State Key Laboratory of Biobased Material and Green Papermaking, Qilu University of Technology, Shandong Academy of Sciences, Jinan, 250353, Shandong, People's Republic of China.
Department of Bioengineering, Qilu University of Technology (Shandong Academy of Sciences), Jinan, 250353, Shandong, People's Republic of China.
Bioprocess Biosyst Eng. 2024 Feb;47(2):159-168. doi: 10.1007/s00449-023-02933-x. Epub 2023 Nov 3.
Multiheme cytochrome c (Cyt c) can function as a redox protein on electrode to accomplish bioelectrocatalysis. However, the direct electron transfer (DET) between the redox site of Cyt c and electrode is low due to the large coupling distance. A close proximity or a connection pathway from the deeply buried active site to the protein surface can be established by modifying the electrode with carbon nanotubes (CNTs) to improve the DET. Therefore, the isolated Cyt c has been assembled or casted with CNTs by various processes to form Cyt c-CNTs bioelectrodes that can be further applied to biosensing and bioanalysis. These strategies can be transplanted to the fabrication of biofilm-CNTs based electrodes by complexing the out membrane (OM) Cyt c of natural electricigen with CNTs to realize the application of the electrochemical properties of "in vivo" Cyt c to bioelectrochemical systems (BESs). This review intends to highlight the preparation strategies of bioelectrodes that have been well studied in electrochemical biosensors and improving approaches of the DET from the CNTs surface to Cyt c in their hybrids. The efficient fabrication processes of the biofilm-CNTs based electrodes that can be considered as "in vivo" Cyt c-CNTs based electrodes for BES designs are also summarized, aiming to provide an inspiration source and a reference to the related studies of BES downstream.
多血红素细胞色素 c(Cyt c)可以作为一种氧化还原蛋白在电极上发挥作用,从而实现生物电化学催化。然而,由于较大的偶联距离,Cyt c 的氧化还原位点与电极之间的直接电子转移(DET)效率较低。通过用碳纳米管(CNT)修饰电极,可以建立一个从深埋的活性位点到蛋白质表面的接近或连接途径,从而提高 DET。因此,已经通过各种方法将分离的 Cyt c 与 CNT 组装或浇铸在一起,形成 Cyt c-CNTs 生物电极,可进一步应用于生物传感和生物分析。这些策略可以被移植到基于生物膜-CNTs 的电极的制造中,通过将天然电生菌的外膜(OM)Cyt c 与 CNT 复合,实现“体内” Cyt c 的电化学性质在生物电化学系统(BES)中的应用。本文旨在强调电化学生物传感器中研究较好的生物电极的制备策略,并从 CNT 表面到其混合物中的 Cyt c 提高 DET 的方法。还总结了基于生物膜-CNTs 的电极的有效制造工艺,这些电极可以被视为用于 BES 设计的“体内” Cyt c-CNTs 基电极,旨在为 BES 下游的相关研究提供启示和参考。