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Engineering RNA-Protein Complexes with Different Shapes for Imaging and Therapeutic Applications

机译:工程化具有不同形状的RNA蛋白质复合物,用于成像和治疗应用

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摘要

Molecular machines composed of RNA-protein (RNP) complexes may expand the fields of molecular robotics, nanomedicine, and synthetic biology. However, constructing and directly visualizing a functional RNP nanostructure to detect and control living cell function remains a challenge. Here we show that RNP nanostructures with modular functions can be designed and visualized at single-RNP resolution in real time. The RNP structural images collected in solution through highspeed atomic force microscopy showed that a single RNP interaction induces a conformational change in the RNA scaffold, which supports the nanostructure formation designed. The specific RNP interaction also improved RNA nanostructure stability in a serum-containing buffer. We developed and visualized functional RNPs (e.g., to detect human cancer cells or knockdown target genes) by attaching a protein or RNA module to the same RNA scaffold of an optimal size. The synthetic RNP architecture may provide alternative materials to detect and control functions in target mammalian cells.
机译:由RNA-蛋白质(RNP)复合物组成的分子机器可以扩展分子机器人技术,纳米医学和合成生物学的领域。然而,构建和直接可视化功能性RNP纳米结构以检测和控制活细胞功能仍然是一个挑战。在这里,我们显示具有模块化功能的RNP纳米结构可以实时设计和可视化为单个RNP分辨率。通过高速原子力显微镜在溶液中收集到的RNP结构图像显示,单个RNP相互作用会诱导RNA支架的构象变化,从而支持设计的纳米结构形成。特定的RNP相互作用还提高了含血清缓冲液中RNA纳米结构的稳定性。通过将蛋白质或RNA模块连接到最佳大小的同一RNA支架上,我们开发并可视化了功能性RNP(例如,用于检测人类癌细胞或敲除的靶基因)。合成RNP体系结构可以提供替代材料来检测和控制目标哺乳动物细胞中的功能。

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