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A highly integrated DNA nanomachine operating in living cells powered by an endogenous stimulus

机译:高度整合的DNA纳米机器在由内源性刺激驱动的活细胞中运行

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摘要

Synthetic molecular machines have received increasing attention because of their great ability to mimic natural biological motors and create novel modes of motion. However, very few examples have been implemented with real autonomous movement inside living cells, due to the challenges of the driving force and highly integrated system design. In this work, we report an elegant, highly integrated DNA nanomachine that can be powered by endogenous ATP molecules and autonomously operated inside living cells without any auxiliary additives. It assembles all components on a single gold nanoparticle (AuNP) including a hairpin-locked swing arm encoding a start triggered by an intracellular target molecule and a two-stranded DNA track responding to the motion of the swing arm. When the intracellular target activates the nanomachine via the unlocking swing arm, the machine autonomously and progressively operates on the established DNA track via intramolecular toehold-mediated strand migration and internal ATP binding. This paper also demonstrates the machine's bioanalytical application for specific microRNA (miRNA) imaging in living cells.
机译:合成分子机器由于其模仿天然生物马达并产生新颖运动方式的强大能力而受到越来越多的关注。但是,由于驱动力和高度集成的系统设计的挑战,在活细胞内部实现真正自主运动的示例很少。在这项工作中,我们报告了一种优雅的,高度集成的DNA纳米机器,该机器可以由内源性ATP分子提供动力,并且可以在活细胞内部自主运行,而无需任何辅助添加剂。它可将所有组件组装在单个金纳米颗粒(AuNP)上,包括发夹式锁定的摇臂,该摇臂编码由细胞内靶分子触发的起始位点和响应于摇臂运动的两链DNA轨道。当细胞内靶标通过解锁的摆臂激活纳米机器时,机器将通过分子内脚趾介导的链迁移和内部ATP结合在已建立的DNA轨道上自主并逐步运行。本文还演示了该机器在活细胞中特定microRNA(miRNA)成像中的生物分析应用。

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