前言:电化学生物分析用微/纳米器件

IF 4.1 Q2 ELECTROCHEMISTRY
Kaoru Hiramoto, Fei Li
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引用次数: 0

摘要

医疗保健技术正在快速发展,但世界不断受到新的传染病的威胁。此外,癌症和神经退行性疾病等进行性疾病在世界范围内正在增加,需要准确诊断疾病进展和药物反应。利用电化学技术检测生物标志物具有高灵敏度、选择性、快速时间响应、低成本仪器以及与其他生物分析技术(如DNA扩增、免疫吸附测定和微流体系统)的兼容性等优点。迄今为止,已经开发了许多电化学传感器,商业化也在不断推进。然而,对能够以更高灵敏度实时测量的设备的需求仍在不断增长,以满足医疗和保健应用的需求。本期特刊“用于电化学生物分析的微/纳米器件”旨在关注微/纳米电化学器件的最新进展,特别关注生物样品的分析,如核酸、蛋白质、代谢物和细胞。收集开始于一篇文章由Yusuke Kanno等人回顾策略的电化学检测致病性核酸。在核酸电化学检测方面有大量发展,但他们有效地收集了病原核酸现场检测技术,重点关注2019年及以后,以便读者了解该领域的最新进展。第二篇文章,由Kyoko Sugiyama等人提出了一种利用逐层技术在电极上固定葡萄糖氧化酶的新方法。正如Kanno的综述中所提到的,电极功能化方法对于在电化学传感器上开发敏感的分子识别位点非常重要。Sugiyama等人提供的方法可以作为一种固定化酶的通用方法,并有望应用于其他酶反应特异性传感器。最后,Ino等人提出多孔膜电极作为生物分析的新兴平台。综述了多孔膜电极的一般制备技术及其在生物传感器和细胞分析中的应用。虽然多孔膜最初是作为分离器和脱盐材料开发的,但它们展示了多孔膜电极作为生物传感基底的独特方面。因此,电化学器件小型化到微纳米级是实现高灵敏度电化学传感器的主流途径。然而,为了克服处理生物样品的特定困难,如生物降解、外来物质的存在、生物相容性要求和溶液限制,有必要不断研究简便有效的电极修饰和功能化技术方法。这个合集涵盖了这些方面,我们希望它能给读者一些启发。最后,我们要感谢《电化学科学进展》的编辑团队对我们的友好和奉献的支持。这里是虚拟集合的链接:https://chemistry-europe.onlinelibrary.wiley.com/doi/toc/10.1002/(ISSN)2698-5977.electrochemical-bioanalysisThe作者声明没有利益冲突。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Preface: Micro/Nanodevices for Electrochemical Bioanalysis

Preface: Micro/Nanodevices for Electrochemical Bioanalysis

Preface: Micro/Nanodevices for Electrochemical Bioanalysis

Preface: Micro/Nanodevices for Electrochemical Bioanalysis

Medical and healthcare technology is advancing at a rapid pace, but the world is constantly threatened by new infectious diseases. In addition, progressive diseases such as cancer and neurodegenerative diseases are increasing worldwide, requiring accurate diagnosis of disease progression and drug response.

Detection of biomarkers using electrochemical techniques is promising in terms of its high sensitivity, selectivity, fast temporal response, low-cost instrumentation, and compatibility with other bioanalytical techniques such as DNA amplification, immunosorbent assays, and microfluidic systems. Many electrochemical sensors have been developed to date, and commercialization is also progressing. However, there is still a growing need for devices that can measure in real-time with greater sensitivity to meet the demands of the medical and healthcare applications. This special issue “Micro/Nanodevices for electrochemical bioanalysis” aims to overlook recent advancements in micro/nano electrochemical devices, with a particular focus on the analysis of biological samples, such as nucleic acids, proteins, metabolites, and cells.

The collection begins with an article by Yusuke Kanno et al. reviewing strategies for electrochemical detection of pathogenic nucleic acids. There are a vast number of developments in electrochemical detections of nucleic acids, but they have effectively collected the techniques for on-site testing of pathogenic nucleic acids with a focus on 2019 and beyond so that readers can follow the latest advances in the field. The second article, by Kyoko Sugiyama et al., presents a new means of immobilizing glucose oxidase on an electrode using the layer-by-layer technique. As also mentioned in Kanno's review, electrode functionalization methods are very important for the development of sensitive molecular recognition sites on electrochemical sensors. The method provided by Sugiyama et al. can be a versatile means for the immobilization of enzymes and it is promising for the application of other enzyme reaction-specific sensors. Finally, Ino et al. present porous membrane electrodes as an emerging platform for bioanalysis. The review ranges from general fabrication techniques of porous membrane electrodes to their applications in biosensors and cell analysis. Although porous membranes have initially been developed as separators and desalination materials, they showcased the unique aspects of porous membrane electrodes as a promising substrate for biosensing.

Consequently, miniaturization of electrochemical devices to the micro- and nanoscale is a mainstream way to achieve highly sensitive electrochemical sensors. However, in order to overcome the specific difficulties of working with biological samples, such as biodegradation, the presence of foreign substances, biocompatibility requirements, and solution limitations, it is necessary to continuously investigate the facile and effective ways of electrode modifications and functionalization techniques. This collection covers these aspects and we hope that it will provide some inspiration to the readers.

Finally, we would like to express our thanks to the editorial team of Electrochemical Science Advances for their kind and dedicated support.

Here is the link to the virtual collection:

https://chemistry-europe.onlinelibrary.wiley.com/doi/toc/10.1002/(ISSN)2698-5977.electrochemical-bioanalysis

The authors declare no conflicts of interest.

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