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Magnetic control of protein spatial patterning to direct microtubule self-assembly

机译:磁性控制蛋白质空间模式以指导微管自组装

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摘要

Living systems offer attractive strategies to generate nanoscale structures because of their innate functional properties such as the dynamic assembly of ordered nanometer fibers, the generation of mechanical forces, or the directional transport mediated by molecular motors. The design of hybrid systems, capable of interfacing artificial building blocks with biomolecules, may be a key step toward the rational design of nanoscale devices and materials. Here, we have designed a bottom-up approach to organize cytoskeletal elements in space using the self-assembly properties of magnetic nanoparticles conjugated to signaling proteins involved in microtubule nucleation. We show that magnetic nanoparticles conjugated to signaling proteins involved in microtubule nucleation can control the positioning of microtubule assembly. Under a magnetic field, a self-organized pattern of biofunctionalized nanoparticles is formed and leads to the nucleation of a periodical network of microtubules in Xenopus laevis egg extract. Our method shows how bioactive nanoparticles can generate a biochemically active pattern upon magnetic actuation, which triggers the spatial organization of nonequilibrium biological structures.
机译:生命系统由于其固有的功能特性(例如,有序纳米纤维的动态组装,机械力的产生或由分子马达介导的方向性运输)而具有产生纳米级结构的诱人策略。能够将人造构件与生物分子连接的混合系统的设计可能是朝着合理设计纳米级设备和材料的关键一步。在这里,我们设计了一种自底向上的方法,利用磁性纳米颗粒的自组装特性组织空间中的细胞骨架元素,该磁性纳米颗粒与微管成核过程中涉及的信号蛋白共轭。我们表明磁纳米颗粒偶联到信号蛋白参与微管成核可以控制微管组装的位置。在磁场下,生物功能化纳米颗粒的自组织模式形成,并导致非洲爪蟾卵提取物中微管的周期性网络成核。我们的方法显示了具有生物活性的纳米颗粒如何在磁驱动时产生生物化学活性模式,从而触发非平衡生物结构的空间组织。

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