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α-螺旋肽单层跨膜电子传递:链间耦合的重要性。

Electron transfer across α-helical peptide monolayers: importance of interchain coupling.

机构信息

Department of Chemistry, University of Warsaw, Pasteura 1, 02-093 Warsaw, Poland.

出版信息

Langmuir. 2012 Dec 18;28(50):17287-94. doi: 10.1021/la302716n. Epub 2012 Dec 3.

Abstract

Four helical peptides with the general formula (Boc)-Cys-(S-Acm)-(Ala-Leu)(n)-NH-(CH(2))(2)-SH (n = 4-7) were synthesized and further used for the preparation of self-assembled monolayers (SAMs) on gold substrates. The electron-transfer behavior of these systems was probed using current-sensing atomic force microscopy (CS-AFM). It was found that the electron transmission through SAMs of helical peptides trapped between an AFM conductive tip and a gold substrate occurs very efficiently and that the distance dependence obeys the exponential trend with a decay constant of 4.6 nm(-1). This result indicates that the tunneling mechanism is operative in this case. Conductance measurements under mechanical stress show that peptide-mediated electron transmission occurs with the possible contribution of intermolecular electron tunneling between adjacent helices. It was also demonstrated that an external electric field applied between metallic contacts can affect the structure of the peptide SAM by changing its thickness. This explains the asymmetry of the current-voltage response of metal-monolayer-metal junction.

摘要

合成了具有通式 (Boc)-Cys-(S-Acm)-(Ala-Leu)(n)-NH-(CH(2))(2)-SH(n = 4-7)的四个螺旋肽,并进一步用于在金基底上制备自组装单层(SAM)。使用电流感应原子力显微镜(CS-AFM)探测了这些系统的电子转移行为。结果发现,螺旋肽 SAM 夹在 AFM 导电尖端和金基底之间时,电子通过 SAM 的传输非常有效,距离依赖性符合指数趋势,衰减常数为 4.6nm^-1。这一结果表明,在这种情况下,隧道机制起作用。在机械应力下进行的电导测量表明,肽介导的电子传输可能是相邻螺旋之间的分子间电子隧道的贡献。还证明了施加在金属接触之间的外部电场可以通过改变其厚度来影响肽 SAM 的结构。这解释了金属-单层-金属结的电流-电压响应的不对称性。

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