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Bioinspired integrated nanosystems based on solid-state nanopores: iontronic transduction of biological chemical and physical stimuli

机译:基于固态纳米孔的受生物启发的集成纳米系统:对生物化学和物理刺激的电离转导

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摘要

The ability of living systems to respond to stimuli and process information has encouraged scientists to develop integrated nanosystems displaying similar functions and capabilities. In this regard, biological pores have been a source of inspiration due to their exquisite control over the transport of ions within cells, a feature that ultimately plays a major role in multiple physiological processes, e.g. transduction of physical stimuli into nervous signals. Developing abiotic nanopores, which respond to certain chemical, biological or physical inputs producing “iontronic” signals, is now a reality thanks to the combination of “soft” surface science with nanofabrication techniques. The interplay between the functional richness of predesigned molecular components and the remarkable physical characteristics of nanopores plays a critical role in the rational integration of molecular functions into nanopore environments, permitting us to envisage nanopore-based biomimetic integrated nanosystems that respond to a variety of external stimuli such as pH, redox potential, molecule concentration, temperature, or light. Transduction of these stimuli into a predefined “iontronic” response can be amplified by exploiting nanoconfinement and physico-chemical effects such as charge distribution, steric constraints, equilibria displacement, or local changes in ionic concentration, to name but a few examples. While in past decades the focus has been mostly on their fundamental aspects and the in-depth study of their interesting transport properties, for several years now nanopore research has started to shift towards specific practical applications. This work is dedicated to bringing together the latest developments in the use of nanopores as “iontronic” transducing elements. Our aim is to show the wide potential of abiotic nanopores in sensing and signal transduction and also to promote the potential of this technology among doctoral students, postdocs, and researchers. We believe that even a casual reader of this perspective will not fail to be impressed by the wealth of opportunities that solid-state nanopores can offer to the transduction of biological, physical and chemical stimuli.
机译:生命系统对刺激和过程信息作出反应的能力鼓励科学家开发具有相似功能和能力的集成纳米系统。在这方面,由于其对细胞内离子运输的精确控制,生物孔已成为灵感的来源,这一特征最终在多种生理过程中起着主要作用,例如在生物体内。将身体刺激转换为神经信号。由于将“软”表面科学与纳米加工技术相结合,开发出能够响应某些化学,生物或物理输入而产生“离子电子”信号的非生物纳米孔现已成为现实。预先设计的分子成分的功能丰富性与纳米孔卓越的物理特性之间的相互作用在将分子功能合理整合到纳米孔环境中起着至关重要的作用,这使我们能够设想出基于纳米孔的仿生整合纳米系统,该系统可以对多种外部刺激做出反应例如pH,氧化还原电势,分子浓度,温度或光线。可以通过利用纳米约束和物理化学效应(例如电荷分布,空间约束,平衡位移或离子浓度的局部变化)来放大这些刺激到预定义的“电离”响应。尽管在过去的几十年中,重点主要放在它们的基本方面以及对它们有趣的传输特性的深入研究上,但几年来,纳米孔的研究已开始转向特定的实际应用。这项工作致力于将使用纳米孔作为“离子电子”转导元件的最新进展汇聚在一起。我们的目的是展示非生物纳米孔在传感和信号转导中的广泛潜力,并在博士生,博士后和研究人员中推广该技术的潜力。我们认为,即使是对此观点不经意的读者,固态纳米孔也可以为生物,物理和化学刺激的转导提供大量的机会。

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