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Magnetic Nanoparticles for Ultrafast Mechanical Control of Inner Ear Hair Cells

机译:磁性纳米粒子用于超快机械控制内耳毛细胞

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摘要

We introduce cubic magnetic nanoparticles as an effective tool for precise and ultrafast control of mechanosensitive cells. The temporal resolution of our system is ~1000 times faster than previously used magnetic switches and is comparable to the current state-of-the-art optogenetic tools. The use of a magnetism-gated switch reported here can address the key challenges of studying mechanotransduction in biological systems. The cube-shaped magnetic nanoparticles are designed to bind to components of cellular membranes and can be controlled with an electromagnet to exert pico-Newtons of mechanical force on the cells. The cubic nanoparticles can thus be used for noncontact mechanical control of the position of the stereocilia of an inner ear hair cell, yielding displacements of tens of nanometers, with sub-millisecond temporal resolution. We also prove that such mechanical stimulus leads to the influx of ions into the hair cell. Our study demonstrates that a magnetic switch can yield ultrafast temporal resolution, and has capabilities for remote manipulation and biological specificity, and that such magnetic system can be used for the study of mechanotransduction processes of a wide range of sensory systems.
机译:我们介绍立方磁性纳米颗粒作为精确,超快控制机械敏感细胞的有效工具。我们系统的时间分辨率比以前使用的磁性开关快1000倍,可与当前最先进的光遗传学工具相提并论。本文报道的磁性门控开关的使用可以解决研究生物系统中机械转导的关键挑战。立方体形状的磁性纳米粒子被设计为与细胞膜的成分结合,并可以用电磁体控制,以在细胞上施加皮牛顿的机械力。因此,立方纳米颗粒可用于非接触式机械控制内耳毛细胞的纤毛位置,产生数十纳米的位移,并具有亚毫秒级的时间分辨率。我们还证明了这种机械刺激导致离子流入毛细胞。我们的研究表明,磁性开关可以产生超快的时间分辨率,并具有远程操纵和生物学特异性的能力,并且这种磁性系统可以用于研究各种感觉系统的机械传导过程。

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