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Protein-directed self-assembly of a fullerene crystal

机译:富勒烯晶体的蛋白质定向自组装

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Learning to engineer self-assembly would enable the precise organization of molecules by design to create matter with tailored properties. Here we demonstrate that proteins can direct the self-assembly of buckminsterfullerene (C60) into ordered superstructures. A previously engineered tetrameric helical bundle binds C60 in solution, rendering it water soluble. Two tetramers associate with one C60, promoting further organization revealed in a 1.67-? crystal structure. Fullerene groups occupy periodic lattice sites, sandwiched between two Tyr residues from adjacent tetramers. Strikingly, the assembly exhibits high charge conductance, whereas both the protein-alone crystal and amorphous C60 are electrically insulating. The affinity of C60 for its crystal-binding site is estimated to be in the nanomolar range, with lattices of known protein crystals geometrically compatible with incorporating the motif. Taken together, these findings suggest a new means of organizing fullerene molecules into a rich variety of lattices to generate new properties by design.
机译:学会设计自组装技术将使分子能够通过设计来精确地组织分子,从而创造出具有定制特性的物质。在这里,我们证明蛋白质可以指导buckminsterfullerene(C 60 )的自组装成有序的超结构。先前设计的四聚体螺旋束将溶液中的C 60 结合,使其水溶性。两个四聚体与一个C 60 缔合,促进在1.67-?中揭示的进一步组织。晶体结构。富勒烯基团占据周期性的晶格位点,夹在来自相邻四聚体的两个Tyr残基之间。令人惊讶的是,该组件表现出高电荷电导率,而单蛋白晶体和无定形C 60 都是电绝缘的。 C 60 与其晶体结合位点的亲和力估计在纳摩尔范围内,已知蛋白晶体的晶格在几何上与引入该基序相容。综上所述,这些发现提出了一种将富勒烯分子组织成各种各样的晶格以通过设计产生新特性的新方法。

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