Glucose-sensitive nanoassemblies comprising affinity-binding complexes trapped in fuzzy microshells

被引:56
作者
Chinnayelka, S
McShane, MJ
机构
[1] Louisiana Tech Univ, Inst Micromfg, Ruston, LA 71272 USA
[2] Louisiana Tech Univ, Biomed Engn Program, Ruston, LA 71272 USA
关键词
self-assembly; microcapsules; resonance energy transfer; glucose sensing;
D O I
10.1023/B:JOFL.0000039345.57924.f3
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
A new design for glucose monitoring with "smart" materials based on self assembly, competitive binding, and resonance energy transfer (RET) is presented. The basic transduction principle is changing RET efficiency from fluorescein isothiocyanate (FITC) to tetramethylrhodamine isothiocyanate (TRITC), as FITC-dextran is displaced from TRITC-Concanavalin A (Con A) with the addition of glucose. Nanoscale fabrication by self-assembly of Con A/dextran into multilayer films, followed by polymer multilayers. The advantages of this approach include physical localization and separation of sensing molecules from the environment via entrapment of the biosensor elements in a semi-permeable polymeric shell, and only functional molecules are included in the sensors. To realize these nanostructures, dissolvable resin microparticles were coated with FITC-dextran+TRITC-Con A multilayers, followed by polyelectrolyte multilayers, and the core particles were then dissolved to yield hollow capsules. The nanoassembly process was studied using microbalance mass measurements, fluorescence spectroscopy, confocal fluorescence microscopy, and zeta-potential measurements. The key findings are that the specific binding between Con A and dextran can be used to deposit ultrathin multilayer films, and these exhibit changing RET in response to glucose. Fluorescence spectra of a microcapsules exhibited a linear, glucose-specific, 27% increase in the relative fluorescence of FITC over the 0-1800 mg/dL range. These findings demonstrate the feasibility of using self-assembled microcapsules as optical glucose sensors, and serve as a basis for work toward better understanding the properties of these novel materials.
引用
收藏
页码:585 / 595
页数:11
相关论文
共 37 条
[1]   Kinetics of dissolution of Concanavalin A dextran sols in response to glucose measured by surface plasmon resonance [J].
Ballerstadt, R ;
Schultz, JS .
SENSORS AND ACTUATORS B-CHEMICAL, 1998, 46 (01) :50-55
[2]   Competitive-binding assay method based on fluorescence quenching of ligands held in close proximity by a multivalent receptor [J].
Ballerstadt, R ;
Schultz, JS .
ANALYTICA CHIMICA ACTA, 1997, 345 (1-3) :203-212
[3]   Fluorescence resonance energy transfer sensors [J].
Birch, DJS ;
Rolinski, OJ .
RESEARCH ON CHEMICAL INTERMEDIATES, 2001, 27 (4-5) :425-446
[4]  
Bittiger H., 1976, Concanavalin A as a Tool
[5]  
CESARE ND, 2002, P SOC PHOTO-OPT INS, V4625, P152
[6]  
CHANTAL M, 1998, BIOCHEM EDUC, V26, P320
[7]   Fuzzy nanoassemblies: Toward layered polymeric multicomposites [J].
Decher, G .
SCIENCE, 1997, 277 (5330) :1232-1237
[8]   A KINETIC-STUDY OF CONCANAVALIN-A BINDING TO GLYCOLIPID MONOLAYERS BY USING A QUARTZ-CRYSTAL MICROBALANCE [J].
EBARA, Y ;
OKAHATA, Y .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1994, 116 (25) :11209-11212
[9]   Development of dual receptor biosensors: an analysis of FRET pairs [J].
Grant, SA ;
Xu, JT ;
Bergeron, EJ ;
Mroz, J .
BIOSENSORS & BIOELECTRONICS, 2001, 16 (4-5) :231-237
[10]  
GRIFFITHS DG, 1993, TRENDS BIOTECHNOL, V111, P122