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PNAS Plus: Direct observation and rational design of nucleation behavior in addressable self-assembly

机译:PNAS Plus:可寻址自组装中的成核行为的直接观察和合理设计

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摘要

To optimize a self-assembly reaction, it is essential to understand the factors that govern its pathway. Here, we examine the influence of nucleation pathways in a model system for addressable, multicomponent self-assembly based on a prototypical “DNA-brick” structure. By combining temperature-dependent dynamic light scattering and atomic force microscopy with coarse-grained simulations, we show how subtle changes in the nucleation pathway profoundly affect the yield of the correctly formed structures. In particular, we can increase the range of conditions over which self-assembly occurs by using stable multisubunit clusters that lower the nucleation barrier for assembling subunits in the interior of the structure. Consequently, modifying only a small portion of a structure is sufficient to optimize its assembly. Due to the generality of our coarse-grained model and the excellent agreement that we find with our experimental results, the design principles reported here are likely to apply generically to addressable, multicomponent self-assembly.
机译:要优化自组装反应,必须了解控制其途径的因素。在这里,我们研究了基于原型“ DNA砖”结构的可寻址,多组分自组装模型系统中成核途径的影响。通过将依赖于温度的动态光散射和原子力显微镜与粗粒度模拟相结合,我们显示了成核途径中的细微变化如何深刻地影响正确形成的结构的产率。特别地,我们可以通过使用稳定的多亚基簇来增加发生自组装的条件范围,该稳定的多亚基簇降低了在结构内部组装亚基的成核屏障。因此,仅修改结构的一小部分就足以优化其组装。由于我们的粗粒度模型具有普遍性,并且我们与实验结果发现了极好的一致性,因此此处报告的设计原则很可能普遍适用于可寻址的多组件自组装。

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