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本文引用的文献

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A Tricyclic Polyamide Receptor for Carbohydrates in Organic Media.有机介质中碳水化合物的三环聚酰胺受体。
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Arresting "Loose Bolt" Internal Conversion from -B(OH) Groups is the Mechanism for Emission Turn-On in ortho-Aminomethylphenylboronic Acid-Based Saccharide Sensors.阻断 -B(OH) 基团的“松动螺栓”内转换是邻-氨甲基苯硼酸基糖传感器中发射开启的机制。
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Disaggregation is a Mechanism for Emission Turn-On of ortho-Aminomethylphenylboronic Acid-Based Saccharide Sensors.解聚是基于邻氨甲基苯硼酸的糖传感器发射开启的机制。
J Am Chem Soc. 2017 Apr 19;139(15):5568-5578. doi: 10.1021/jacs.7b01755. Epub 2017 Apr 11.
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A computational investigation of the nitrogen-boron interaction in o-(N,N-dialkylaminomethyl)arylboronate systems.o-(N,N-二烷基氨甲基)芳基硼酸酯体系中氮硼相互作用的计算研究。
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Photonic crystal borax competitive binding carbohydrate sensing motif.光子晶体硼砂竞争性结合碳水化合物传感基序。
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Exploring the use of APTS as a fluorescent reporter dye for continuous glucose sensing.探索将APTS用作连续葡萄糖传感的荧光报告染料。
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Selective glucose recognition by boronic acid azoprobe/gamma-cyclodextrin complexes in water.硼酸偶氮探针/γ-环糊精复合物在水中对葡萄糖的选择性识别
Chem Commun (Camb). 2009 Apr 7(13):1709-11. doi: 10.1039/b819938h. Epub 2009 Jan 27.
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Carbohydrate recognition by boronolectins, small molecules, and lectins.硼酸酯结合蛋白、小分子和凝集素对碳水化合物的识别。
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Dye displacement assay for saccharide detection with boronate hydrogels.用于糖类检测的硼酸盐水凝胶染料置换分析
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10
Glucose sensing via polyanion formation and induced pyrene excimer emission.通过聚阴离子形成和芘激基缔合物发射进行葡萄糖传感。
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基于硼酸的荧光糖传感器建模:二甲氨甲基苯基硼酸与 d-果糖结合的计算研究。

Modeling Boronic Acid Based Fluorescent Saccharide Sensors: Computational Investigation of d-Fructose Binding to Dimethylaminomethylphenylboronic Acid.

机构信息

Department of Chemistry , University of South Florida , 4202 East Fowler Avenue, CHE205 , Tampa , Florida 33620-5250 , United States.

Department of Chemistry , Durham University , South Road Durham , Durham DH1 3LE , United Kingdom.

出版信息

J Chem Inf Model. 2019 May 28;59(5):2150-2158. doi: 10.1021/acs.jcim.8b00987. Epub 2019 Apr 22.

DOI:10.1021/acs.jcim.8b00987
PMID:30908030
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8577280/
Abstract

Designing organic saccharide sensors for use in aqueous solution is a nontrivial endeavor. Incorporation of hydrogen bonding groups on a sensor's receptor unit to target saccharides is an obvious strategy but not one that is likely to ensure analyte-receptor interactions over analyte-solvent or receptor-solvent interactions. Phenylboronic acids are known to reversibly and covalently bind saccharides (diols in general) with highly selective affinity in aqueous solution. Therefore, recent work has sought to design such sensors and understand their mechanism for allowing fluorescence with bound saccharides. In past work, binding orientations of several saccharides were determined to dimethylaminomethylphenylboronic acid (DMPBA) receptors with an anthracene fluorophore; however, the binding orientation of d-fructose to such a sensor could not be determined. In this work, we investigate the potential binding modes by generating 20 possible bidentate and six possible tridentate modes between fructose and DMPBA, a simplified receptor model. Gas phase and implicit solvent geometry optimizations, with a myriad functional/basis set pairs, were carried out to identify the lowest energy bidentate and tridentate binding modes of d-fructose to DMPBA. An interesting hydrogen transfer was observed during selected bidentate gas phase optimizations; this transfer suggests a strong sharing of the hydrogen atom between the boronate hydroxyl and amine nitrogen.

摘要

在水溶液中设计用于有机糖传感器是一项艰巨的任务。在传感器的受体单元上引入氢键基团以靶向糖是一种明显的策略,但不太可能确保分析物-受体相互作用超过分析物-溶剂或受体-溶剂相互作用。硼酸是已知的在水溶液中以高选择性亲和力可逆且共价结合糖(一般为二醇)。因此,最近的工作旨在设计这种传感器并了解其允许与结合糖发生荧光的机制。在过去的工作中,已经确定了几种糖与蒽荧光团的二甲氨基甲基苯硼酸(DMPBA)受体的结合取向;然而,无法确定 D-果糖与这种传感器的结合取向。在这项工作中,我们通过生成 DMPBA 与果糖之间的 20 种可能的双齿和 6 种可能的三齿模式来研究潜在的结合模式,这是一种简化的受体模型。进行了气相和隐式溶剂几何优化,并使用了大量的功能/基组对,以确定 D-果糖与 DMPBA 的最低能量双齿和三齿结合模式。在选定的双齿气相优化过程中观察到有趣的氢键转移;这种转移表明硼酸根羟基和胺氮之间的氢原子有很强的共享。