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使用核磁共振(NMR)和分子建模对内皮素-1具有生物活性的截短线性类似物进行构象分析。

Conformational analysis of biologically active truncated linear analogs of endothelin-1 using NMR and molecular modeling.

作者信息

Boulanger Y, Biron E, Khiat A, Fournier A

机构信息

INRS-Santé, Université du Québec, Pointe-Claire, Canada.

出版信息

J Pept Res. 1999 Feb;53(2):214-22. doi: 10.1034/j.1399-3011.1999.00022.x.

Abstract

Some linear truncated analogs of endothelin-1 display potent agonistic activity at the ET(B) receptor, especially when the side chain of Trp21 is N-formylated. Then, the three-dimensional arrangements of six structurally reduced linear analogs, three formylated and three nonformylated, have been investigated by high resolution NMR spectroscopy and molecular modeling, in order to pinpoint the conformational features related to the biological activity. Two-dimensional double-quantum-filtered correlation spectroscopy (DQFCOSY), total correlation spectroscopy (TOCSY) and nuclear Overhauser enhancement spectroscopy (NOESY) were recorded and analyzed for each molecule. Interspatial distance constraints were derived from the intensity of the NOESY connectivities. The formation of hydrogen bonding was monitored from the temperature dependence of the NH chemical shifts. Molecular models calculated by means of distance geometry, simulated annealing and energy minimization, using the NMR constraints, strongly suggested a global elongated structure for the formylated analogs exhibiting biological activity, and a folded arrangement for the unformylated derivatives. Homology comparisons allowed the identification of a beta-turn-like folding of the C-terminal segment Asp18-Trp21 as a probable key-factor for activity.

摘要

内皮素-1的一些线性截短类似物在ET(B)受体上表现出强大的激动活性,尤其是当Trp21的侧链被N-甲酰化时。然后,通过高分辨率核磁共振光谱和分子建模研究了六种结构简化的线性类似物(三种甲酰化和三种未甲酰化)的三维排列,以确定与生物活性相关的构象特征。对每个分子记录并分析了二维双量子滤波相关光谱(DQFCOSY)、全相关光谱(TOCSY)和核Overhauser增强光谱(NOESY)。空间距离限制来自NOESY连接的强度。通过NH化学位移的温度依赖性监测氢键的形成。利用核磁共振限制条件,通过距离几何、模拟退火和能量最小化计算得到的分子模型强烈表明,具有生物活性的甲酰化类似物具有整体拉长的结构,而未甲酰化的衍生物具有折叠排列。同源性比较表明,C末端片段Asp18-Trp21的β-转角样折叠可能是活性的关键因素。

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