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链交换β-发夹水凝胶的从头设计。

De novo design of strand-swapped beta-hairpin hydrogels.

作者信息

Nagarkar Radhika P, Hule Rohan A, Pochan Darrin J, Schneider Joel P

机构信息

Departments of Chemistry and Biochemistry and Materials Science and Engineering and the Delaware Biotechnology Institute, University of Delaware, Newark, Delaware 19716, USA.

出版信息

J Am Chem Soc. 2008 Apr 2;130(13):4466-74. doi: 10.1021/ja710295t. Epub 2008 Mar 12.

Abstract

De novo designed peptides, capable of undergoing a thermally triggered beta-strand-swapped self-assembly event leading to hydrogel formation were prepared. Strand-swapping peptide 1 (SSP1) incorporates an exchangeable beta-strand domain composed of eight residues appended to a nonexchangeable beta-hairpin domain. CD shows that, at pH 9 and temperatures less than 35 degrees C, this peptide adopts a random coil conformation, rendering it soluble in aqueous solution. On heating to 37 degrees C or greater, SSP1 adopts a beta-hairpin that displays an exchangeable beta-strand region. The exchangeable strand domain participates in swapping with the exchangeable domain of another peptide, affording a strand-swapped dimer. These dimers further assemble into fibrils that define the hydrogel. A second peptide (SSP2) containing an exchangeable strand composed of only four residues was also studied. Microscopy and scattering data show that the length of the exchangeable domain directly influences the fibril nanostructure and can be used as a design element to construct either twisted (SSP1) or nontwisted (SSP2) fibril morphologies. CD, FTIR, and WAXS confirm that both peptides adopt beta-sheet secondary structure when assembled into fibrils. Fibril dimensions, as measured by TEM, AFM, and SANS indicate a fibril diameter of 6.4 nm, a height of 6.0 nm, and a pitch of 50.4 nm for the twisted SSP1 fibrils. The nontwisted SSP2 fibrils are 6.2 nm in diameter and 2.5 nm in height. Oscillatory rheology, used to measure bulk hydrogel rigidity, showed that the gel composed of the nontwisted fibrils is more mechanically rigid (517 Pa at 6 rad/s) than the gel composed of twisted fibrils (367 Pa at 6 rad/s). This work demonstrates that beta-strand-swapping can be used to fabricate biomaterials with tunable fibril nanostructure and bulk hydrogel rheological properties.

摘要

制备了能够经历热触发的β-链交换自组装事件并形成水凝胶的从头设计肽。链交换肽1(SSP1)包含一个由八个残基组成的可交换β-链结构域,该结构域连接到一个不可交换的β-发夹结构域上。圆二色光谱(CD)表明,在pH 9且温度低于35摄氏度时,该肽呈无规卷曲构象,使其可溶于水溶液。加热至37摄氏度或更高温度时,SSP1形成一个显示可交换β-链区域的β-发夹结构。可交换链结构域与另一个肽的可交换结构域参与交换,形成链交换二聚体。这些二聚体进一步组装成构成水凝胶的纤维。还研究了第二种仅包含由四个残基组成的可交换链的肽(SSP2)。显微镜和散射数据表明,可交换结构域的长度直接影响纤维的纳米结构,并且可以用作构建扭曲(SSP1)或非扭曲(SSP2)纤维形态的设计元素。CD、傅里叶变换红外光谱(FTIR)和广角X射线散射(WAXS)证实,两种肽在组装成纤维时均采用β-折叠二级结构。通过透射电子显微镜(TEM)、原子力显微镜(AFM)和小角中子散射(SANS)测量的纤维尺寸表明,扭曲的SSP1纤维的直径为6.4纳米,高度为6.0纳米,螺距为50.4纳米。非扭曲的SSP2纤维直径为6.2纳米,高度为2.5纳米。用于测量整体水凝胶刚性的振荡流变学表明,由非扭曲纤维组成的凝胶比由扭曲纤维组成的凝胶在机械上更刚性(在6弧度/秒时为517帕斯卡)(在6弧度/秒时为367帕斯卡)。这项工作表明,β-链交换可用于制造具有可调纤维纳米结构和整体水凝胶流变学性质的生物材料。

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