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固定化葡萄糖氧化酶与葡萄糖相互作用的时间分辨黄素腺嘌呤二核苷酸荧光研究。

Time-resolved flavin adenine dinucleotide fluorescence study of the interaction between immobilized glucose oxidase and glucose.

机构信息

Dipartimento di Scienze Fisiche, Università di Napoli Federico II, Napoli, Italy.

出版信息

J Fluoresc. 2013 Sep;23(5):947-55. doi: 10.1007/s10895-013-1220-z. Epub 2013 Apr 11.

Abstract

Time-resolved fluorescence experiments have shown that flavin adenine dinucleotide (FAD) fluorescence emission of sol-gel immobilized glucose oxidase (GOD) exhibits a three-exponential decaying behaviour characterized by long- (about 2.0-3.0 ns), intermediate- (about 300 ps) and short- (less than 10 ps) lifetime, each one being characteristic of a peculiar conformational state of the FAD structure. In the present work time-resolved fluorescence is used to monitor FAD signals in the time interval immediately following the addition of glucose at various concentrations in order to detect the conformational changes occurring during the interaction between sol-gel immobilized GOD and glucose. The analysis of time-dependent fluorescence emission signal has shown that the FAD conformational state changes during the process from a configuration with a prevalence of the state characterized by the long lifetime to a configuration with increased contribution from the process with the intermediate lifetime. The time needed to complete this configuration change decreases with the concentration of added glucose. The results here reported indicate that time-resoled fluorescence can be extremely useful for a better understanding of solid phase biocatalysis that is particularly important in light of their clinical and biotechnological applications.

摘要

时间分辨荧光实验表明,溶胶-凝胶固定化葡萄糖氧化酶(GOD)的黄素腺嘌呤二核苷酸(FAD)荧光发射表现出三指数衰减行为,其特征为长寿命(约 2.0-3.0 ns)、中寿命(约 300 ps)和短寿命(小于 10 ps),每个寿命都与 FAD 结构的特殊构象状态有关。在本工作中,时间分辨荧光用于监测在以不同浓度添加葡萄糖后的时间间隔内的 FAD 信号,以检测在溶胶-凝胶固定化 GOD 与葡萄糖相互作用过程中发生的构象变化。时间依赖性荧光发射信号的分析表明,在从以长寿命为特征的状态为主的构象向具有增加的中间寿命过程贡献的构象的过程中,FAD 构象状态发生变化。完成此构象变化所需的时间随添加的葡萄糖浓度的降低而减少。这里报道的结果表明,时间分辨荧光对于更好地理解固相生物催化非常有用,这在考虑到它们的临床和生物技术应用时尤为重要。

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