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利用套索型构建模块的双层α-螺旋卷曲螺旋纳米组装体调节多价生物大分子界面

Tuning Oligovalent Biomacromolecular Interfaces Using Double-Layered α-Helical Coiled-Coil Nanoassemblies from Lariat-Type Building Blocks.

作者信息

Jeong Woo-Jin, Choi Se-Hwan, Jin Kyeong Sik, Lim Yong-Beom

机构信息

Department of Materials Science & Engineering, Yonsei University, Seoul 120-749, Korea.

Pohang Accelerator Laboratory, Pohang University of Science and Technology, Pohang 790-784, Korea.

出版信息

ACS Macro Lett. 2016 Dec 20;5(12):1406-1410. doi: 10.1021/acsmacrolett.6b00746. Epub 2016 Dec 8.

Abstract

The target affinity and selectivity of many biomacromolecules depend on the three-dimensional (3D) distribution of multiple ligands on their surfaces. Here, we devised a self-assembly strategy to control the target-tailored 3D distribution of multiple α-helical ligands on a coiled-coil core scaffold using novel lariat-type supramolecular building blocks. Depending on the coiled-coil composition and ligand grafting sites in the lariat building blocks, the structural and functional features of the self-assembled peptide nanostructures (SPNs) could be variably fine-tuned. Using oligovalent protein-RNA (Rev-RRE) interactions as a model system, we demonstrate that longer grafting reinforces the helicity of the peptide ligands, whereas shorter grafting strengthens the target binding affinity of the SPNs in both monovalent and oligovalent interactions. This supramolecular approach should be useful in developing precisely controllable multivalent ligands for biomacromolecular interactions.

摘要

许多生物大分子的靶标亲和力和选择性取决于其表面多个配体的三维(3D)分布。在此,我们设计了一种自组装策略,使用新型套索型超分子构建块来控制多个α-螺旋配体在卷曲螺旋核心支架上的靶向定制3D分布。根据套索构建块中的卷曲螺旋组成和配体接枝位点,可以对自组装肽纳米结构(SPN)的结构和功能特征进行可变微调。以多价蛋白质-RNA(Rev-RRE)相互作用作为模型系统,我们证明较长的接枝增强了肽配体的螺旋度,而较短的接枝在单价和多价相互作用中均增强了SPN的靶标结合亲和力。这种超分子方法在开发用于生物大分子相互作用的精确可控多价配体方面应是有用的。

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