Chworos Arkadiusz, Severcan Isil, Koyfman Alexey Y, Weinkam Patrick, Oroudjev Emin, Hansma Helen G, Jaeger Luc
Department of Chemistry and Biochemistry, University of California, Santa Barbara, CA 93106-9510, USA.
Science. 2004 Dec 17;306(5704):2068-72. doi: 10.1126/science.1104686.
One challenge in supramolecular chemistry is the design of versatile, self-assembling building blocks to attain total control of arrangement of matter at a molecular level. We have achieved reliable prediction and design of the three-dimensional structure of artificial RNA building blocks to generate molecular jigsaw puzzle units called tectosquares. They can be programmed with control over their geometry, topology, directionality, and addressability to algorithmically self-assemble into a variety of complex nanoscopic fabrics with predefined periodic and aperiodic patterns and finite dimensions. This work emphasizes the modular and hierarchical characteristics of RNA by showing that small RNA structural motifs can code the precise topology of large molecular architectures. It demonstrates that fully addressable materials based on RNA can be synthesized and provides insights into self-assembly processes involving large populations of RNA molecules.
超分子化学面临的一个挑战是设计通用的自组装构建块,以在分子水平上完全控制物质的排列。我们已经实现了对人工RNA构建块三维结构的可靠预测和设计,以生成称为tectosquares的分子拼图单元。它们可以通过控制其几何形状、拓扑结构、方向性和可寻址性进行编程,从而通过算法自组装成具有预定义周期性和非周期性图案以及有限尺寸的各种复杂纳米级织物。这项工作通过表明小的RNA结构基序可以编码大分子结构的精确拓扑结构,强调了RNA的模块化和层次化特征。它证明了基于RNA的完全可寻址材料可以被合成,并为涉及大量RNA分子的自组装过程提供了见解。