Enzyme based amperometric wide field biosensors: Is single-molecule detection possible?

IF 2.9 Q2 ELECTROCHEMISTRY Electrochemical science advances Pub Date : 2022-02-02 DOI:10.1002/elsa.202100215
Angelo Tricase, Anna Imbriano, Eleonora Macchia, Lucia Sarcina, Cecilia Scandurra, Fabrizio Torricelli, Nicola Cioffi, Luisa Torsi, Paolo Bollella
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引用次数: 4

Abstract

This review discloses the technological advances involving enzyme-based amperometric biosensors engaging challenging limits of detection as low as a single molecule. At first, we summarise the most recent findings concerning electrode modification toward the enhancement of the enzyme loading accomplished mainly through the deposition of nanomaterials. The increase of the electron transfer (ET) rate is mostly based on the enzyme site-specific immobilization through the analysis of the enzyme structure/sequence and protein bioengineering is overviewed. However, both approaches are not appropriate to develop enzyme-based amperometric biosensors able to reach reliable analytical detections below micro-/nano-molar. The last part is devoted to single-molecule electrochemistry that has been widely exploited as a near-field approach in the last decades as a proof-of-concept for the detection of single ET events. Organic electrochemical transistors operated as Faradaic current amplifiers do not detect below micro-/nano-molar. We here propose an alternative approach based on the combination of an electrochemical cell with a bipolar junction transistor in the extended base configuration, drawing some conclusions and future perspectives on the detection of single ET events at a large electrode for the development of Point-of-Care devices.

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酶基安培宽场生物传感器:单分子检测可行吗?
这篇综述揭示了涉及基于酶的安培生物传感器的技术进步,这些传感器具有挑战性的检测限制低至单分子。首先,我们总结了关于电极修饰的最新发现,主要是通过纳米材料的沉积来增强酶的负载。电子转移(ET)速率的提高主要是基于酶的位点特异性固定化,通过对酶的结构/序列分析和蛋白质生物工程进行概述。然而,这两种方法都不适合开发能够在微/纳米摩尔以下进行可靠分析检测的酶基安培生物传感器。最后一部分致力于单分子电化学,在过去的几十年里,作为一种近场方法被广泛利用,作为检测单个ET事件的概念验证。作为法拉第电流放大器的有机电化学晶体管不能检测到微/纳米摩尔以下的电流。我们在此提出了一种基于电化学电池与双极结晶体管在扩展基极结构中的组合的替代方法,并对在大电极上检测单个ET事件得出了一些结论和未来的展望,以用于开发护理点设备。
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CiteScore
3.80
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0.00%
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审稿时长
10 weeks
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Electrochemical Contributions: Svante August Arrhenius (1859–1927) Cover Picture Electrochemical contributions: Tatyana Aleksandrovna Kryukova (1906–1987) Electrochemical contributions: Ludwig Mond (1839−1909) Electrochemical contributions: John Alfred Valentine Butler (1899–1977)
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