Department of Chemistry, Umeå University, 901 87 Umeå, Sweden.
Anal Bioanal Chem. 2010 Nov;398(6):2341-9. doi: 10.1007/s00216-010-4027-7. Epub 2010 Jul 31.
Electrochemical impedance spectroscopy plays an important role in biosensor science thanks to the possibility of finding specific information from processes with different kinetics at a chosen electrode potential in one experiment. In this paper we briefly discuss label-free impedimetric biosensors described in the literature. A novel method for neutral interpretation of impedance data is presented that includes complex number chemometrics. Three examples are given based on impedance measurements on synthetic biomembranes, in this case a lipid monolayer deposited on a mercury electrode. The interaction of various compounds with the monomolecular lipid layer is illustrated with the following: (1) different concentrations of magainin (Geladi et al. in Proc. Int. Fed. Med. Biomed. Eng. 9:219-220, 2005); (2) different derivatives of gramicidin A (Lindholm-Sethson et al. in Langmuir 24:5029-5032, 2007), and (3) an antimicrobial peptide (Ringstad et al. in Langmuir 24:208-216, 2008).
电化学阻抗谱在生物传感器科学中起着重要的作用,这得益于在一个实验中选择电极电势下,可以从具有不同动力学的过程中找到特定信息。在本文中,我们简要讨论了文献中描述的无标记阻抗生物传感器。提出了一种新的方法,用于对阻抗数据进行中性解释,该方法包括复数化学计量学。基于在合成生物膜上的阻抗测量,给出了三个实例,在这种情况下,生物膜是在汞电极上沉积的单层脂质。以下是各种化合物与单分子脂质层相互作用的说明:(1)不同浓度的magainin(Geladi 等人,在 Proc. Int. Fed. Med. Biomed. Eng. 9:219-220, 2005 年);(2)短杆菌肽 A 的不同衍生物(Lindholm-Sethson 等人,在 Langmuir 24:5029-5032, 2007 年),和 (3)一种抗菌肽(Ringstad 等人,在 Langmuir 24:208-216, 2008 年)。