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首页> 外文期刊>Biomacromolecules >Oblique Self-Assemblies and Order-Order Transitions in Polypeptide Complexes with PEGylated Triple-Tail Lipids
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Oblique Self-Assemblies and Order-Order Transitions in Polypeptide Complexes with PEGylated Triple-Tail Lipids

机译:带有PEG化三尾脂质的多肽复合物中的倾斜自组装和有序转变

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摘要

We report on highly ordered oblique self-assemblies in ionic complexes of PEGylated triple-tail lipids and cationic polypeptides, as directed by side-chain crystallization, demonstrating also reversible oblique-to-hexagonal order-order transitions upon melting of the side chains. This is achieved in bulk by complexing cationic homopolypeptides, poly-L-lysine (PLys), poly-L-arginine (PArg), and poly-L-histidine (PHis), in stoichiometric amounts with anionic lipids incorporating two hydrophobic alkyl tails and one hydrophilic polyethylene glycol (PEG) tail in a star-shaped A2B geometry. Based on Fourier transform infrared spectroscopy (FTIR), the PLys and PArg complexes fold into α-helical conformation. Aiming to periodicities at different length scales, that is, hierarchies, the PEG tails were selected to control the separation of the polypeptide helices in one direction while the alkyl tails determine the distance between the hydrophilic polypeptide/PEG layers, resulting in an oblique arrangement of the helices. We expect that the high overall order, where the self-assembled domains are in 2D registry, is an outcome of a favorable interplay of plasticization due to the hydrophobic and hydrophilic lipid tails combined with the shape persistency of the peptide helices and the crystallization of the lipid alkyl chains. Upon heating the complexes over the melting temperature of the alkyl tails, an order-order transition from oblique to hexagonal columnar morphology was observed. This transition is reversible, that is, the oblique structure with 2D correlation of the helices is fully returned upon cooling, implying that the alkyl tail crystallization guides the structure formation. Also PHis complex forms an oblique self-assembly. However, instead of α-helices, FTIR suggests formation of helical structures lacking intramolecular hydrogen bonds, stabilized by steric crowding of the lipid. The current study exploits competition between the soft and harder domains, which teaches on concepts toward well-defined polypeptide-based materials.
机译:我们报道了由侧链结晶所指示的聚乙二醇化三重尾脂和阳离子多肽的离子复合物中的高度有序的斜向自组装,证明了在侧链融化时也可逆的斜向六边形的有序过渡。这是通过将化学计量的阳离子均多肽,聚L-赖氨酸(PLys),聚L-精氨酸(PArg)和聚L-组氨酸(PHis)与含有两个疏水性烷基尾基的阴离子脂质络合而实现的星形A2B几何形状的一个亲水性聚乙二醇(PEG)尾巴。基于傅立叶变换红外光谱(FTIR),PLys和PArg配合物折叠成α-螺旋构象。针对不同长度尺度上的周期性,即层次结构,选择了PEG尾巴以控制多肽螺旋在一个方向上的分离,而烷基尾巴决定了亲水性多肽/ PEG层之间的距离,从而形成了倾斜的螺旋。我们预计,由于疏水性和亲水性脂质尾部结合了肽螺旋的形状持久性和结晶的结晶性,自组装结构域位于二维注册表中的总体总体顺序较高,是增塑作用良好的结果。脂质烷基链。在烷基尾部的熔融温度上加热配合物时,观察到从倾斜到六方柱状形态的有序转变。该转变是可逆的,即,具有二维螺旋相关性的倾斜结构在冷却后完全返回,这意味着烷基尾部结晶引导了结构的形成。 PHis复合物也形成倾斜的自组装。但是,FTIR提示α螺旋结构的形成缺少分子内氢键,而螺旋结构缺少脂质内的空间拥挤,从而稳定了分子结构。当前的研究利用了软域和硬域之间的竞争,该领域讲授了针对定义明确的基于多肽的材料的概念。

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