酶基电化学传感器对细胞色素bd氧化酶抑制作用的研究

I. Makarchuk, A. Nikolaev, A. Thesseling, L. Dejon, D. Lamberty, L. Stief, T. Friedrich, P. Hellwig, H. Nasiri, F. Melin
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引用次数: 0

摘要

膜蛋白参与每个生物体的多种重要功能,如运输、信号传导和呼吸,为制药工业提供了80%至90%的相关靶标。细胞色素bd氧化酶家族仅存在于原核生物的呼吸链中,被认为与细菌的适应性机制有关,因此对未来抗生素的开发具有重要意义。它们催化水中分子氧的还原和喹啉的氧化,并有助于ATP合成所需的质子动力。由于它们的疏水性,膜蛋白比可溶性蛋白更难处理。蛋白质膜伏安法是一种非常方便的技术,因为它允许在非常低的浓度下工作,并根据酶的性质优化电极表面。在这里,我们开发了一种用于末端氧化酶研究的生物传感器,该传感器基于用自组装单层硫醇修饰的金纳米颗粒固定末端氧化酶。通过改变硫醇的性质和脂质的数量,可以优化蛋白质膜的稳定性。该酶基电化学传感器成功地筛选了34个化合物对细胞色素bd氧化酶的抑制作用,这些化合物属于醌类、萘醌类、酚类、喹诺酮类、香豆素类和类黄酮类。此外,该装置还应用于酶与小气体信号分子的催化反应研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Inhibition Study of Cytochrome bd Oxidase Using the Enzyme-Based Electrochemical Sensor
Membrane proteins that participate in multiple vital functions of every living organism such as transport, signaling and respiration, provide 80 to 90% of the relevant targets for the pharmaceutical industries. The family of cytochrome bd oxidase enzymes is of great interest for the development of future antibiotics as they are found only in the respiratory chain of the prokaryotes and they are believed to be involved in bacterial adaptability mechanisms. They catalyze the reduction of molecular oxygen in water and oxidation of quinols and contribute to the proton motive force required for ATP synthesis. Due to their hydrophobic nature, membrane proteins are more difficult to handle than soluble proteins. Protein film voltammetry is a very convenient technique, because it allows for working at a very low concentration and for optimizing the electrode surface to the nature of the enzyme. Here, we have developed a biosensor for the study of terminal oxidases based on their immobilization on gold nanoparticles modified with a self-assembled monolayer of thiols. The stability of the protein films can be optimized by varying the nature of thiols and amount of lipids. This enzyme-based electrochemical sensor was successfully used for the inhibition screening of a target-focused library of 34 compounds which belong to the families of quinones, naphthoquinones, phenols, quinolones, coumarins and flavonoids against cytochrome bd oxidase. Moreover, the developed device was applied for the study of the catalytic reaction of the enzyme with small gaseous signaling molecules.
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