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(Invited) Electrochemistry Confined Nanopore: Design and Application in Single Molecule Sensing

机译:(邀请的)电化学限制纳米孔:单分子传感中的设计与应用

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Single-molecule sensing is key to deep understanding of elemental biological processes and complex bioreactions. Nanopore-based single-molecule method, a unique technique based on the modulation in ionic current, provides a high temporal-spatial resolution for single molecule sensing. To achieve a high selectivity and sensitivity of biological nanopore, the modification of specific group presenting in the whole region of Aerolysin nanopore was successfully designed, and every single molecule forms a whole sensing interface. As a reasonable model, a single membrane protein which is assembled from several monomers is regarded as a single molecule interface Therefore, the side chain of every single amino acid groups could be designed respectively by single site mutation. The single molecule interface has been achieved in biological nanopore sensors. A single membrane protein molecule could be regarded as a single molecule interface. Single molecule interface facilities the design of single sensing zone which ensures high spatial- and temporal resolution towards single molecule analysis. The single-site modification along the single molecule interface manipulates each site of interface for the precise responses which meet the multiple sensing requirement. More importantly, single molecule interface provides a confinement for the single molecule reaction which offers the possibility to study reaction kinetics in high temporal resolution. These advances provide a new concept in designing advanced sensors. Moreover, by combining with other single molecule methods such as fluorescence or plasmonic technology, it is possible to construct an integrated single molecule interface for multi-element readouts, which is expected to further provide the rich structural information of a single molecule.
机译:单分子感测是深入了解元素生物过程和复杂生物疾病的关键。基于纳米孔的单分子方法,一种基于离子电流调制的独特技术,为单分子感测提供了高的时间空间分辨率。为了实现生物纳米孔的高选择性和敏感性,成功地设计了在整个Aerolysin Nanopore的整个区域中呈现的特定组的修饰,每种分子形成整个传感界面。作为合理的模型,由几种单体组装的单个膜蛋白被认为是单个分子界面,因此,每种单个氨基酸基团的侧链可以分别通过单个位点突变设计。在生物纳米孔传感器中实现了单分子界面。单个膜蛋白分子可以被视为单个分子界面。单分子界面设施是单一传感区域的设计,可确保高空间和时间分辨率朝着单分子分析进行。沿着单分子接口的单站点修改操纵每个接口的每个站点,以实现满足多个感测要求的精确响应。更重要的是,单一分子界面为单个分子反应提供了禁闭,其提供了在高时的高度分辨率中研究反应动力学的可能性。这些进步在设计高级传感器时提供了一种新概念。此外,通过与其他单一分子方法(例如荧光或等离子体技术)组合,可以构建用于多元素读出的集成单分子界面,这预期进一步提供单个分子的富含结构信息。

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