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Single-Molecule Enzyme Dynamics of Monomeric Sarcosine Oxidase in a Gold-Based Zero-Mode Waveguide

机译:基于金的零模波导中的单体肌氨酸氧化酶的单分子酶动力学

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The localization of optical fields is a powerful method of reducing spectroscopic background signals, enabling studies of single fluorescent molecules. Zero-mode waveguides (ZMWs) strongly confine optical fields to zeptoliter (zL, 10~(-21) L) volumes and can be coupled with fluorescence microscopy to study the dynamics of single enzyme molecules due to their excellent optical confinement, precise positioning, and massive parallelism. The experiments described here exploit arrays of gold-based (Au-based) nanopores derivatized with single copies of the redox enzyme monomeric sarcosine oxidase (MSOX). MSOX contains a covalently bound flavin adenine dinucleotide (FAD) cofactor, which is highly fluorescent in the oxidized state and dark in the reduced state, thus producing a characteristic on-off fluorescence signal synchronous with transitions between oxidation states. Although aluminum (Al) is the common choice for the metallic overlayer in ZMW construction, Au is used here to access its unique surface-binding chemistry. In particular, the signal-to-noise ratio is improved for Au-based ZMWs by selective Au passivation. For MSOX reactions involving both the nominal substrate (sarcosine) and an analogous substrate (proline), statistical analysis of single-molecule temporal trajectories reveals the static heterogeneity of single-enzyme reaction rates, but no dynamic disorder. In addition, the single-molecule data confirm the independence of reduction and oxidation reactions. These structures open the way for systematic studies of the effect of molecular crowding on enzyme dynamics.
机译:光场的定位是减少光谱背景信号的强大方法,可用于研究单个荧光分子。零模波导(ZMW)将光场严格限制在zeptoliter(zL,10〜(-21)L)的体积内,并且由于其出色的光学限制,精确的定位,可与荧光显微镜结合使用来研究单个酶分子的动力学,和大规模并行处理。此处描述的实验利用了单拷贝的氧化还原酶单体肌氨酸氧化酶(MSOX)衍生的金基(Au基)纳米孔的阵列。 MSOX包含共价键结合的黄素腺嘌呤二核苷酸(FAD)辅因子,该辅因子在氧化态下呈高荧光状态,在还原态下呈暗状态,因此产生与氧化态之间转换同步的特征性开关荧光信号。尽管铝(Al)是ZMW结构中金属覆盖层的常见选择,但此处使用Au来获得其独特的表面结合化学。特别地,通过选择性的Au钝化提高了基于Au的ZMW的信噪比。对于涉及标称底物(肌氨酸)和类似底物(脯氨酸)的MSOX反应,单分子时间轨迹的统计分析揭示了单酶反应速率的静态异质性,但没有动态异常。另外,单分子数据证实了还原和氧化反应的独立性。这些结构为系统研究分子拥挤对酶动力学的影响开辟了道路。

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