首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >Studies of the interactions of ursane-type bioactive terpenes with the model of Escherichia coli inner membrane-Langmuir monolayer approach
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Studies of the interactions of ursane-type bioactive terpenes with the model of Escherichia coli inner membrane-Langmuir monolayer approach

机译:乌尔森型生物活性萜烯与大肠杆菌内膜-朗缪尔单层方法相互作用的研究

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Pentacyclic triterpenes (PT), ursolic acid (Urs), and alpha-amyrin (AMalf) are natural products exhibiting broad spectrum of antibacterial activity. These compounds are membrane-active and can disorder bacterial membranes when incorporated; however, the exact mechanism of their membrane activity is unknown. In our studies, we applied Langmuir monolayer technique supported by Brewster angle microscopy to model the interactions of the selected PT with the lipid matrix of E. coil inner membrane. As the model membrane, we applied mixtures (75/25 mole/.mole %) of the representative Escherichia coil phosphatidylethanolamine (POPE), with the cardiolipin (ECCL) or phosphatidylglycerol (ECPG) extracted from the E. coli inner membrane. On the basis of the recorded isotherms, we performed thermodynamic analysis and calculated free energy of mixing Delta G(exc). It turned out that the phospholipids forming the inner membrane of E. coli are ideally miscible, whereas in binary systems composed of PT and POPE, negative deviations from ideality indicating attractive interactions between the investigated PT and POPE molecules were observed. On the other hand, in ternary systems composed of PT, POPE and one of the E. coil anionic phospholipids large positive changes in Delta G(exc) were observed. Thus, both PT exhibit disorganizing effect on the model E. coil membrane. It was also proved that at low terpene proportion, AMalf can be more active than Urs. However, at higher proportion Urs incorporation can lead to the disintegration of cardiolipin-rich domains present in bacterial membrane. (C) 2014 Elsevier B.V. All rights reserved.
机译:五环三萜(PT),熊果酸(Urs)和α-胰岛淀粉蛋白(AMalf)是天然产物,具有广泛的抗菌活性。这些化合物具有膜活性,掺入后会破坏细菌膜。然而,其膜活性的确切机制尚不清楚。在我们的研究中,我们使用布鲁斯特角显微镜支持的Langmuir单层技术来模拟所选PT与线圈内膜脂质基质的相互作用。作为模型膜,我们应用了代表性大肠埃希氏菌丝磷脂酰乙醇胺(POPE)与心磷脂(ECCL)或磷脂酰甘油(ECPG)的混合物(75/25摩尔/。摩尔%)。在记录的等温线的基础上,我们进行了热力学分析并计算了混合Delta G(exc)的自由能。事实证明,形成大肠杆菌内膜的磷脂在理想情况下是可混溶的,而在由PT和POPE组成的二元系统中,与理想度的负偏差表明观察到的PT和POPE分子之间存在吸引作用。另一方面,在由PT,POPE和一种大肠杆菌螺旋阴离子磷脂组成的三元体系中,观察到Delta G(exc)有较大的正变化。因此,两种PT对模型大肠杆菌膜都表现出混乱的作用。还证明了在低萜烯比例下,AMalf比Urs更具活性。但是,较高比例的Urs掺入可导致细菌膜中富含心磷脂的结构域解体。 (C)2014 Elsevier B.V.保留所有权利。

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