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含有新型细胞色素 c 变体的石墨烯生物电极中直接电子转移的增强作用,这些变体具有优化的血红素取向。

Enhancement of direct electron transfer in graphene bioelectrodes containing novel cytochrome c variants with optimized heme orientation.

机构信息

Solar Fuels Laboratory, Center of New Technologies, University of Warsaw, Banacha 2C, 02-097 Warsaw, Poland.

Chemical and Biological Systems Simulation Lab, Center of New Technologies, University of Warsaw, Banacha 2C, 02-097 Warsaw, Poland.

出版信息

Bioelectrochemistry. 2021 Aug;140:107818. doi: 10.1016/j.bioelechem.2021.107818. Epub 2021 Apr 8.

Abstract

The highly efficient bioelectrodes based on single layer graphene (SLG) functionalized with pyrene self-assembled monolayer and novel cytochromec(cytc)peptide linker variants were rationally designed to optimize the direct electron transfer (DET) between SLG and the heme group of cyt. Through a combination of photoelectrochemical and quantum mechanical (QM/MM) approaches we show that the specific amino acid sequence of a short peptide genetically inserted between the cytcholoprotein and thesurface anchoring C-terminal His-tag plays a crucial role in ensuring the optimal orientation and distance of the heme group with respect to the SLG surface. Consequently, efficient DET occurring between graphene and cyt c leads to a 20-fold enhancement of the cathodic photocurrent output compared to the previously reported devices of a similar type. The QM/MM modeling implies that a perpendicular or parallel orientation of the heme group with respect to the SLG surface is detrimental to DET, whereas the tilted orientation favors the cathodic photocurrent generation. Our work confirms the possibility of fine-tuning the electronic communication within complex bio-organic nanoarchitectures and interfaces due to optimization of the tilt angle of the heme group, its distance from the SLG surface and optimal HOMO/LUMO levels of the interacting redox centers.

摘要

基于单层石墨烯 (SLG) 的高效生物电极,其功能化的芘自组装单层和新型细胞色素 c(cytc)肽接头变体经过合理设计,以优化 SLG 和细胞色素 c 的血红素基团之间的直接电子转移 (DET)。通过光电化学和量子力学 (QM/MM) 方法的结合,我们表明,在细胞色素蛋白和表面锚固 C 末端 His 标记之间插入的短肽的特定氨基酸序列在确保血红素基团相对于 SLG 表面的最佳取向和距离方面起着至关重要的作用。因此,与之前报道的类似类型的器件相比,石墨烯和 cyt c 之间发生的高效 DET 导致阴极光电流输出增强了 20 倍。QM/MM 建模表明,血红素基团相对于 SLG 表面的垂直或平行取向不利于 DET,而倾斜取向有利于阴极光电流的产生。我们的工作证实了由于优化血红素基团的倾斜角、其与 SLG 表面的距离以及相互作用的氧化还原中心的最佳 HOMO/LUMO 水平,可以微调复杂生物有机纳米结构和界面内的电子通信的可能性。

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