of the piperidine ring and 4-position of the dioxolane ring were considered. Key steps in the synthesis were an imino-Diels-Alder reaction of enantiomerically pure imine (S)-13, which had been obtained from d-mannitol, with Danishefsky's Diene 14 and the replacement of the p-methoxybenzyl protective group with a Cbz-group. It was shown that (S,S)-configuration of the ring junction (position 2 of the piperidine ring and position 4 of the dioxolane ring) and axial orientation of the C-4-substituent ((4S)-configuration) are crucial for high NMDA receptor affinity. 2-(2,2-Diphenyl-1,3-dioxolan-4-yl)piperidines with a hydroxy moiety ((S,S,S)-5, K(i)=28nM), a fluorine atom ((S,S,S)-6, WMS-2539, K(i)=7nM) and two fluorine atoms ((S,S)-7, K(i)=48nM) in position 4 represent the most potent NMDA antagonists with high selectivity against sigma(1) and sigma(2) receptors and the polyamine binding site of the NMDA receptor. The NMDA receptor affinities of the new ligands were correlated with their electrostatic potentials, calculated gas phase proton affinities (negative enthalpies of deprotonation) and dipole moments. According to these calculations decreasing proton affinity and increasing dipole moment are correlated with decreasing NMDA receptor affinity.
机译:合成哌啶环的位置4中具有各种取代基的一系列手性非外消旋DexoxAdrool类似物,并药理学评估。考虑仅考虑哌啶环的2-位与二氧戊环的4-位置处的对映体。合成中的关键步骤是从Danishefsky的二烯14获得的映体纯亚胺(S)-13的亚氨基 - 酰胺 - 酰胺反应,其用Danishefssky的二烯14和用CBZ-替换p-甲氧基苄基保护基团团体。结果表明,C-4取代基的哌啶环的环形连接(哌啶环的位置2和Dioxolane环的位置4的轴向取向至关重要高NMDA受体亲和力。 2-(2,2-二苯基-1,3-二氧化硅氧烷-4-基)哌啶,其具有羟基部分((s,s,s,s)-5,k(i)= 28nm),氟原子((s, S,S)-6,WMS-2539,K(I)= 7nm)和两个位置4中的氟原子((s,s)-7,k(i)= 48nm)代表了具有高选择性的最有效的NMDA拮抗剂针对σ(1)和Sigma(2)受体和NMDA受体的多胺结合位点。新配体的NMDA受体亲和力与其静电电位相关,计算的气相质子亲和力(去质子化的负焓)和偶极矩。根据这些计算,质子亲和力的降低和增加的偶极矩与降低NMDA受体亲和力相关。

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