硫酸盐氧化酶的短暂催化电压测量揭示了限制速度的形态变化
Ting Zeng1, Silke Leimkühler1, Ulla Wollenberger1
1Institute of Biochemistry and Biology, University of Potsdam , Karl-Liebknecht-Str.24-25, 14476 Potsdam-Golm, Germany.
Journal of the American Chemical Society
|July 21, 2017
概括
人类硫酸盐氧化酶 (SO) 在电极表面保留其构造变化,这对其催化活性至关重要. 固定化减缓了这些变化,解释了生物传感器中的酶活性减少.
科学领域:
- 生物化学
- 酶动力学
- 生物电化学
背景情况:
- 硫酸盐氧化酶 (SO) 是含有的金属酶,催化硫酸盐氧化为硫酸盐.
- 脊椎动物的SO具有促进电子转移的血质域,分别具有内部和外部电子转移的明显闭合和开放构造.
- 在电极上的酶固定通常会降低催化活性,质疑基本形态动态的保留.
研究的目的:
- 在电极上固定的人类硫酸盐氧化酶的形状变化的发生和动力学.
- 定量建模固定的人类硫酸盐氧化酶的催化循环.
- 阐明酶固定后催化活性降低的原因.
主要方法:
- 催化周期的短暂反应分析.
- 酶动学的定量建模.
- 人类硫酸氧化酶的电极固定.
主要成果:
- 人类硫酸盐氧化酶的形状变化已被证实在电极表面发生.
- 与溶液相比,电极上的形状变化率较低.
- 形状变化的降低率与固定SO的催化活性降低直接相关.
结论:
- 人类硫酸盐氧化酶在电极上的固定不取消其形状灵活性.
- 电极表面较慢的形态动态是酶活性降低的主要原因.
- 了解这些动态是优化生物传感应用的酶电极接口的关键.
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