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Electron Transfer across Helical Peptides

机译:螺旋肽的电子转移

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Electron transfer (ET) across proteins is one of the fundamental processes in nature. While trying to decipher and understand natural ET, much scientific effort has been employed in scaling down the process to the role of the elementary secondary-structure units of proteins, that is, sheets and helices. Among these two motifs, the vast majority of studies have focused on -helical peptides because they require fewer amino acids for formation, they can be easily assembled on surfaces, and they can be easily functionalized. Herein, the focus is only on ET across -helical peptides, not only because of the reasons discussed, but also because they are one of the most promising biological molecules for integration into ET-based bioelectronic devices. The different methodologies used to follow ET across the peptides, namely, photoinduced ET, electrochemistry, and solid-state conductivity measurements (referred to as electron transport, ETp), are reviewed and discussed. In this context, the fundamental differences between the different methodologies, the appropriate interpretation of the results, and possible mechanisms to describe the ET(p) process in each methodology are discussed. Furthermore, possible functionalization of the helical peptides to modify and control their (opto-)electronic properties is reviewed.
机译:蛋白质的电子转移(ET)是自然界的基本过程之一。在尝试破译和理解自然等时,在将过程中缩放到蛋白质的基本二级结构单位的作用方面,采用了很多科学的努力,即薄片和螺旋。在这两个主题中,绝大多数研究都集中在 - 雄性肽,因为它们需要更少的氨基酸进行形成,它们可以容易地组装在表面上,并且它们可以容易地官能化。在此,焦点仅在跨越的肽上,而不仅仅是因为讨论的原因,而且因为它们是用于集成到基于ET的生物电子器件中最有前途的生物分子之一。综述和讨论了用于沿着肽,即光突出的等,电化学和固态电化学和固态电化学测量(称为电子传输,ETP)的不同方法。在这种情况下,讨论了不同方法,结果的适当解释以及描述每种方法中的ET(P)过程的可能机制之间的基本差异。此外,综述了螺旋肽的可能官能化以改变和控制其(光学)电子特性。

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