Hagge Sven O, Wiese Andre, Seydel Ulrich, Gutsmann Thomas
Research Center Borstel, Leibniz Center for Medicine and Biosciences, Department of Immunochemistry and Biochemical Microbiology, Division of Biophysics, D-23845 Borstel, Germany.
Biophys J. 2004 Feb;86(2):913-22. doi: 10.1016/S0006-3495(04)74167-3.
Symmetric and asymmetric planar lipid bilayers prepared according to the Montal-Mueller method are a powerful tool to characterize peptide-membrane interactions. Several electrical properties of lipid bilayers such as membrane current, membrane capacitance, and the inner membrane potential differences and their changes can be deduced. The time-resolved determination of peptide-induced changes in membrane capacitance and inner membrane potential difference are of high importance for the characterization of peptide-membrane interactions. Intercalation and accumulation of peptides lead to changes in membrane capacitance, and membrane interaction of charged peptides induces changes in the charge distribution within the membrane and with that to changes in the membrane potential profile. In this study, we establish time-resolved measurements of the capacitance minimization potential DeltaPsi on various asymmetric planar lipid bilayers using the inner field compensation method. The results are compared to the respective ones of inner membrane potential differences DeltaPhi determined from ion carrier transport measurements. Finally, the time courses of membrane capacitances and of DeltaPsi have been used to characterize the interaction of cathelicidins with reconstituted lipid matrices of various Gram-negative bacteria.
根据蒙塔尔 - 米勒方法制备的对称和不对称平面脂质双层是表征肽 - 膜相互作用的有力工具。可以推断脂质双层的几种电学性质,如膜电流、膜电容、内膜电位差及其变化。肽诱导的膜电容和内膜电位差变化的时间分辨测定对于表征肽 - 膜相互作用非常重要。肽的插入和积累会导致膜电容的变化,带电肽的膜相互作用会引起膜内电荷分布的变化,进而导致膜电位分布的变化。在本研究中,我们使用内场补偿方法建立了对各种不对称平面脂质双层上电容最小化电位ΔΨ的时间分辨测量。将结果与通过离子载体转运测量确定的内膜电位差ΔΦ的相应结果进行比较。最后,膜电容和ΔΨ的时间进程已被用于表征cathelicidins与各种革兰氏阴性细菌的重组脂质基质的相互作用。