Releasing Preferentially Sequestered Na+ from Its Confinement by Beauvericin: A Single Water Molecule is the Accomplice.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-10-24 Epub Date: 2024-10-15 DOI:10.1021/acs.jpca.4c04515
Kien X Vo, Keisuke Hirata, James M Lisy, Masaaki Fujii, Shun-Ichi Ishiuchi
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Abstract

Beauvericin (Bv) is a natural ionophore capable of transporting ions across biological membranes. Mass spectrometry and infrared spectroscopy show that Bv specifically captures sodium ions with a unique 6-fold coordination in its cavity, which illustrates how ions are carried through the membrane. But with no reports on how ions are released from Bv at the interface, a complete picture of the ion transport process has yet to be established. In this study, conformational changes of Bv complexes with alkali metal ions upon hydration were investigated using infrared spectroscopy and computational calculations. The addition of a single water molecule to Na+Bv pries the ion away from the 6-fold cavity to the amide face of the ionophore, evidence of the first step of ion release. In contrast, there is little impact on the other M+Bv complexes, with the ion bound to the three carbonyl groups on the amide face. Analysis of the carbonyl C═O and water OH stretching modes reveals the competition between ion-ionophore, ion-water, and water-ionophore interactions and demonstrates how water actively participates in ion transport by initiating ion release from the ionophore.

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Beauvericin 释放被优先封闭的 Na+:单个水分子是帮凶。
Beauvericin (Bv)是一种能够跨生物膜运输离子的天然离子源。质谱法和红外光谱法显示,Bv 能以其空腔中独特的 6 倍配位特异性地捕获钠离子,这说明了离子是如何通过膜的。但目前还没有关于离子如何在界面上从 Bv 中释放的报道,因此离子转运过程的完整图景尚未建立。本研究利用红外光谱和计算研究了 Bv 与碱金属离子水合后的构象变化。在 Na+Bv 中加入单个水分子可将离子从 6 倍空腔转移到离子源的酰胺面,这证明了离子释放的第一步。相比之下,对其他 M+Bv 复合物的影响很小,离子与酰胺面上的三个羰基结合在一起。对羰基 C═O 和水 OH 拉伸模式的分析揭示了离子-离子团、离子-水和水-离子团之间相互作用的竞争,并证明了水是如何通过启动离子从离子团释放而积极参与离子传输的。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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