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无标记光学生物传感器用于检测单一酶反应及其相关构象变化。

Label-free optical detection of single enzyme-reactant reactions and associated conformational changes.

机构信息

Max Planck Institute for the Science of Light, Staudtstrasse 2, 91058 Erlangen, Germany.

出版信息

Sci Adv. 2017 Mar 29;3(3):e1603044. doi: 10.1126/sciadv.1603044. eCollection 2017 Mar.

Abstract

Monitoring the kinetics and conformational dynamics of single enzymes is crucial to better understand their biological functions because these motions and structural dynamics are usually unsynchronized among the molecules. However, detecting the enzyme-reactant interactions and associated conformational changes of the enzyme on a single-molecule basis remains as a challenge to established optical techniques because of the commonly required labeling of the reactants or the enzyme itself. The labeling process is usually nontrivial, and the labels themselves might skew the physical properties of the enzyme. We demonstrate an optical, label-free method capable of observing enzymatic interactions and associated conformational changes on a single-molecule level. We monitor polymerase/DNA interactions via the strong near-field enhancement provided by plasmonic nanorods resonantly coupled to whispering gallery modes in microcavities. Specifically, we use two different recognition schemes: one in which the kinetics of polymerase/DNA interactions are probed in the vicinity of DNA-functionalized nanorods, and the other in which these interactions are probed via the magnitude of conformational changes in the polymerase molecules immobilized on nanorods. In both approaches, we find that low and high polymerase activities can be clearly discerned through their characteristic signal amplitude and signal length distributions. Furthermore, the thermodynamic study of the monitored interactions suggests the occurrence of DNA polymerization. This work constitutes a proof-of-concept study of enzymatic activities using plasmonically enhanced microcavities and establishes an alternative and label-free method capable of investigating structural changes in single molecules.

摘要

监测单酶的动力学和构象动力学对于更好地理解其生物功能至关重要,因为这些运动和结构动力学通常在分子之间不同步。然而,由于通常需要对反应物或酶本身进行标记,因此现有的光学技术在检测单分子水平上的酶-反应物相互作用和相关构象变化方面仍然具有挑战性。标记过程通常很复杂,而且标记本身可能会改变酶的物理性质。我们展示了一种光学无标记方法,能够在单分子水平上观察酶的相互作用和相关构象变化。我们通过等离子体纳米棒与微腔中的 whispering gallery 模式共振耦合提供的强近场增强来监测聚合酶/DNA 相互作用。具体来说,我们使用两种不同的识别方案:一种方案是在 DNA 功能化纳米棒附近探测聚合酶/DNA 相互作用的动力学,另一种方案是通过固定在纳米棒上的聚合酶分子的构象变化幅度来探测这些相互作用。在这两种方法中,我们发现低和高聚合酶活性都可以通过其特征信号幅度和信号长度分布清楚地区分。此外,监测相互作用的热力学研究表明发生了 DNA 聚合。这项工作构成了使用等离子体增强微腔研究酶活性的概念验证研究,并建立了一种替代的无标记方法,能够研究单分子中的结构变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/184a/5371424/8905952361b4/1603044-F1.jpg

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