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Incorporation and characterization of alpha-helical peptide-based anchors into bead-supported lipid bilayer membranes

机译:结合和表征基于α-螺旋肽的锚定珠支持脂质双层膜

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) as anchoring molecules, where conjugation of the peptide with fluoresceine isothiocyanate (FITC) allows one to access a variety of chemistries (such as introducing fluorescent dye, etc.) for orthogonal modification [1]. These peptides partition within NHS-PEG3000-NHS which function as in vitro models for interactions with the membrane, will be incorporated into mimic lipid bilayer membranes (such as DOPC) supported by microbeads. We could control the receptor site densities on lipobeads by varying the mole fraction of different lipids and ligands. Moreover, the secondary structure of peptide within these micelles is characterized with circular dichroism. Lateral fluidity of the fluorescently tagged peptide is analyzed via fluorescence imaging microscopy (Confocal Microscopy) and quantified using fluorescence recovery after photobleaching (FRAP) techniques. Variations in the peptide sequence allow us to rationally investigate the influence of sequence on peptide anchor stability.
机译:)作为锚定分子,其中肽与异硫氰酸荧光素(FITC)的缀合使人们可以使用多种化学方法(例如引入荧光染料等)进行正交修饰[1]。这些肽在NHS-PEG3000-NHS内分配,可作为与膜相互作用的体外模型,将被掺入微珠支持的模拟脂质双层膜(例如DOPC)中。我们可以通过改变不同脂质和配体的摩尔分数来控制脂质珠上的受体位点密度。此外,这些胶束中肽的二级结构以圆二色性为特征。通过荧光成像显微镜(Confocal Microscopy)分析荧光标记的肽的侧向流动性,并使用光漂白后的荧光恢复(FRAP)技术进行定量。肽序列的变化使我们能够合理地研究序列对肽锚稳定性的影响。

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