Freudenthal Oona, Quilès Fabienne, Francius Grégory, Wojszko Kamila, Gorczyca Marcelina, Korchowiec Beata, Rogalska Ewa
Université de Lorraine, Laboratoire de Chimie Physique et Microbiologie pour l'Environnement, LCPME, UMR 7564, Villers-lès-Nancy F-54600, France; CNRS, Laboratoire de Chimie Physique et Microbiologie pour l'Environnement, LCPME, UMR 7564, Villers-lès- Nancy F-54600, France; Université de Lorraine, Structure et Réactivité des Systèmes Moléculaires Complexes, SRSMC, UMR7565, Vandœuvre-lès-Nancy, cedex, F-54506, France.
Université de Lorraine, Laboratoire de Chimie Physique et Microbiologie pour l'Environnement, LCPME, UMR 7564, Villers-lès-Nancy F-54600, France; CNRS, Laboratoire de Chimie Physique et Microbiologie pour l'Environnement, LCPME, UMR 7564, Villers-lès- Nancy F-54600, France.
Biochim Biophys Acta. 2016 Nov;1858(11):2592-2602. doi: 10.1016/j.bbamem.2016.07.015. Epub 2016 Jul 30.
Colistin (Polymyxin E), an antimicrobial peptide, is increasingly put forward as salvage for severe multidrug-resistant infections. Unfortunately, colistin is potentially toxic to mammalian cells. A better understanding of the interaction with specific components of the cell membranes may be helpful in controlling the factors that may enhance toxicity. Here, we report a physico-chemical study of model phospholipid (PL) mono- and bilayers exposed to colistin at different concentrations by Langmuir technique, atomic force microscopy (AFM) and attenuated total reflectance Fourier transform infrared spectroscopy (ATR-FTIR). The effect of colistin on chosen PL monolayers was examined. Insights into the topographical and elastic changes in the PL bilayers within time after peptide injection are presented via AFM imaging and force spectra. Finally, changes in the PL bilayers' ATR-FTIR spectra as a function of time within three bilayer compositions, and the influence of colistin on their spectral fingerprint are examined together with the time-evolution of the Amide II and νCO band integrated intensity ratios. Our study reveals a great importance in the role of the PL composition as well as the peptide concentration on the action of colistin on PL model membranes.
黏菌素(多黏菌素E)是一种抗菌肽,越来越多地被提出作为治疗严重多重耐药感染的挽救药物。不幸的是,黏菌素对哺乳动物细胞具有潜在毒性。更好地了解其与细胞膜特定成分的相互作用可能有助于控制可能增强毒性的因素。在此,我们通过朗缪尔技术、原子力显微镜(AFM)和衰减全反射傅里叶变换红外光谱(ATR-FTIR)报告了对暴露于不同浓度黏菌素的模型磷脂(PL)单层和双层的物理化学研究。研究了黏菌素对选定PL单层的影响。通过AFM成像和力谱展示了肽注射后不同时间PL双层的形貌和弹性变化。最后,研究了三种双层组成中PL双层的ATR-FTIR光谱随时间的变化,以及黏菌素对其光谱指纹的影响,同时研究了酰胺II和νCO带积分强度比的时间演变。我们的研究揭示了PL组成以及肽浓度在黏菌素对PL模型膜作用中的重要作用。