Functional tethered lipid bilayers

W Knoll , C.W Frank , C Heibel , R Naumann , A Offenhäusser , J Rühe , E.K Schmidt , W.W Shen , A Sinner
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引用次数: 157

Abstract

Our strategy to provide the structural basis for the build-up of functional tethered membranes focuses on three approaches: the first one is based on the pre-organization of a monomolecular layer of a lipopolymer at the water/air interface which is then transferred to a solid support. Prior to deposition, the substrate is coated with a layer of benzophenone-derivatized silane molecules that allow for a stable covalent attachment by photo-cross-linking of some of the monomer units of the lipopolymer to the support. An alternative concept realizes a layer-by-layer deposition of the various structural elements: (1) the attachment layer with the reactive sites for the chemical stabilization; (2) a polymer ‘cushion’ prepared by adsorption and simultaneous or subsequent partial covalent binding to the reactive sites; and (3) a lipid monolayer transferred from the water/air interface, that contains a certain amount of lipids with reactive headgroups which, upon binding to the polymer tether, act as anchor lipids stabilizing the whole monolayer/cushion-composite. And finally, we build peptide-supported monolayers by first (self-) assembling amino acid sequences of various lengths via a SH-group near their N-terminus onto Au substances and use then their COO-terminus to chemically attach phosphatidyl-ethanolamine lipids to form a stable monolayer of lipid–peptide conjugates. All the individual preparation steps and the various resulting (multi-) layers are characterized by surface plasmon spectroscopy, X-ray and neutron-reflectometry, contact angle measurements, IR spectroscopy, fluorescence microscopy, scanning probe microscopies, as well as, electrochemical techniques. For all tethering systems, the final membranes' architecture is obtained by fusing lipid vesicles onto the lipid monolayer. Proteins can be incorporated by either fusing vesicles that are loaded with the respective receptors, pores, or ion pumps via a reconstitution procedure, or via a transfer directly from a micellar solution to the pre-formed lipid bilayer at the solid support by a dialysis step. Two structural/dynamical features of tethered membranes which are considered to be of particular functional relevance, i.e. the degree of water uptake and, hence, the degree of swelling of the polymer support, as well as the lateral mobility of the lipid molecules in the membrane, are tested by surface plasmon optics and by measurements of the fluorescence recovery after photobleaching (FRAP), respectively. The results confirm that the presented preparation protocols yield fluid bilayers that mimic certain relevant properties of biological membranes. The functional characterization of tethered membranes, which is briefly summarized, is based on various electrochemical techniques, in particular, impedance spectroscopy, cyclic voltammetry, and chronoamperometric studies. The results obtained for reconstituted H+-ATPase from chloroplasts and E. coli and for cytochrome oxidase (with and without cytochrome c) confirm the incorporation of the proteins in an active form, thus, opening opportunities for novel sensor formats or offering a completely new model membrane system.

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功能性系留脂质双分子层
我们为构建功能性系索膜提供结构基础的策略主要集中在三种方法上:第一种方法是基于在水/空气界面处预组织脂聚合物的单分子层,然后将其转移到固体载体上。在沉积之前,衬底上涂有一层二苯甲酮衍生的硅烷分子,通过光交联脂聚合物的一些单体单元到载体上,允许稳定的共价附着。另一种概念实现了各种结构元素的逐层沉积:(1)具有化学稳定反应位点的附着层;(2)通过吸附和同时或随后与反应位点的部分共价结合制备的聚合物“缓冲垫”;(3)从水/空气界面转移的脂质单层,其中含有一定量的具有活性基团的脂质,这些脂质与聚合物系链结合后,充当锚定脂质,稳定整个单层/缓冲复合材料。最后,我们首先(自)将不同长度的氨基酸序列通过其n端附近的sh基团组装到Au物质上,然后使用它们的COO -末端化学连接磷脂酰乙醇胺脂质,形成稳定的脂质-肽偶联物单层,从而构建肽支持的单层。通过表面等离子体光谱、x射线和中子反射、接触角测量、红外光谱、荧光显微镜、扫描探针显微镜以及电化学技术,对所有单独的制备步骤和所得到的各种(多)层进行了表征。对于所有系带系统,最终膜的结构是通过将脂质囊泡融合到脂质单层上获得的。蛋白质可以通过重组过程融合装载各自受体、孔或离子泵的囊泡,或者通过透析步骤直接从胶束溶液转移到固体支撑处预先形成的脂质双分子层。拴系膜的两个结构/动力学特征被认为具有特殊的功能相关性,即吸水程度,从而聚合物载体的膨胀程度,以及膜中脂质分子的横向迁移率,分别通过表面等离子体光学和光漂白后荧光恢复(FRAP)的测量进行了测试。结果证实,所提出的制备方案产生流体双层,模拟某些相关性质的生物膜。栓系膜的功能表征是基于各种电化学技术,特别是阻抗谱、循环伏安法和计时安培法的研究。从叶绿体和大肠杆菌中重组的H+- atp酶和细胞色素氧化酶(含和不含细胞色素c)的结果证实了蛋白质以活性形式的掺入,从而为新型传感器格式或提供全新的模型膜系统开辟了机会。
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Subject Index Author Index Core and periphery functionalized dendrimers for transition metal catalysis; a covalent and a non-covalent approach Dendritic supports in organic synthesis Peptide dendrimers: applications and synthesis
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