DNA
分子马达
纳米技术
核糖核酸酶P
核糖核酸
计算机科学
材料科学
物理
基因
生物
遗传学
作者
Kevin Yehl,Andrew Mugler,Skanda Vivek,Yang Liu,Yun Zhang,Mengzhen Fan,Eric R. Weeks,Khalid Salaita
标识
DOI:10.1038/nnano.2015.259
摘要
DNA-based machines that walk by converting chemical energy into controlled motion could be of use in applications such as next-generation sensors, drug-delivery platforms and biological computing. Despite their exquisite programmability, DNA-based walkers are challenging to work with because of their low fidelity and slow rates (∼1 nm min(-1)). Here we report DNA-based machines that roll rather than walk, and consequently have a maximum speed and processivity that is three orders of magnitude greater than the maximum for conventional DNA motors. The motors are made from DNA-coated spherical particles that hybridize to a surface modified with complementary RNA; the motion is achieved through the addition of RNase H, which selectively hydrolyses the hybridized RNA. The spherical motors can move in a self-avoiding manner, and anisotropic particles, such as dimerized or rod-shaped particles, can travel linearly without a track or external force. We also show that the motors can be used to detect single nucleotide polymorphism by measuring particle displacement using a smartphone camera.
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