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魔棒:一种单一的、经过设计的肽,可组装成稳定的、有序的α-螺旋纤维。

MagicWand: a single, designed peptide that assembles to stable, ordered alpha-helical fibers.

作者信息

Gribbon Christopher, Channon Kevin J, Zhang Weijie, Banwell Eleanor F, Bromley Elizabeth H C, Chaudhuri Julian B, Oreffo Richard O C, Woolfson Derek N

机构信息

School of Chemistry, University of Bristol, UK.

出版信息

Biochemistry. 2008 Sep 30;47(39):10365-71. doi: 10.1021/bi801072s. Epub 2008 Sep 4.

Abstract

We describe a straightforward single-peptide design that self-assembles into extended and thickened nano-to-mesoscale fibers of remarkable stability and order. The basic chassis of the design is the well-understood dimeric alpha-helical coiled-coil motif. As such, the peptide has a heptad sequence repeat, abcdefg , with isoleucine and leucine residues at the a and d sites to ensure dimerization. In addition, to direct staggered assembly of peptides and to foster fibrillogenesisthat is, as opposed to blunt-ended discrete speciesthe terminal quarters of the peptide are cationic and the central half anionic with lysine and glutamate, respectively, at core-flanking e and g positions. This +,-,-,+ arrangement gives the peptide its name, MagicWand (MW). As judged by circular dichroism (CD) spectra, MW assembles to alpha-helical structures in the sub-micromolar range and above. The thermal unfolding of MW is reversible with a melting temperature >70 degrees C at 100 muM peptide concentration. Negative-stain transmission electron microscopy (TEM) of MW assemblies reveals stiff, straight, fibrous rods that extended for tens of microns. Moreover, different stains highlight considerable order both perpendicular and parallel to the fiber long axis. The dimensions of these features are consistent with bundles of long, straight coiled alpha-helical coiled coils with their axes aligned parallel to the long axis of the fibers. The fiber thickening indicates inter-coiled-coil interactions. Mutagenesis of the outer surface of the peptide i.e., at the b and f positionscombined with stability and microscopy measurements, highlights the role of electrostatic and cation-pi interactions in driving fiber formation, stability and thickening. These findings are discussed in the context of the growing number of self-assembling peptide-based fibrous systems.

摘要

我们描述了一种简单的单肽设计,该设计可自组装成具有显著稳定性和有序性的延伸且加厚的纳米至中尺度纤维。该设计的基本框架是人们熟知的二聚体α-螺旋卷曲螺旋基序。因此,该肽具有七肽序列重复abcdefg,在a和d位点有异亮氨酸和亮氨酸残基以确保二聚化。此外,为了引导肽的交错组装并促进纤维形成(即与平头离散物种相反),肽的末端四分之一是阳离子性的,而中央一半是阴离子性的,在核心侧翼的e和g位置分别有赖氨酸和谷氨酸。这种 +,-,-,+ 排列赋予了该肽“魔棒”(MW)的名称。通过圆二色性(CD)光谱判断,MW在亚微摩尔范围及以上组装成α-螺旋结构。在100μM肽浓度下,MW的热解折叠是可逆的,解链温度>70℃。MW组装体的负染透射电子显微镜(TEM)显示出坚硬、笔直的纤维棒,其延伸长度达数十微米。此外,不同的染色显示出与纤维长轴垂直和平行方向都有相当的有序性。这些特征的尺寸与长直的α-螺旋卷曲螺旋束一致,其轴与纤维的长轴平行排列。纤维变粗表明存在卷曲螺旋间的相互作用。对肽的外表面(即b和f位置)进行诱变,并结合稳定性和显微镜测量,突出了静电和阳离子-π相互作用在驱动纤维形成、稳定性和变粗过程中的作用。在越来越多基于自组装肽的纤维系统的背景下讨论了这些发现。

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