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硼酸盐功能化荧光锌(II)-三联吡啶配合物在水中对果糖-Val 和果糖-Gly-His 的分子两点识别

Molecular two-point recognition of fructosyl valine and fructosyl glycyl histidine in water by fluorescent Zn(II)-terpyridine complexes bearing boronic acids.

机构信息

Institute of Chemistry, National Autonomous University of Mexico, Ciudad Universitaria, 04510, CDMX, Mexico.

Centro Conjunto de Investigación en Química Sustentable, UAEM-UNAM, Carretera Toluca-Atlacomulco Km 14.5, C. P. 50200, Toluca, Estado de México, Mexico.

出版信息

Dalton Trans. 2024 May 21;53(20):8692-8708. doi: 10.1039/d4dt00260a.

Abstract

Selective recognition of fructosyl amino acids in water by arylboronic acid-based receptors is a central field of modern supramolecular chemistry that impacts biological and medicinal chemistry. Fructosyl valine (FV) and fructosyl glycyl histidine (FGH) occur as N-terminal moieties of human glycated hemoglobin; therefore, the molecular design of biomimetic receptors is an attractive, but very challenging goal. Herein, we report three novel cationic Zn-terpyridine complexes bearing a fluorescent -quinolinium nucleus covalently linked to three different isomers of strongly acidified phenylboronic acids (-, 2Zn; -, 3Zn and -, 4Zn) for the optical recognition of FV, FGH and comparative analytes (D-fructose, Gly, Val and His) in pure water at physiological pH. The complexes were designed to act as fluorescent receptors using a cooperative action of boric acid and a metal chelate. Complex 3Zn was found to display the most acidic -B(OH) group (p = 6.98) and exceptionally tight affinity for FV ( = 1.43 × 10 M) with a strong quenching analytical response in the micromolar concentration range. The addition of fructose and the other amino acids only induced moderate optical changes. On the basis of several spectroscopic tools (H, B NMR, UV-Vis, and fluorescence titrations), ESI mass spectrometry, X-ray crystal structure, and DFT calculations, the interaction mode between 3Zn and FV is proposed in a 1 : 1 model through a cooperative two-point recognition involving a sp boronate-diol esterification with simultaneous coordination bonding of the carboxylate group of Val to the Zn atom. Fluorescence quenching is attributed to a static complexation photoinduced electron transfer mechanism as evidenced by lifetime experiments. The addition of FGH to 3Zn notably enhanced its emission intensity with micromolar affinity, but with a lower apparent binding constant than that observed for FV. FGH interacts with 3Zn through boronate-diol complexation and coordination of the imidazole ring of His. DFT-optimized structures of complexes 3Zn-FV and 3Zn-FGH show a picture of binding which shows that the Zn-complex has a suitable (B⋯Zn) distance to the two-point recognition with these analytes. Molecular recognition of fructosyl amino acids by transition-metal-based receptors has not been explored until now.

摘要

芳基硼酸基受体对果糖基氨基酸的选择性识别是现代超分子化学的一个核心领域,对生物和药物化学有影响。果糖基缬氨酸(FV)和果糖基甘氨酰组氨酸(FGH)作为人糖化血红蛋白的 N 端部分存在;因此,仿生受体的分子设计是一个有吸引力但极具挑战性的目标。在此,我们报告了三种新型的带正电荷的 Zn-三联吡啶配合物,它们带有一个荧光 - 喹啉核,与三个不同的强酸化苯硼酸异构体(-, 2Zn;-, 3Zn 和 -, 4Zn)共价连接,用于在生理 pH 值的纯水中光学识别 FV、FGH 和比较分析物(D-果糖、Gly、Val 和 His)。这些配合物被设计为使用硼酸和金属螯合物的协同作用作为荧光受体。发现配合物 3Zn 具有最酸性的 -B(OH) 基团(p = 6.98),对 FV 具有异常紧密的亲和力( = 1.43×10 M),在微摩尔浓度范围内具有强烈的荧光猝灭分析响应。添加果糖和其他氨基酸仅引起适度的光学变化。基于几种光谱工具(H、B NMR、UV-Vis 和荧光滴定)、ESI 质谱、X 射线晶体结构和 DFT 计算,提出了 3Zn 与 FV 之间的相互作用模式,在 1:1 模型中通过涉及羧酸酯与 Zn 原子的同时配位键合的协同两点识别的 sp 硼酸盐 - 二醇酯化作用。荧光猝灭归因于静态配合物光诱导电子转移机制,这一点通过寿命实验得到证实。将 FGH 添加到 3Zn 中显著增强了其发射强度,具有微摩尔亲和力,但与观察到的 FV 相比,表观结合常数较低。FGH 通过硼酸 - 二醇络合和 His 的咪唑环配位与 3Zn 相互作用。DFT 优化的 3Zn-FV 和 3Zn-FGH 配合物结构显示出与这些分析物的两点识别的结合情况,表明 Zn 配合物具有合适的(B⋯Zn)距离。到目前为止,过渡金属基受体对果糖基氨基酸的分子识别尚未得到探索。

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