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金属离子与环缩肽配合物中的配体构象异构体和金属配位异构体

Ligand Conformational and Metal Coordination Isomers in Complexes of Metal Ions and Cyclic Depsipeptides.

作者信息

Nkyaagye Emmanuel, Olivos Hernando J, Do Thanh D

机构信息

Department of Chemistry, University of Tennessee, 1420 Circle Drive, Knoxville, Tennessee 37996, United States.

Waters Corporation, Milford, Massachusetts 01757, United States.

出版信息

J Am Soc Mass Spectrom. 2025 Apr 2;36(4):873-882. doi: 10.1021/jasms.5c00010. Epub 2025 Mar 11.

Abstract

A critical challenge in the structural characterization of metal complexes in apolar environments is distinguishing transient structural isomers within an ensemble of lower- and higher-order assemblies. These structural variations arise from subtle changes in ligand architecture and metal coordination chemistry, which are often difficult to deconvolute. Here, we utilize ion activation in both drift-tube and cyclic ion mobility spectrometry-mass spectrometry (IMS-MS) to resolve ligand conformational isomerism and metal coordination isomerism in metal sandwich complexes of cyclic depsipeptide ligands known for selective metal ion transport. Our approach reveals that isomerism driven by ligand structural rearrangements exhibits low energy barriers, allowing their interconversion to be captured on the IMS-MS time scale. In contrast, isomers involving distinct metal coordination states are characterized by higher energy barriers, precluding rapid interconversion. These findings establish a direct correlation between isomer distributions and selective metal binding and transport, providing mechanistic insights into the biological functions of cyclic depsipeptides. This work underscores the utility of IMS-MS for disentangling complex structural dynamics in biologically relevant metal-peptide ligand systems.

摘要

在非极性环境中对金属配合物进行结构表征时,一个关键挑战是区分低阶和高阶组装体集合中的瞬态结构异构体。这些结构变化源于配体结构和金属配位化学的细微变化,而这些变化往往难以解析。在这里,我们利用漂移管和循环离子淌度质谱联用技术(IMS-MS)中的离子活化来解析环状缩肽配体的金属夹心配合物中的配体构象异构和金属配位异构,环状缩肽配体以选择性金属离子转运而闻名。我们的方法表明,由配体结构重排驱动的异构表现出低能垒,使得它们的相互转化能够在IMS-MS时间尺度上被捕捉到。相比之下,涉及不同金属配位状态的异构体具有更高的能垒,这使得快速相互转化无法发生。这些发现建立了异构体分布与选择性金属结合和转运之间的直接关联,为环状缩肽的生物学功能提供了机理见解。这项工作强调了IMS-MS在解析生物相关金属-肽配体系统中复杂结构动力学方面的实用性。

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