Dourado André H B, Pastrián Fabián C, Torresi Susana I Córdoba DE
Instituto de Química, Universidade de São Paulo, Av. Prof. Lineu Prestes, 748, 05508-000 São Paulo, SP, Brazil.
An Acad Bras Cienc. 2018 Jan 11;90(1 Suppl 1):607-630. doi: 10.1590/0001-3765201720170434. Print 2018.
Proteins have been the subject of electrochemical studies. It is possible to apply electrochemical techniques to obtain information about their structure due to the presence of five electroactive amino acids that can be oriented to the outside of the peptidic chain. These amino acids are L-Tryptophan (L-Trp), L-Tyrosine (L-Tyr), L-Histidine (L-His), L-Methionine (L-Met) and L-Cysteine (L-Cys); their electrochemical behavior being subject of extensive research, but it is still controversial. No spectroscopic investigations have been reported on L-Trp, and due to the short life time of the intermediates, ex situ techniques cannot be employed, leading to a never-ending discussion about possible intermediates. In the L-Tyr and L-His cases, spectroelectrochemical studies were performed and different intermediates were observed, suggesting that some intermediates may be observed under specific conditions, as proposed for L-Cys. This amino acid is the most interesting among the electroactive ones because of the presence of a thiol moiety at its side chain, leading to a wide range of oxidation states. It can adsorb onto surfaces of different crystallographic orientation in stereoselective conformation, modifying the surface for different applications.as a surface engineering tool since it plays the role of as an anchor for the growing of nanocrystals inside proteic templates.
蛋白质一直是电化学研究的对象。由于存在五种可定向于肽链外侧的电活性氨基酸,因此可以应用电化学技术来获取有关其结构的信息。这些氨基酸是L-色氨酸(L-Trp)、L-酪氨酸(L-Tyr)、L-组氨酸(L-His)、L-甲硫氨酸(L-Met)和L-半胱氨酸(L-Cys);它们的电化学行为是广泛研究的主题,但仍存在争议。尚未有关于L-Trp的光谱研究报道,并且由于中间体的寿命较短,无法采用非原位技术,这导致了关于可能中间体的无休止讨论。在L-Tyr和L-His的情况下,进行了光谱电化学研究并观察到了不同的中间体,这表明在特定条件下可能会观察到一些中间体,正如L-Cys的情况所提出的那样。这种氨基酸在电活性氨基酸中是最有趣的,因为其侧链存在硫醇部分,导致了广泛的氧化态。它可以以立体选择性构象吸附到不同晶体取向的表面上,为不同应用修饰表面。作为一种表面工程工具,因为它在蛋白质模板内纳米晶体生长过程中起到锚定作用。