结合甲基精氨酸和甲基赖氨酸作为游离氨基酸:多种超分子宿主类别的比较研究

Zoey Warmerdam, B. Kamba, M. Le, T. Schrader, L. Isaacs, P. Bayer, F. Hof
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引用次数: 0

摘要

甲基化游离氨基酸是主客体化学的一类重要靶标,具有不同于甲基化肽和蛋白质的识别特性。我们对三种不同宿主类别进行了比较结合研究,每种宿主类别都用多种甲基化精氨酸和赖氨酸进行了研究,以确定基本的结构-功能关系。所研究的宿主都是阴离子的,包括三个杯芳烃、两个无环葫芦内酯和两个裂状宿主。我们使用指示剂置换测定法测定了一组甲基化氨基酸的结合缔合常数。杯芳烃宿主表现出弱结合,有利于更高的甲基化状态,其中三甲基赖氨酸的结合最强。无环葫芦类化合物与甲基化氨基酸具有更强的结合力,并具有一些独特的选择性。裂状宿主遵循两种不同的趋势,一种浅宿主遵循与杯芳烃相似的趋势,另一种更紧密的宿主结合某些甲基化程度较低的氨基酸,比其全甲基化的对应物更强。分子建模揭示了不同宿主的不同偏好。该结果确定了具有选择性的宿主,这将对某些生物医学应用有用。总体选择性模式由一个通用框架来解释,该框架考虑了所有主机类的拓扑结构、绑定口袋的深度和官能团参与。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Binding methylarginines and methyllysines as free amino acids: a comparative study of multiple supramolecular host classes
Methylated free amino acids are an important class of targets for host-guest chemistry that have recognition properties distinct from those of methylated peptides and proteins. We present comparative binding studies for three different host classes that are each studied with multiple methylated arginines and lysines to determine fundamental structure-function relationships. The hosts studied are all anionic and include three calixarenes, two acyclic cucurbiturils, and two cleft-like hosts. We determined the binding association constants for a panel of methylated amino acids using indicator displacement assays. The calixarene hosts show weak binding that favours the higher methylation states, with the strongest binding observed for trimethyllysine. The acyclic cucurbiturils display stronger binding to the methylated amino acids, and some unique patterns of selectivity. The cleft-like hosts follow two different trends, one shallow host following similar trends to the calixarenes, and the other more closed host binding certain less-methylated amino acids stronger than their per-methylated counterparts. Molecular modeling sheds some light on the different preferences of different hosts. The results identify hosts with selectivities that will be useful for certain biomedical applications. The overall selectivity patterns are explained by a common framework that considers the topology, depth of binding pockets, and functional group participation across all host classes.
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