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Controlled ionic condensation at the surface of a native extremophile membrane

机译:控制离子在表面凝结本土极端微生物膜

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摘要

At the nanoscale level biological membranes present a complex interface with the solvent. The t'onal dynamics and relative flexibility of membrane components together with the presence of specific ionic effects can combine to create exciting new phenomena that challenge traditional theories such as the Derjaguin-Landau-Verwey-Overbeek (DLVO) theory or models interpreting the role of ions in terms of their ability to structure water (structure making/breaking). Here we investigate ionic effects at the surface of a highly charged extremophile membrane composed of a proton pump (bacteriorhodopsin) and archaeal lipids naturally assembled into a 2D crystal. Using amplitude-modulation atomic force microscopy (AM-AFM) in solution, we obtained sub-molecular resolution images of ion-induced surface restructuring of the membrane. We demonstrate the presence of a stiff cationic layer condensed at its extracellular surface. This layer cannot be explained by traditional continuum theories. Dynamic force spectroscopy experiments suggest that it is produced by electrostatic correlation mediated by a Manning-type condensation of ions. In contrast, the cytoplasmic surface is dominated by short-range repulsive hydration forces. These findings are relevant to archaeal bioenergetics and halophilic adaptation. Importantly, they present experimental evidence of a natural system that locally controls its interactions with the surrounding medium and challenges our current understanding of biological interfaces.
机译:在纳米级别的生物膜存在一个复杂的界面与溶剂。t 'onal动力学和相对的灵活性膜组件的存在可以结合创建特定的离子影响令人兴奋的新现象,挑战传统理论等模型解释离子方面的作用结构水(结构的能力制造/打破)。在高度紧张的表面效果极端微生物膜质子泵组成自然(细菌视紫红质)和古细菌脂质组装到一个二维晶体。调幅原子力显微镜(AM-AFM)的解决方案,我们sub-molecular获得离子感应表面的分辨率的图像重组的膜。僵硬的阳离子层浓缩其细胞外表面。用传统连续介质理论来解释。动力光谱学实验表明它是由静电产生关联由离子的Manning-type凝结。相比之下,胞质表面为主通过短程排斥水合作用的力量。发现相关热点生物能疗法和嗜盐的适应性。目前的实验证据的自然系统本地控制其相互作用我们现在周围介质和挑战了解生物接口。

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