Selective Sugar Recognition by Anthracene-Type Boronic Acid Fluorophore/Cyclodextrin Supramolecular Complex Under Physiological pH Condition

被引:17
作者
Sugita, Ko [1 ]
Tsuchido, Yuji [1 ,2 ]
Kasahara, Chisato [1 ]
Casulli, Maria Antonietta [1 ]
Fujiwara, Shoji [1 ,3 ]
Hashimoto, Takeshi [1 ]
Hayashita, Takashi [1 ]
机构
[1] Sophia Univ, Fac Sci & Technol, Dept Mat & Life Sci, Tokyo, Japan
[2] Waseda Univ TWIns, Grad Sch Adv Sci & Engn, Dept Life Sci & Med Biosci, Tokyo, Japan
[3] Meiji Gakuin Univ, Fac Law, Dept Current Legal Studies, Yokohama, Kanagawa, Japan
关键词
cyclodextrin; boronic acid; supramolecular chemistry; fluorescence; sugar recognition; PHENYLBORONIC ACID; SACCHARIDE DETECTION; GLUCOSE-OXIDASE; FLUORESCENCE; CYCLODEXTRIN; SENSOR; FLUOROPHORE; MECHANISMS;
D O I
10.3389/fchem.2019.00806
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We synthesized novel PET (photoinduced electron transfer)-type fluorescence glucose probe 1 [(4-(anthracen-2-yl-carbamoyl)-3-fluorophenyl)boronic acid], which has a phenylboronic acid (PBA) moiety as the recognition site and anthracene as the fluorescent part. Although the PBA derivatives dissociate and bind with sugar in the basic condition, our new fluorescent probe can recognize sugars in the physiological pH by introducing an electron-withdrawing fluorine group into the PBA moiety. As a result, the pK(a) value of this fluorescent probe was lowered and the probe was able to recognize sugars at the physiological pH of 7.4. The sensor was found to produce two types of fluorescent signals, monomer fluorescence and dimer fluorescence, by forming a supramolecular 2:1 complex of 1 with glucose inside a gamma-cyclodextrin (gamma-CyD) cavity. Selective ratiometric sensing of glucose by the 1/gamma-CyD complex was achieved in water at physiological pH.
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页数:7
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共 43 条
[1]   Supramolecular analytical chemistry [J].
Anslyn, Eric V. .
JOURNAL OF ORGANIC CHEMISTRY, 2007, 72 (03) :687-699
[2]   Clusters, bundles, arrays and lattices: novel mechanisms for lectin-saccharide-mediated cellular interactions [J].
Brewer, CF ;
Miceli, MC ;
Baum, LG .
CURRENT OPINION IN STRUCTURAL BIOLOGY, 2002, 12 (05) :616-623
[3]   Bioorganic chemistry of ceramide [J].
Brodesser, S ;
Sawatzki, P ;
Kolter, T .
EUROPEAN JOURNAL OF ORGANIC CHEMISTRY, 2003, 2003 (11) :2021-2034
[4]   Synthesis of glycoproteins [J].
Davis, BG .
CHEMICAL REVIEWS, 2002, 102 (02) :579-601
[5]   Saccharide imprinting of poly(aniline boronic acid) in the presence of fluoride [J].
Deore, B ;
Freund, MS .
ANALYST, 2003, 128 (06) :803-806
[6]   Ortho-azo substituted phenylboronic acids for colorimetric sugar sensors [J].
Egawa, Yuya ;
Gotoh, Ryota ;
Niina, Satoshi ;
Anzal, Jun-ichi .
BIOORGANIC & MEDICINAL CHEMISTRY LETTERS, 2007, 17 (13) :3789-3792
[7]   Sugar response of boronic acid-substituted azobenzene dye-modified polymer [J].
Egawa, Yuya ;
Gotoh, Ryota ;
Seki, Toshinobu ;
Anzai, Jun-ichi .
MATERIALS SCIENCE & ENGINEERING C-BIOMIMETIC AND SUPRAMOLECULAR SYSTEMS, 2009, 29 (01) :115-118
[8]   Polypyrrole nanotube array sensor for enhanced adsorption of glucose oxidase in glucose biosensors [J].
Ekanayake, E. M. I. Mala ;
Preethichandra, D. M. G. ;
Kaneto, Keiichi .
BIOSENSORS & BIOELECTRONICS, 2007, 23 (01) :107-113
[9]   A needle-type optical enzyme sensor system for determining glucose levels in fish blood [J].
Endo, Hideaki ;
Yonemori, Yuki ;
Musiya, Kazuya ;
Maita, Masashi ;
Shibuya, Toru ;
Ren, Huifeng ;
Hayashi, Tetsuhito ;
Mitsubayashi, Kohji .
ANALYTICA CHIMICA ACTA, 2006, 573 :117-124
[10]   Boronic acids in molecular self-assembly [J].
Fujita, Norifumi ;
Shinkai, Seiji ;
James, Tony D. .
CHEMISTRY-AN ASIAN JOURNAL, 2008, 3 (07) :1076-1091